US20210071344A1 - A method of operating a laundry washing machine comprising a recirculation circuit - Google Patents
A method of operating a laundry washing machine comprising a recirculation circuit Download PDFInfo
- Publication number
- US20210071344A1 US20210071344A1 US17/043,285 US201817043285A US2021071344A1 US 20210071344 A1 US20210071344 A1 US 20210071344A1 US 201817043285 A US201817043285 A US 201817043285A US 2021071344 A1 US2021071344 A1 US 2021071344A1
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- United States
- Prior art keywords
- recirculation
- washing tub
- liquid
- liquid level
- recirculation pump
- Prior art date
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- 238000000034 method Methods 0.000 title claims abstract 20
- 238000010412 laundry washing Methods 0.000 title claims abstract 3
- 239000007788 liquid Substances 0.000 claims abstract 48
- 238000005406 washing Methods 0.000 claims abstract 32
- XLYOFNOQVPJJNP-UHFFFAOYSA-N water Substances O XLYOFNOQVPJJNP-UHFFFAOYSA-N 0.000 claims 4
- 230000003213 activating effect Effects 0.000 claims 3
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Classifications
-
- D—TEXTILES; PAPER
- D06—TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
- D06F—LAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
- D06F39/00—Details of washing machines not specific to a single type of machines covered by groups D06F9/00 - D06F27/00
- D06F39/08—Liquid supply or discharge arrangements
- D06F39/083—Liquid discharge or recirculation arrangements
-
- D—TEXTILES; PAPER
- D06—TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
- D06F—LAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
- D06F23/00—Washing machines with receptacles, e.g. perforated, having a rotary movement, e.g. oscillatory movement, the receptacle serving both for washing and for centrifugally separating water from the laundry
- D06F23/02—Washing machines with receptacles, e.g. perforated, having a rotary movement, e.g. oscillatory movement, the receptacle serving both for washing and for centrifugally separating water from the laundry and rotating or oscillating about a horizontal axis
- D06F23/025—Washing machines with receptacles, e.g. perforated, having a rotary movement, e.g. oscillatory movement, the receptacle serving both for washing and for centrifugally separating water from the laundry and rotating or oscillating about a horizontal axis with a rotatable imperforate tub
-
- D—TEXTILES; PAPER
- D06—TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
- D06F—LAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
- D06F33/00—Control of operations performed in washing machines or washer-dryers
- D06F33/30—Control of washing machines characterised by the purpose or target of the control
- D06F33/32—Control of operational steps, e.g. optimisation or improvement of operational steps depending on the condition of the laundry
- D06F33/38—Control of operational steps, e.g. optimisation or improvement of operational steps depending on the condition of the laundry of rinsing
-
- D—TEXTILES; PAPER
- D06—TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
- D06F—LAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
- D06F39/00—Details of washing machines not specific to a single type of machines covered by groups D06F9/00 - D06F27/00
- D06F39/08—Liquid supply or discharge arrangements
- D06F39/087—Water level measuring or regulating devices
-
- D—TEXTILES; PAPER
- D06—TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
- D06F—LAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
- D06F2103/00—Parameters monitored or detected for the control of domestic laundry washing machines, washer-dryers or laundry dryers
- D06F2103/18—Washing liquid level
-
- D—TEXTILES; PAPER
- D06—TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
- D06F—LAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
- D06F2105/00—Systems or parameters controlled or affected by the control systems of washing machines, washer-dryers or laundry dryers
- D06F2105/06—Recirculation of washing liquids, e.g. by pumps or diverting valves
-
- D—TEXTILES; PAPER
- D06—TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
- D06F—LAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
- D06F2105/00—Systems or parameters controlled or affected by the control systems of washing machines, washer-dryers or laundry dryers
- D06F2105/08—Draining of washing liquids
-
- D—TEXTILES; PAPER
- D06—TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
- D06F—LAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
- D06F39/00—Details of washing machines not specific to a single type of machines covered by groups D06F9/00 - D06F27/00
- D06F39/08—Liquid supply or discharge arrangements
- D06F39/083—Liquid discharge or recirculation arrangements
- D06F39/085—Arrangements or adaptations of pumps
-
- D—TEXTILES; PAPER
- D06—TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
- D06F—LAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
- D06F39/00—Details of washing machines not specific to a single type of machines covered by groups D06F9/00 - D06F27/00
- D06F39/08—Liquid supply or discharge arrangements
- D06F39/083—Liquid discharge or recirculation arrangements
- D06F39/086—Arrangements for avoiding detergent wastage in the discharge conduit
-
- D—TEXTILES; PAPER
- D06—TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
- D06F—LAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
- D06F39/00—Details of washing machines not specific to a single type of machines covered by groups D06F9/00 - D06F27/00
- D06F39/08—Liquid supply or discharge arrangements
- D06F39/088—Liquid supply arrangements
Definitions
- the present invention concerns the field of laundry washing techniques.
- the invention relates to a method for controlling a laundry washing machine equipped with a recirculation circuit.
- laundry washing machines both “simple” laundry washing machines (i.e. laundry washing machines which can only wash and rinse laundry) and laundry washing-drying machines (i.e. laundry washing machines which can also dry laundry), is widespread.
- laundry washing machine will refer to both a simple laundry washing machine and a laundry washing-drying machine.
- Laundry washing machines generally comprise an external casing, or cabinet, provided with a washing tub which contains a rotatable perforated washing drum where the laundry is placed.
- a loading/unloading door ensures access to the washing drum.
- Laundry washing machines typically comprise a water supply unit and a treating agents dispenser, preferably equipped with a drawer, for the introduction of water and washing/rinsing products (i.e. detergent, softener, rinse conditioner, etc.) into the washing tub.
- a treating agents dispenser preferably equipped with a drawer, for the introduction of water and washing/rinsing products (i.e. detergent, softener, rinse conditioner, etc.) into the washing tub.
- Known laundry washing machines are typically provided with a water outlet circuit suitable for withdrawing liquid, for example dirty water, from the bottom of the washing tub to the outside.
- the water outlet circuit is typically provided with a controllable draining pump.
- Known laundry washing machines are also typically provided with one or more recirculation circuits.
- a known recirculation circuit which equips laundry washing machines is adapted to drain liquid from the bottom region of the washing tub and to re-admit such a liquid into an upper region of the washing tub.
- the recirculation circuit is preferably provided with a terminal nozzle opportunely arranged so that the recirculated liquid is conveyed over the laundry and distribution of the same liquid over the laundry is enhanced.
- the recirculation circuit is typically provided with a recirculation pump.
- the recirculation pump is opportunely activated at proper times to recirculate liquid from the bottom of the washing tub and to convey it over the laundry.
- This recirculation phase is preferably carried out at the beginning of a washing cycle when the laundry needs to be completely soaked. Furthermore, this action is preferably carried out during rinsing phases at the beginning of the washing cycle and/or during rinsing phases in successive steps of the washing cycle, for example rinsing phases following the main washing phase.
- the aim of a recirculation phase is generally to improve wetting of the laundry received in the washing drum, preferably either at the beginning of the washing cycle before the main washing phase with use of detergent or in any rinsing phase of the washing cycle.
- the recirculation phase is carried out by operating the recirculation pump at a prefixed speed for a prefixed/estimated period of time.
- the recirculation pump is then deactivated when said period of time elapses.
- the recirculation pump may be deactivated within said period of time if the liquid level inside the washing tub goes below a minimum threshold value, for example a minimum threshold value set above the pump inlet in order to avoid suction cavitation.
- a minimum threshold value for example a minimum threshold value set above the pump inlet in order to avoid suction cavitation.
- An aim of the present invention is to improve wetting of laundry during a recirculation phase compared to known techniques.
- Another aim of the present invention is to accelerate wetting of laundry during a recirculation phase compared to known techniques.
- Applicant has found that by providing a laundry washing machine comprising a washing tub external to a washing drum and a recirculation system comprising a first duct terminating at a first region of the washing tub and by providing a variable speed recirculation pump operable at a speed depending to the detected liquid level inside the washing tub, it is possible to reach the mentioned objects.
- the present invention relates, therefore, to a method for operating a laundry washing machine comprising:
- the method comprises a step of activating the recirculation pump when the detected liquid level is above the prefixed liquid level value.
- the method comprises a step of deactivating the recirculation pump when the detected liquid level is equal to, or goes below to, the prefixed liquid level value.
- the rotation speed of the recirculation pump is directly proportional to the difference between the detected liquid level and the prefixed liquid level value.
- the rotation speed of the recirculation pump is comprised between a minimum threshold value and a maximum threshold value.
- the minimum threshold value is zero.
- the minimum threshold value is greater than zero.
- the rotation speed of the recirculation pump is varied over the time according to a continuous function or a step function.
- the method further comprises a step of reestablishing the prefixed liquid level value inside the washing tub when the liquid level goes below the prefixed liquid level value by conveying an amount of water into the washing tub.
- said amount of water is supplied into the washing tub through the water supply system.
- the method further comprises a step of reestablishing the prefixed liquid level value inside the washing tub when the liquid level goes below the prefixed liquid level value by extracting an amount of water from the laundry in a dewatering process carried out by rotating the washing drum at a dewatering speed.
- the recirculation system comprises a second recirculation circuit apt to drain liquid from the bottom of the washing tub and to re-admit such liquid into a second region of the washing tub, wherein the variable speed recirculation pump is a bi-directional variable speed pump having a second outlet connected to the second recirculation circuit, said recirculation phase being performed activating said recirculation pump in a first direction of rotation, and wherein the method comprises a further recirculation phase to drain liquid from the bottom of the washing tub and to re-admit such liquid into the second region of the washing tub through the second recirculation circuit, wherein the further recirculation phase comprises the step of activating the recirculation pump in a second direction of rotation opposite the first direction of rotation.
- the recirculation pump is operated in the second direction at a first fixed speed.
- the recirculation pump is operated in the second direction at a speed varying over the time.
- the recirculation system comprises a second recirculation circuit apt to drain liquid from the bottom of the washing tub and to re-admit such liquid into a second region of the washing tub, wherein the outlet conveys liquid to a bifurcation for the recirculation circuit and the second recirculation circuit, wherein the recirculation circuits are configured so that a liquid in the second recirculation circuit requires a pressure to reach the washing tub which is lower than the pressure required for a liquid in the recirculation circuit to reach the washing tub, and wherein the recirculation pump is operated at a first speed below, or equal to, a speed threshold to circulate liquid only in the second recirculation circuit to reach the washing tub and the recirculation pump is operated at a second speed above the speed threshold to circulate liquid both in the first recirculation circuit and the second recirculation circuit to reach the washing tub, wherein the step of controlling the recirculation pump by varying the rotation speed of the recirculation pump by varying the rotation speed of
- the recirculation pump is operated at a first speed to circulate liquid only in the second recirculation circuit to reach a bottom region of the washing tub and is operated at the second speed to circulate liquid also in the first recirculation circuit to reach an upper region of the washing tub.
- the first region of the washing tub is an upper region of the washing tub.
- the second region of the washing tub is a bottom region of the washing tub.
- FIG. 1 shows a perspective view of a laundry washing machine where a method according to a first preferred embodiment of the invention is implemented
- FIG. 2 shows a schematic view of the laundry washing machine of FIG. 1 ;
- FIG. 3 shows a schematic view of a laundry washing machine according to a second preferred embodiment of the invention
- FIG. 4 shows a perspective view of a laundry washing machine according to the second preferred embodiment of the invention with some external casing sides removed therefrom;
- FIG. 5 shows some elements of FIG. 4 isolated from the rest
- FIG. 6 shows an element of FIG. 5 isolated from the rest
- FIG. 7 is a plan view from above of the element of FIG. 6 ;
- FIG. 8 is a plan sectional view taken along line VIII°-VIII° of FIG. 7 ;
- FIG. 9 shows a detail of a further embodiment of FIG. 4 ;
- FIG. 10 shows some elements of FIG. 9 isolated from the rest
- FIG. 11 shows an element of FIG. 10 isolated from the rest
- FIG. 12 is a plan view from above of the element of FIG. 11 ;
- FIG. 13 is a plan sectional view taken along line XIII°-XIII° of FIG. 12 ;
- FIG. 14 shows a detail of a further embodiment of FIG. 4 ;
- FIG. 15 shows some elements of FIG. 14 isolated from the rest
- FIG. 16 shows an element of FIG. 15 isolated from the rest
- FIG. 17 is a plan view from above of the element of FIG. 16 ;
- FIG. 18 is a plan sectional view taken along line XVIII°-XVIII° of FIG. 17 ;
- FIG. 19 shows a further embodiment of FIG. 4 ;
- FIG. 20 shows some elements of FIG. 19 isolated from the rest
- FIG. 21 shows some elements of FIG. 20 isolated from the rest
- FIG. 22 shows some elements of FIG. 21 isolated from the rest
- FIG. 23 shows a partial sectional view of FIG. 22 .
- the present invention has proved to be particularly advantageous when applied to laundry washing machines, as described below. It should in any case be underlined that the present invention is not limited to laundry washing machines. On the contrary, the present invention can be conveniently applied to laundry washing-drying machines (i.e. laundry washing machines which can also dry laundry).
- FIGS. 1 and 2 a preferred embodiment of a laundry washing machine 1 in which a method according to a preferred embodiment of the invention is implemented is shown.
- the laundry washing machine 1 preferably comprises an external casing or cabinet 2 , a washing tub 3 , a container 4 , preferably a perforated washing drum 4 , where the laundry to be treated can be loaded.
- the washing tub 3 is preferably connected to the cabinet 2 by means of an elastic bellows, not shown.
- the bellows is preferably S-shaped.
- the cabinet 2 is provided with a loading/unloading door 8 which allows access to the washing drum 4 .
- the washing drum 4 is advantageously rotated by an electric motor, not illustrated, which preferably transmits the rotating motion to the shaft of the washing drum 4 , advantageously by means of a belt/pulley system.
- the motor can be directly associated with the shaft of the washing drum 4 .
- the washing drum 4 is advantageously provided with holes which allow the liquid flowing therethrough. Said holes are typically and preferably homogeneously distributed on the cylindrical side wall of the washing drum 4 .
- the bottom region 3 a of the washing tub 3 preferably comprises a seat 15 , or sump, suitable for receiving a heating device 10 .
- the heating device 10 when activated, heats the liquid inside the sump 15 .
- the bottom region of the washing tub may be configured differently.
- the bottom region of the washing tub may not comprise a seat for the heating device.
- the heating device may be advantageously placed in the annular gap between the washing tub and the washing drum.
- the laundry washing machine 1 comprises a device 19 suited to detect the liquid level inside the washing tub 3 .
- the sensor device 19 preferably comprises a pressure sensor which senses the pressure in the washing tub 3 . From the values sensed by the sensor device 19 it is possible to determine the liquid level of the liquid inside the washing tub 3 .
- laundry washing machine may preferably comprise (in addition to or as a replacement of the pressure sensor) a level sensor (for example mechanical, electro-mechanical, optical, etc.) adapted to detect the liquid level inside the washing tub 3 .
- a water supply circuit 5 is preferably arranged in the upper part of the laundry washing machine 1 and is suited to supply water into the washing tub 3 from an external water supply line E.
- the water supply circuit 5 preferably comprises a controlled supply valve 5 a which is properly controlled, opened and closed, during the washing cycle.
- the water supply circuit of a laundry washing machine is well known in the art, and therefore it will not be described in detail.
- Treating agents may comprise, for example, detergents, rinse additives, fabric softeners or fabric conditioners, waterproofing agents, fabric enhancers, rinse sanitization additives, chlorine-based additives, etc.
- the treating agents dispenser 14 comprises a removable drawer 6 provided with various compartments suited to be filled with treating agents.
- the treating agents dispenser may comprise a pump suitable to convey one or more of said agents from the dispenser to the washing tub.
- the water is supplied into the washing tub 3 from the water supply circuit 5 by making it flow through the treating agents dispenser 14 and then through a supply pipe 18 .
- a further separate water supply pipe can be provided, which supplies exclusively clean water into the washing tub from the external water supply line.
- a water softening device may preferably be arranged/interposed between the external water supply line and the treating agents dispenser so as to be crossed by the fresh water flowing from the external water supply line.
- the water softening device as known, is structured for reducing the hardness degree of the fresh water drawn from the external water supply line and conveyed to the treating agents dispenser.
- the water softening device may be arranged/interposed between the external water supply line and the washing tub, so as to be crossed by the fresh water flowing from the external water supply line and conveying it directly to the washing tub.
- Laundry washing machine 1 preferably comprises a water outlet circuit 25 suitable for withdrawing liquid from the bottom region 3 a of the washing tub 3 .
- the water outlet circuit 25 preferably comprises a main pipe 17 , a draining pump 27 and an outlet pipe 28 ending outside the cabinet 2 .
- the water outlet circuit 25 preferably further comprises a filtering device 12 arranged between the main pipe 17 and the draining pump 27 .
- the filtering device 12 is adapted to retain all the undesirable bodies (for example buttons that have come off the laundry, coins erroneously introduced into the laundry washing machine, etc.).
- the filtering device 12 can preferably be removed, and then cleaned, through a gate 13 placed advantageously on the front wall of the cabinet 2 of the laundry washing machine 1 , as illustrated in FIG. 1 .
- the main pipe 17 connects the bottom region 3 a of the washing tub 3 to the filtering device 12 .
- the filtering device 12 may be provided directly in the washing tub 3 , preferably obtained in a single piece construction with the latter. In this case, the filtering device 12 is fluidly connected to the outlet of the washing tub 3 , in such a way that water and washing liquid drained from the washing tub 3 enters the filtering device 12 .
- Activation of the draining pump 27 drains the liquid, i.e. dirty water or water mixed with washing and/or rinsing products, from the washing tub 3 to the outside.
- the laundry washing machine 1 preferably comprises a recirculation system 20 which is adapted to drain liquid from the bottom region 3 a of the washing tub 3 and to re-admit such a liquid into a first region 3 b of the washing tub 3 , as better described below.
- the first region 3 b of the washing tub 3 substantially corresponds to an upper region 3 b of the washing tub 3 .
- the liquid is preferably re-admitted to the upper region 3 b of the washing tub 3 in order to improve wetting of the laundry inside the washing drum 4 .
- This action is preferably carried out at the beginning of a washing cycle when the laundry needs to be completely soaked. Furthermore, this action is preferably carried out during rinsing phases at the beginning of the washing cycle or during rinsing phases in successive steps of the washing cycle.
- the recirculation system 20 preferably comprises a first recirculation circuit 30 for conveying liquid to the first region 3 b of the washing tub 3 .
- the first recirculation circuit 30 preferably comprises a first duct 33 terminating at said first region 3 b , preferably ending at the bellows.
- the first duct 33 is preferably provided with a terminal nozzle 33 a.
- the recirculation system 20 preferably comprises a recirculation pump 22 having an outlet 26 connected to the first recirculation circuit 30 for conveying liquid to the first recirculation circuit 30 , more preferably to the first duct 33 .
- the recirculation pump 22 preferably comprises a pump chamber, not shown, having an inlet 24 connected to the bottom 3 a of the washing tub 3 .
- Inlet 24 of the recirculation pump 22 is preferably connected to the bottom 3 a of the washing tub 3 through a suction pipe 32 preferably connected to the filtering device 12 .
- the pump chamber of the recirculation pump 22 then communicates with the outlet 26 for conveying liquid, as said above, to the first recirculation circuit 30 , more preferably to the first duct 33 .
- the recirculation pump 22 comprises a variable speed pump.
- the variable speed recirculation pump 22 is therefore operable at variable speeds to circulate liquid through the first recirculation circuit 30 , more preferably through the first duct 33 .
- the control of the recirculation pump 22 according to the present invention is preferably carried out during the recirculation phase in main washing phase.
- the main washing phase as known, preferably comprises mechanical and/or chemical treating of the laundry by rotating the washing drum and by adding detergent and water inside the washing tub 3 .
- the laundry needs to be completely soaked and the recirculation phase is advantageously carried out.
- control of the recirculation pump 22 according to the present invention may be carried out during the recirculation phase in other phases of a washing cycle, for example in any rinsing phase which follows the main washing phase.
- laundry needs to be cleaned and steps of adding clean water, rotating the washing drum and draining water extracted from the laundry are preferably carried out. Said steps may be consecutively carried out two or more times.
- the rotation speed Rs of the recirculation pump 22 is varied depending to the difference between the detected liquid level Ld inside the washing tub 3 and a prefixed liquid level value Lp.
- the detected liquid level Ld is preferably obtained by means of the sensor device 19 .
- the prefixed liquid level value Lp is preferably set as a value at which liquid inside the washing tub 3 is above the heating device 10 .
- the prefixed liquid level value Lp is also set as a value at which liquid inside the washing tub 3 is below the lower point of the washing drum 4 .
- the prefixed liquid level value Lp is set above the lower point of the washing drum 4 and part of the liquid wet the laundry inside the washing drum 4 thereby improving wetting of the laundry.
- the recirculation pump 22 is preferably activated when the detected liquid level Ld is above the prefixed liquid level value Lp.
- the recirculation pump 22 is preferably deactivated when the detected liquid level Ld is equal to, or goes below to, the prefixed liquid level value Lp.
- an amount of clean water is introduced into the washing tub 3 , preferably through the water supply system 5 , and once the water goes above the prefixed liquid level value Lp the recirculation pump 22 is activated.
- the rotation speed Rs of the recirculation pump 22 is varied so that the rotation speed Rs is directly proportional to the difference between the detected liquid level Ld and the prefixed liquid level value Lp.
- the rotation speed Rs is therefore preferably evaluated as a function of the detected liquid level Ld as follows:
- the rotation speed Rs of the recirculation pump 22 is also increased, preferably according to said function, so that the liquid flowing through the first recirculation circuit 30 , more preferably through the first duct 33 , is in turn increased. Soaking speed of the laundry is therefore increased.
- the level of the liquid inside the washing tub 3 is controlled in order to be maintained as much as possible close to, and preferably above, the prefixed liquid level value Lp.
- the aim of the control of the recirculation pump 22 according to the invention is to circulate the maximum quantity of liquid through the first recirculation circuit 30 , more preferably through the first duct 33 , while assuring that the liquid level inside the washing tub 3 is above the prefixed liquid level value Lp.
- the recirculation pump 22 is controlled so that its rotation speed Rs does not go above a maximum threshold value Rsmax.
- a maximum threshold value Rsmax is preferably chosen in order to limit the noise and/or vibrations generated by the recirculation pump 22 .
- the recirculation pump 22 is controlled so that its minimum rotation speed Rs is equal to a minimum threshold value Rsmin greater than 0.
- the rotation speed Rs is preferably evaluated as a function of the detected liquid level Ld as follows:
- the rotation speed Rs of the recirculation pump 22 is varied over the time according to a continuous function.
- the rotation speed Rs of the recirculation pump 22 is varied over the time according to a step function.
- the method further comprises a step of controlling when the liquid level goes below the prefixed liquid level value Lp and taking one or more actions accordingly.
- the recirculation pump 22 when the liquid level is equal to, or goes below to, the prefixed liquid level value Lp the recirculation pump 22 is deactivated.
- the method comprises a step of reestablishing the prefixed liquid level value Lp inside the washing tub 3 when the liquid level goes below the prefixed liquid level value Lp.
- the step of reestablishing the prefixed liquid level value Lp inside the washing tub 3 is carried out by conveying an amount of water into the washing tub 3 .
- said amount of water is supplied into the washing tub through the water supply system 5 .
- the water introduced into the washing tub 3 has the scope of bringing the liquid level inside the washing tub 3 above the prefixed liquid level value Lp so that the recirculation pump 22 may be activated again and its rotation speed Rs controlled according to the above-described methodology.
- the step of reestablishing the prefixed liquid level value Lp is carried out by extracting an amount of water from the laundry in a dewatering process.
- the dewatering process is preferably carried out by rotating the washing drum 4 at a dewatering speed Ds wherein, preferably, at the dewatering speed Ds the laundry stuck to the inner side wall of the washing drum 4 and water is expelled under the action of centrifugal force.
- FIGS. 3 to 8 show a further preferred embodiment of the invention which differs from the preferred embodiment previously described in that the recirculation system 120 comprises a further recirculation circuit.
- the recirculation system 120 comprises a further recirculation circuit.
- the recirculation system 120 is adapted to drain liquid from the bottom region 3 a of the washing tub 3 and to re-admit such a liquid into a first region 3 b and a second region 3 a of the washing tub 3 , as better described below.
- the first region 3 b of the washing tub 3 substantially corresponds to the upper region 3 b of the washing tub 3 , as described above with reference to the first embodiment illustrated in FIGS. 1 and 2 .
- the liquid is preferably re-admitted to the upper region 3 b of the washing tub 3 in order to improve wetting of the laundry inside the washing drum 4 .
- This action is preferably carried out at the beginning of a washing cycle, during washing or rinsing phases at the beginning of the washing cycle or during rinsing phases in successive steps of the washing cycle.
- the second region 3 a of the washing tub 3 substantially corresponds to the same bottom region 3 a of the washing tub 3 .
- the liquid is preferably re-admitted to the bottom region 3 a of the washing tub 3 for the mixing and/or the dissolution of the products, in particular of the detergent.
- Mixing and/or dissolution of a product is preferably carried out during a washing cycle when one of the products is supplied into the washing tub 3 from the treating agents dispenser 14 .
- the recirculation system 120 preferably comprises a first recirculation circuit 30 for conveying liquid to the first region 3 b of the washing tub 3 and a second recirculation circuit 40 for conveying liquid to the second region 3 a of the washing tub 3 .
- the first recirculation circuit 30 preferably comprises a first duct 33 terminating at said first region 3 b , preferably ending at the bellows 7 , as better illustrated in FIG. 4 .
- the first duct 33 is preferably provided with a terminal nozzle 33 a.
- the second recirculation circuit 40 preferably comprises a second duct 43 terminating at said second region 3 a , preferably ending inside the sump 15 .
- the second duct 43 is preferably provided with a terminal nozzle 43 a.
- the recirculation system 120 then preferably comprises a common variable speed recirculation pump 122 for conveying liquid to the first and second recirculation circuits 30 , 40 , more preferably to the first and second ducts 33 , 43 .
- the recirculation pump 122 preferably comprises a pump chamber 123 having an inlet 124 connected to the bottom 3 a of the washing tub 3 .
- Inlet 124 of the recirculation pump 122 is preferably connected to the bottom 3 a of the washing tub 3 through a suction pipe 32 preferably connected to the filtering device 12 .
- the recirculation pump 122 then preferably has an outlet arrangement 126 for conveying liquid from the pump chamber 123 to the first and second recirculation circuits 30 , 40 .
- the pump chamber 123 preferably receives an impeller 123 a apt to be rotated and to force liquid from the pump chamber 123 towards the outlet arrangement 126 , as illustrated in FIG. 8
- the pump chamber 123 preferably has a substantially cylindrical shape.
- the outlet arrangement 126 preferably comprises a first outlet 158 a connected to the first duct 33 and a second outlet 158 b connected to the second duct 43 .
- the first outlet 158 a preferably comprises a portion of duct which extends tangentially from the pump chamber 123 .
- the second outlet 158 b preferably comprises a portion of duct which extends tangentially from the pump chamber 123 .
- First and the second outlets (ducts) 158 a , 158 b are preferably parallel one to the other.
- first and second outlets 158 a , 158 b are preferably realized at a body portion 150 of the recirculation pump 122 .
- the recirculation circuits 30 , 40 are configured so that the liquid in the second recirculation circuit 40 requires a pressure P 2 to reach the second region 3 a of washing tub 3 which is lower than the pressure P 1 required for the liquid in the first recirculation circuit 30 to reach the first region 3 b of the washing tub 3 .
- the ducts 33 , 43 are configured so that the liquid in the second duct 43 requires a pressure P 2 to reach the second region 3 a of the washing tub 3 which is lower than the pressure P 1 required for a liquid in the first duct 33 to reach the first region 3 b of the washing tub 3 .
- the pressure required for the liquid in the second duct 43 to reach the second region 3 a of the washing tub 3 may vary according to the operational condition of the same second recirculation circuit 40 .
- the pressure required for the liquid in the second duct 43 to reach the second region 3 a of the washing tub 3 while the liquid level inside the washing tub 3 is lower than the position of the terminal nozzle 43 a has a first value P 2 which is lower than the value P 2 ′ of the pressure required for the liquid in the second duct 43 to reach the second region 3 a of the washing tub 3 while the liquid level inside the washing tub 3 is equal or higher than the position of the terminal nozzle 43 a.
- the value P 1 of the pressure required for the liquid in the first duct 33 to reach the first region 3 b of the washing tub 3 does not vary according to the operational conditions of the second recirculation circuit 40 .
- Said pressure value P 1 has the same value irrespective of the liquid level inside the washing tub 3 .
- said pressure values P 2 , P 2 ′ required for the liquid in the second duct 43 to reach the second region 3 a of the washing tub 3 are lower than the pressure value P 1 required for the liquid in the first duct 33 to reach the first region 3 b of the washing tub 3
- the first duct 33 preferably defines a first volume V 1 .
- the first volume V 1 is closely related to the size of the first duct 33 and preferably depends on diameter and length of the same.
- the second duct 43 preferably defines a second volume V 2 .
- the second volume V 2 is closely related to the size of the second duct 43 and preferably depends on diameter and length of the same.
- the second volume V 2 defined by the second duct 43 is lower than the first volume V 1 defined by the first duct 33 .
- the second duct 43 preferably comprises a second pipe connecting the second outlet 158 b to the lower region 3 a of the washing tub 3 .
- the first duct 33 preferably comprises a first pipe, substantially having the same diameter of the second pipe but much longer than the second pipe, connecting the first outlet 158 a to the upper region 3 b of the washing tub 3 .
- the recirculation circuits 30 , 40 are configured so that the liquid in the second recirculation circuit 40 requires a pressure P 2 to fill the second volume V 2 and then to reach the second region 3 a of washing tub 3 which is lower than the pressure P 1 required for the liquid to fill the first volume V 1 in the first recirculation circuit 30 and to reach the first region 3 b of the washing tub 3 .
- the ducts 33 , 43 are configured so that the liquid in the second duct 43 requires a pressure P 2 to fill the second volume V 2 and then to reach the second region 3 a of washing tub 3 which is lower than the pressure P 1 required for the liquid to fill the first volume V 1 in the first duct 33 and to reach the first region 3 b of the washing tub 3 .
- ducts of the recirculation system may be differently configured to achieve the same effect.
- first and the second duct may have the same volume but extending at different heights.
- the recirculation pump 122 comprises a bi-directional variable speed pump operable in a first direction of rotation R 1 and in a second direction of rotation R 2 opposite to the first direction R 1 .
- saying that the recirculation pump 122 is operable in a first direction of rotation R 1 means that the impeller 123 a is rotatable in the first direction of rotation R 1 and saying that the recirculation pump 122 is operable in a second direction of rotation R 2 opposite to the first direction R 1 means that the impeller 123 a is rotatable in the second direction of rotation R 2 opposite to the first direction R 1 .
- the impeller 123 a may be rotated in the first direction of rotation R 1 and in the second direction of rotation R 2 opposite to the first direction R 1 .
- the two directions R 1 and R 2 are depicted in particular in FIGS. 5 and 8 .
- the recirculation pump 122 is operated in the first direction R 1 to circulate liquid in the first duct 33 through the first outlet 158 a to reach the washing tub 3 and is operated in the second direction R 2 to circulate liquid in the second duct 43 through the second outlet 158 b to reach the washing tub 3 .
- the impeller 123 a is rotated in the first direction R 1 to circulate liquid in the first duct 33 through the first outlet 158 a to reach the washing tub 3 and is rotated in the second direction R 2 to circulate liquid in the second duct 43 through the second outlet 158 b to reach the washing tub 3 .
- the pump chamber 123 , the impeller 123 a , first and second outlets 158 a , 158 b are shaped so that when the impeller 123 a rotates in the first direction R 1 the liquid forced by the impeller 123 a itself principally meets the first outlet 158 a and, vice versa, when the impeller 123 a rotates in the second direction R 2 the liquid forced by the impeller 123 a itself principally meets the second outlet 158 b.
- the recirculation pump 122 is operated in the first direction R 1 to circulate liquid in the first duct 33 and to spray liquid inside the washing tub 3 through the terminal nozzle 33 a , more preferably sprayed over the laundry inside the washing drum 4 .
- variable speed recirculation pump 122 is operable at variable speeds in the first direction R 1 to circulate liquid through the first recirculation circuit 30 , more preferably through the first duct 33 , during a recirculation phase of a washing cycle carried out in the laundry washing machine of the invention.
- Control of the rotation speed Rs of the recirculation pump 122 in the first direction R 1 of rotation is carried out according to the invention as described above with reference to the control of the recirculation pump 22 of the first preferred embodiment shown in FIGS. 1 and 2 . Therefore, the rotation speed Rs of the recirculation pump 122 in the first direction of rotation R 1 is varied depending to the difference between the detected liquid level Ld inside the washing tub 3 and a prefixed liquid level value Lp, as shown in FIG. 3 . What has been described for the first preferred embodiment shown in FIGS. 1 and 2 with reference to the control of the recirculation pump 22 shall therefore apply mutatis mutandis to the control of the recirculation pump 122 while rotating in the first direction R 1 of rotation.
- the recirculation pump 122 is operated in the second direction R 2 to circulate liquid only in the second duct 43 through the second outlet 158 b to reach the washing tub 3 .
- the liquid circulates in the second duct 43 and is sprayed inside the washing tub 3 through the terminal nozzle 43 a , more preferably sprayed inside the sump 15 .
- the recirculation pump 122 is operated in the second direction R 2 .
- the recirculation pump 122 may be operated in the second direction R 2 either at a predetermined fixed speed S 2 or at a speed s 2 varying over time.
- the liquid is preferably re-admitted to the bottom region 3 a of the washing tub 3 at a variable speed. Said variation of speed causes a respective variation of the flow rate of the liquid circulating in the second duct 43 .
- the liquid is sprayed inside the sump 15 through the terminal nozzle 43 a at variable intensity. This advantageously enhances mixing and/or dissolution of the products.
- the second speed s 2 of the recirculation pump 122 in the second direction R 2 varies according to a step function.
- the second speed s 2 of the recirculation pump 122 in the second direction R 2 varies according to a continuous function.
- FIGS. 9 to 13 show a further preferred embodiment of the invention which differs from the preferred embodiment previously described with reference to FIGS. 3 to 8 in the shape of the recirculation pump 222 .
- corresponding characteristics and/or components of the embodiments previously described are identified by the same reference numbers.
- the recirculation system 220 preferably comprises a common bi-directional variable speed recirculation pump 222 for conveying liquid to the first and second recirculation circuits 30 , 40 , more preferably to the first and second ducts 33 , 43 .
- the recirculation pump 222 preferably comprises a pump chamber 223 having an inlet 224 connected to the bottom 3 a of the washing tub 3 .
- Inlet 224 of the recirculation pump 222 is preferably connected to the bottom 3 a of the washing tub 3 through a suction pipe 32 preferably connected to the filtering device 12 .
- the recirculation pump 222 then preferably has an outlet arrangement 226 for conveying liquid from the pump chamber 223 to the first and second recirculation circuits 30 , 40 .
- the pump chamber 223 preferably receives an impeller 223 a apt to be rotated and to force liquid from the pump chamber 223 towards the outlet arrangement 226 .
- the pump chamber 223 preferably has a substantially cylindrical shape.
- the outlet arrangement 226 preferably comprises a first outlet 258 a connected to the first duct 33 and a second outlet 258 b connected to the second duct 43 .
- the first outlet 258 a preferably comprises a portion of duct which extends obliquely from the pump chamber 223 .
- the second outlet 258 b preferably comprises a portion of duct which extends obliquely from the pump chamber 223 .
- First and the second outlets (ducts) 258 a , 258 b are preferably parallel one to the other.
- first and second outlets 258 a , 258 b are preferably realized at a body portion 250 of the recirculation pump 222 .
- the recirculation pump 222 is operated in a first direction R 1 to circulate liquid in the first duct 33 through the first outlet 258 a to reach the washing tub 3 and is operated in a second direction R 2 to circulate liquid in the second duct 43 through the second outlet 258 b to reach the washing tub 3 .
- the impeller 223 a is rotated in the first direction R 1 to circulate liquid in the first duct 33 through the first outlet 258 a to reach the washing tub 3 and is rotated in the second direction R 2 to circulate liquid in the second duct 43 through the second outlet 258 b to reach the washing tub 3 .
- the pump chamber 223 , the impeller 223 a , first and second outlets 258 a , 258 b are shaped so that when the impeller 223 a rotates in the first direction R 1 the liquid forced by the impeller 223 a itself principally meets the first outlet 258 a and, vice versa, when the impeller 223 a rotates in the second direction R 2 the liquid forced by the impeller 223 a itself principally meets the second outlet 258 b.
- control of the rotation speed Rs of the recirculation pump 222 in the first direction R 1 of rotation is carried out according to the invention as described above with reference to the control of the recirculation pump 22 of the first preferred embodiment shown in FIGS. 1 and 2 . Therefore, the rotation speed Rs of the recirculation pump 222 in the first direction of rotation R 1 is varied depending to the difference between the detected liquid level Ld and a prefixed liquid level value Lp. What has been described for the first preferred embodiment shown in FIGS. 1 and 2 with reference to the control of the recirculation pump 22 shall therefore apply mutatis mutandis to the control of the recirculation pump 222 while rotating in the first direction R 1 of rotation.
- FIGS. 14 to 18 show a further preferred embodiment of the invention which differs from the preferred embodiments previously described in the shape of the recirculation pump 322 .
- corresponding characteristics and/or components of the embodiments previously described are identified by the same reference numbers.
- the recirculation system 320 preferably comprises a common bi-directional variable speed recirculation pump 322 for conveying liquid to the first and second recirculation circuits 30 , 40 , more preferably to the first and second ducts 33 , 43 .
- the recirculation pump 322 preferably comprises a pump chamber 323 having an inlet 324 connected to the bottom 3 a of the washing tub 3 .
- Inlet 324 of the recirculation pump 322 is preferably connected to the bottom 3 a of the washing tub 3 through a suction pipe 32 preferably connected to the filtering device 12 .
- the recirculation pump 322 then preferably has an outlet arrangement 326 for conveying liquid from the pump chamber 323 to the first and second recirculation circuits 30 , 40 .
- the pump chamber 323 preferably receives an impeller 323 a apt to be rotated and to force liquid from the pump chamber 323 towards the outlet arrangement 326 .
- the pump chamber 323 preferably has a substantially cylindrical shape.
- the outlet arrangement 326 preferably comprises a common outlet portion 358 from the pump chamber 323 and a bifurcation 360 having a first outlet 360 a for the first duct 33 and a second outlet 360 b for the second duct 43 .
- common outlet portion 358 and bifurcation 360 are realized at a body portion 350 of the pump recirculation 322 .
- the bifurcation 360 is preferably substantially Y shaped and configured so that the two ducts 33 , 43 preferably extend upwardly from the bifurcation 360 .
- the recirculation pump 322 is operated in a first direction R 1 to circulate liquid in the first duct 33 to reach the washing tub 3 and is operated in a second direction R 2 to circulate liquid in the second duct 43 to reach the washing tub 3 .
- the impeller 323 a is rotated in the first direction R 1 to circulate liquid in the first duct 33 to reach the washing tub 3 and is rotated in the second direction R 2 to circulate liquid in the second duct 43 to reach the washing tub 3 .
- control of the rotation speed Rs of the recirculation pump 322 in the first direction R 1 of rotation is carried out according to the invention as described above with reference to the control of the recirculation pump 22 of the first preferred embodiment shown in FIGS. 1 and 2 . Therefore, the rotation speed Rs of the recirculation pump 322 in the first direction of rotation R 1 is varied depending to the difference between the detected liquid level Ld inside a washing tub 3 and a prefixed liquid level value Lp. What has been described for the first preferred embodiment shown in FIGS. 1 and 2 with reference to the control of the recirculation pump 22 shall therefore apply mutatis mutandis to the control of the recirculation pump 322 while rotating in the first direction R 1 of rotation.
- FIGS. 19 to 23 show a further preferred embodiment of the invention.
- corresponding characteristics and/or components of the embodiments previously described are identified by the same reference numbers.
- the recirculation system 420 preferably comprises a common variable speed recirculation pump 422 comprising an inlet 424 connected to the bottom 3 a of the washing tub 3 and an outlet 426 for conveying liquid to the first and second recirculation circuits 30 , 40 , more preferably to the first and second ducts 33 , 43 .
- Inlet 424 of the recirculation pump 422 is preferably connected to the bottom 3 a of the washing tub 3 through a pipe 32 preferably connected to the filtering device 12 .
- outlet 426 of the recirculation pump 422 conveys liquid to the first duct 33 and the second duct 43 through a bifurcation 460 .
- an outlet duct 462 is connected to the pump outlet 426 and the bifurcation 460 is realized at an outlet duct end 462 a thereof.
- the bifurcation 460 is preferably Y shaped.
- the liquid continuously flows from the inlet duct 424 concurrently to the first duct 33 and the second duct 43 .
- the recirculation pump 422 is operated at a first speed s 1 to circulate liquid only in the second recirculation circuit 40 to reach the washing tub 3 and the recirculation pump 422 is operated at a second speed s 2 to circulate liquid both in the first recirculation circuit 30 and the second recirculation circuit 40 to reach the washing tub 3 .
- the recirculation pump 422 is operated at a first speed s 1 to circulate liquid only in the second duct 43 to reach the washing tub 3 and the recirculation pump 422 is operated at a second speed s 2 to circulate liquid both in the first duct 33 and the second duct 43 to reach the washing tub 3 .
- the liquid may partially fill the first recirculation circuit 30 , in particular the first duct 33 , but it does not reach the washing tub 3 .
- the recirculation pump 422 is operated at a first speed s 1 .
- the recirculation pump 422 is operated at a second speed s 2 higher than the first speed s 1 .
- liquid is also re-admitted to the bottom region 3 a of the washing tub 3 through the second recirculation circuit 40 .
- the liquid may circulate only in the second recirculation circuit 40 and not in the first recirculation circuit 30 thanks to the asymmetry of the two lines 30 , 40 .
- the recirculation circuits 30 , 40 are configured so that the liquid in the second recirculation circuit 40 requires a pressure P 2 to reach the second region 3 a of washing tub 3 which is lower than the pressure P 1 required for the liquid in the first recirculation circuit 30 to reach the first region 3 b of the washing tub 3 . Symmetry of the two lines 30 , 40 must therefore be avoided. More preferably, the ducts 33 , 43 are configured so that the liquid in the second duct 43 requires a pressure P 2 to reach the second region 3 a of the washing tub 3 which is lower than the pressure P 1 required for a liquid in the first duct 33 to reach the first region 3 a of the washing tub 3 . Symmetry of the two ducts 33 , 43 must therefore be avoided.
- the pressure required for the liquid in the second duct 43 to reach the second region 3 a of the washing tub 3 may vary according to the operational condition of the same second recirculation circuit 40 .
- the pressure required for the liquid in the second duct 43 to reach the second region 3 a of the washing tub 3 while the liquid level inside the washing tub 3 is lower than the position of the terminal nozzle 43 a has a first value P 2 which is lower than the value P 2 ′ of the pressure required for the liquid in the second duct 43 to reach the second region 3 a of the washing tub 3 while the liquid level inside the washing tub 3 is equal or higher than the position of the terminal nozzle 43 a.
- the value P 1 of the pressure required for the liquid in the first duct 33 to reach the first region 3 b of the washing tub 3 does not vary according to the operational condition of the second recirculation circuit 40 .
- Said pressure value P 1 has the same value irrespective of the liquid level inside the washing tub 3 .
- said pressure values P 2 , P 2 ′ for the liquid in the second duct 43 to reach the second region 3 a of washing tub 3 are lower than the pressure value P 1 for the liquid in the first duct 33 to reach the first region 3 b of the washing tub 3 .
- the second duct 43 preferably defines a second volume V 2 .
- the second volume V 2 is closely related to the size of the second duct 43 and preferably depends on diameter and length of the same.
- the first duct 33 preferably defines a first volume V 1 .
- the first volume V 1 is closely related to the size of the first duct 33 and preferably depends on diameter and length of the same.
- the second volume V 2 defined by the second duct 43 is lower than the first volume V 1 defined by the first duct 33 .
- the second duct 43 preferably comprises a second pipe connecting the bifurcation 460 to the lower region 3 a of the washing tub 3 .
- the first duct 33 preferably comprises a first pipe, substantially having the same diameter of the second pipe but much longer than the second pipe, connecting the bifurcation 460 to the upper region 3 b of the washing tub 3 .
- the recirculation circuits 30 , 40 are configured so that the liquid in the second recirculation circuit 40 requires a pressure P 2 to fill the second volume V 2 and then to reach the second region 3 a of the washing tub 3 which is lower than the pressure P 1 required for the liquid to fill the first volume V 1 in the first recirculation circuit 30 and to reach the first region 3 b of the washing tub 3 .
- the ducts 33 , 43 are configured so that the liquid in the second duct 43 requires a pressure P 2 to fill the second volume V 2 and then to reach the second region 3 a of washing tub 3 which is lower than the pressure P 1 required for the liquid to fill the first volume V 1 in the first duct 33 and to reach the first region 3 b of the washing tub 3 .
- ducts of the recirculation system may be differently configured to achieve the same effect.
- first and the second duct may have the same volume but extending at different highs.
- the recirculation system 420 shows a threshold point between a condition wherein the liquid circulates only in the second recirculation circuit 40 , or second duct 43 , and a condition wherein the liquid circulates both in the first recirculation circuit 30 and the second recirculation circuit 40 , or ducts 33 , 43 .
- the recirculation pump 422 shows a speed threshold RSt wherein if the recirculation pump 422 is operated at a speed below, or equal to, the speed threshold RSt the liquid circulates only in the second recirculation circuit 40 , or second duct 43 , and if the recirculation pump 422 is operated at a speed above the speed threshold RSt the liquid circulates both in the first recirculation circuit 30 and the second recirculation circuit 40 , or ducts 33 , 43 .
- the recirculation pump 422 is operated at a second speed s 2 above the speed threshold RSt to circulate liquid in the first duct 33 and to spray liquid inside the washing tub 3 through the terminal nozzle 33 a , more preferably sprayed over the laundry inside the washing drum 4 .
- variable speed recirculation pump 422 is operable at variable speeds above the speed threshold RSt to circulate liquid through the first recirculation circuit 30 , more preferably to the first duct 33 , during a recirculation phase of a washing cycle carried out in the laundry washing machine of the invention.
- Control of the rotation speed Rs of the recirculation pump 422 is carried out according to the invention as described above with reference to the control of the recirculation pump 22 of the first preferred embodiment shown in FIGS. 1 and 2 .
- the rotation speed Rs of the recirculation pump 422 is varied depending to the difference between the detected liquid level Ld inside the washing tub 3 and a prefixed liquid level value Lp.
- a minimum threshold rotation speed Rsmin is preferably set for the recirculation pump 420 .
- the minimum threshold value Rsmin is preferably set equal to, or greater than, said speed threshold RSt.
- the rotation speed Rs is evaluated as a function of the detected liquid level Ld as follows:
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Abstract
A method for operating a laundry washing machine comprising a washing tub external to a washing drum, a recirculation system comprising a recirculation circuit configured to drain liquid from the bottom of the washing tub and to re-admit such liquid into the washing tub, a liquid level sensor device configured to detect the liquid level inside the washing tub, and a variable speed recirculation pump connected to the recirculation circuit. The method comprises a recirculation phase comprising controlling the recirculation pump by varying the rotation speed of the recirculation pump depending on a difference between the detected liquid level and a prefixed liquid level value.
Description
- The present invention concerns the field of laundry washing techniques.
- Specifically, the invention relates to a method for controlling a laundry washing machine equipped with a recirculation circuit.
- Nowadays the use of laundry washing machines, both “simple” laundry washing machines (i.e. laundry washing machines which can only wash and rinse laundry) and laundry washing-drying machines (i.e. laundry washing machines which can also dry laundry), is widespread.
- In the present description, therefore, the term “laundry washing machine” will refer to both a simple laundry washing machine and a laundry washing-drying machine.
- Laundry washing machines generally comprise an external casing, or cabinet, provided with a washing tub which contains a rotatable perforated washing drum where the laundry is placed. A loading/unloading door ensures access to the washing drum.
- Laundry washing machines typically comprise a water supply unit and a treating agents dispenser, preferably equipped with a drawer, for the introduction of water and washing/rinsing products (i.e. detergent, softener, rinse conditioner, etc.) into the washing tub.
- Known laundry washing machines are typically provided with a water outlet circuit suitable for withdrawing liquid, for example dirty water, from the bottom of the washing tub to the outside. The water outlet circuit is typically provided with a controllable draining pump.
- Known laundry washing machines are also typically provided with one or more recirculation circuits.
- A known recirculation circuit which equips laundry washing machines is adapted to drain liquid from the bottom region of the washing tub and to re-admit such a liquid into an upper region of the washing tub. The recirculation circuit is preferably provided with a terminal nozzle opportunely arranged so that the recirculated liquid is conveyed over the laundry and distribution of the same liquid over the laundry is enhanced. The recirculation circuit is typically provided with a recirculation pump.
- During the washing cycle, the recirculation pump is opportunely activated at proper times to recirculate liquid from the bottom of the washing tub and to convey it over the laundry.
- This recirculation phase is preferably carried out at the beginning of a washing cycle when the laundry needs to be completely soaked. Furthermore, this action is preferably carried out during rinsing phases at the beginning of the washing cycle and/or during rinsing phases in successive steps of the washing cycle, for example rinsing phases following the main washing phase.
- The aim of a recirculation phase is generally to improve wetting of the laundry received in the washing drum, preferably either at the beginning of the washing cycle before the main washing phase with use of detergent or in any rinsing phase of the washing cycle.
- According to a preferred embodiment of the known technique, the recirculation phase is carried out by operating the recirculation pump at a prefixed speed for a prefixed/estimated period of time.
- The recirculation pump is then deactivated when said period of time elapses.
- Furthermore, the recirculation pump may be deactivated within said period of time if the liquid level inside the washing tub goes below a minimum threshold value, for example a minimum threshold value set above the pump inlet in order to avoid suction cavitation.
- An aim of the present invention is to improve wetting of laundry during a recirculation phase compared to known techniques.
- Another aim of the present invention is to accelerate wetting of laundry during a recirculation phase compared to known techniques.
- It is a further aim of the invention the optimization of the recirculation of the washing liquid and the laundry wetting assuring the necessary water level inside the washing tub.
- It is another aim of the invention the optimization of the recirculation of the washing liquid flow in function of its actual quantity collected inside the washing tub.
- Applicant has found that by providing a laundry washing machine comprising a washing tub external to a washing drum and a recirculation system comprising a first duct terminating at a first region of the washing tub and by providing a variable speed recirculation pump operable at a speed depending to the detected liquid level inside the washing tub, it is possible to reach the mentioned objects.
- In a first aspect thereof the present invention relates, therefore, to a method for operating a laundry washing machine comprising:
-
- a washing tub external to a washing drum suited to receive the laundry to be washed;
- a water supply system suitable to convey water to said washing tub;
- a recirculation system comprising a recirculation circuit apt to drain liquid from the bottom of said washing tub and to re-admit such liquid into a first region of said washing tub, said recirculation system comprising a variable speed recirculation pump having an outlet connected to said recirculation circuit and wherein said recirculation pump is operable at variable speeds to circulate liquid through said recirculation circuit;
- a liquid level sensor device suited to detect the liquid level inside said washing tub;
- the method comprising a recirculation phase to drain liquid from said bottom of said washing tub and to re-admit such liquid into said first region of said washing tub through said recirculation circuit, wherein said recirculation phase comprises the step of controlling said recirculation pump by varying the rotation speed of said recirculation pump depending to the difference between the detected liquid level and a prefixed liquid level value.
- Preferably, the method comprises a step of activating the recirculation pump when the detected liquid level is above the prefixed liquid level value.
- Preferably, the method comprises a step of deactivating the recirculation pump when the detected liquid level is equal to, or goes below to, the prefixed liquid level value.
- In a preferred embodiment of the invention, the rotation speed of the recirculation pump is directly proportional to the difference between the detected liquid level and the prefixed liquid level value.
- According to a preferred embodiment of the invention, the rotation speed of the recirculation pump is comprised between a minimum threshold value and a maximum threshold value.
- In a preferred embodiment of the invention, the minimum threshold value is zero.
- In a further preferred embodiment of the invention, the minimum threshold value is greater than zero.
- According to a preferred embodiment of the invention, the rotation speed of the recirculation pump is varied over the time according to a continuous function or a step function.
- In a preferred embodiment of the invention, the method further comprises a step of reestablishing the prefixed liquid level value inside the washing tub when the liquid level goes below the prefixed liquid level value by conveying an amount of water into the washing tub.
- Preferably, said amount of water is supplied into the washing tub through the water supply system.
- In a further preferred embodiment of the invention, the method further comprises a step of reestablishing the prefixed liquid level value inside the washing tub when the liquid level goes below the prefixed liquid level value by extracting an amount of water from the laundry in a dewatering process carried out by rotating the washing drum at a dewatering speed.
- Preferably, at said dewatering speed laundry stuck to the inner side wall of the washing drum
- In a preferred embodiment of the invention, the recirculation system comprises a second recirculation circuit apt to drain liquid from the bottom of the washing tub and to re-admit such liquid into a second region of the washing tub, wherein the variable speed recirculation pump is a bi-directional variable speed pump having a second outlet connected to the second recirculation circuit, said recirculation phase being performed activating said recirculation pump in a first direction of rotation, and wherein the method comprises a further recirculation phase to drain liquid from the bottom of the washing tub and to re-admit such liquid into the second region of the washing tub through the second recirculation circuit, wherein the further recirculation phase comprises the step of activating the recirculation pump in a second direction of rotation opposite the first direction of rotation.
- According to a preferred embodiment of the invention, the recirculation pump is operated in the second direction at a first fixed speed.
- According to a further preferred embodiment of the invention, the recirculation pump is operated in the second direction at a speed varying over the time.
- In a further preferred embodiment of the invention, the recirculation system comprises a second recirculation circuit apt to drain liquid from the bottom of the washing tub and to re-admit such liquid into a second region of the washing tub, wherein the outlet conveys liquid to a bifurcation for the recirculation circuit and the second recirculation circuit, wherein the recirculation circuits are configured so that a liquid in the second recirculation circuit requires a pressure to reach the washing tub which is lower than the pressure required for a liquid in the recirculation circuit to reach the washing tub, and wherein the recirculation pump is operated at a first speed below, or equal to, a speed threshold to circulate liquid only in the second recirculation circuit to reach the washing tub and the recirculation pump is operated at a second speed above the speed threshold to circulate liquid both in the first recirculation circuit and the second recirculation circuit to reach the washing tub, wherein the step of controlling the recirculation pump by varying the rotation speed of the recirculation pump depending to the difference between the detected liquid level and the prefixed liquid level value is carried out when the recirculation pump is operated above the speed threshold.
- According to a preferred embodiment of the invention, the recirculation pump is operated at a first speed to circulate liquid only in the second recirculation circuit to reach a bottom region of the washing tub and is operated at the second speed to circulate liquid also in the first recirculation circuit to reach an upper region of the washing tub.
- Preferably, the first region of the washing tub is an upper region of the washing tub.
- Preferably, the second region of the washing tub is a bottom region of the washing tub.
- Further characteristics and advantages of the present invention will be highlighted in greater detail in the following detailed description of some of its preferred embodiments, provided with reference to the enclosed drawings. In the drawings, corresponding characteristics and/or components are identified by the same reference numbers. In particular:
-
FIG. 1 shows a perspective view of a laundry washing machine where a method according to a first preferred embodiment of the invention is implemented; -
FIG. 2 shows a schematic view of the laundry washing machine ofFIG. 1 ; -
FIG. 3 shows a schematic view of a laundry washing machine according to a second preferred embodiment of the invention; -
FIG. 4 shows a perspective view of a laundry washing machine according to the second preferred embodiment of the invention with some external casing sides removed therefrom; -
FIG. 5 shows some elements ofFIG. 4 isolated from the rest; -
FIG. 6 shows an element ofFIG. 5 isolated from the rest; -
FIG. 7 is a plan view from above of the element ofFIG. 6 ; -
FIG. 8 is a plan sectional view taken along line VIII°-VIII° ofFIG. 7 ; -
FIG. 9 shows a detail of a further embodiment ofFIG. 4 ; -
FIG. 10 shows some elements ofFIG. 9 isolated from the rest; -
FIG. 11 shows an element ofFIG. 10 isolated from the rest; -
FIG. 12 is a plan view from above of the element ofFIG. 11 ; -
FIG. 13 is a plan sectional view taken along line XIII°-XIII° ofFIG. 12 ; -
FIG. 14 shows a detail of a further embodiment ofFIG. 4 ; -
FIG. 15 shows some elements ofFIG. 14 isolated from the rest; -
FIG. 16 shows an element ofFIG. 15 isolated from the rest; -
FIG. 17 is a plan view from above of the element ofFIG. 16 ; -
FIG. 18 is a plan sectional view taken along line XVIII°-XVIII° ofFIG. 17 ; -
FIG. 19 shows a further embodiment ofFIG. 4 ; -
FIG. 20 shows some elements ofFIG. 19 isolated from the rest; -
FIG. 21 shows some elements ofFIG. 20 isolated from the rest; -
FIG. 22 shows some elements ofFIG. 21 isolated from the rest; -
FIG. 23 shows a partial sectional view ofFIG. 22 . - The present invention has proved to be particularly advantageous when applied to laundry washing machines, as described below. It should in any case be underlined that the present invention is not limited to laundry washing machines. On the contrary, the present invention can be conveniently applied to laundry washing-drying machines (i.e. laundry washing machines which can also dry laundry).
- With reference to
FIGS. 1 and 2 a preferred embodiment of alaundry washing machine 1 in which a method according to a preferred embodiment of the invention is implemented is shown. - The
laundry washing machine 1 preferably comprises an external casing orcabinet 2, awashing tub 3, acontainer 4, preferably aperforated washing drum 4, where the laundry to be treated can be loaded. - The
washing tub 3 and thewashing drum 4 both preferably have a substantially cylindrical shape. - The
washing tub 3 is preferably connected to thecabinet 2 by means of an elastic bellows, not shown. The bellows is preferably S-shaped. - The
cabinet 2 is provided with a loading/unloading door 8 which allows access to thewashing drum 4. - The
washing drum 4 is advantageously rotated by an electric motor, not illustrated, which preferably transmits the rotating motion to the shaft of thewashing drum 4, advantageously by means of a belt/pulley system. In a different embodiment of the invention, the motor can be directly associated with the shaft of thewashing drum 4. - The
washing drum 4 is advantageously provided with holes which allow the liquid flowing therethrough. Said holes are typically and preferably homogeneously distributed on the cylindrical side wall of thewashing drum 4. - The
bottom region 3 a of thewashing tub 3 preferably comprises aseat 15, or sump, suitable for receiving aheating device 10. Theheating device 10, when activated, heats the liquid inside thesump 15. - In different embodiments, nevertheless, the bottom region of the washing tub may be configured differently. For example, the bottom region of the washing tub may not comprise a seat for the heating device. The heating device may be advantageously placed in the annular gap between the washing tub and the washing drum.
- Preferably, the
laundry washing machine 1 comprises adevice 19 suited to detect the liquid level inside thewashing tub 3. - The
sensor device 19 preferably comprises a pressure sensor which senses the pressure in thewashing tub 3. From the values sensed by thesensor device 19 it is possible to determine the liquid level of the liquid inside thewashing tub 3. In another embodiment, not illustrated, laundry washing machine may preferably comprise (in addition to or as a replacement of the pressure sensor) a level sensor (for example mechanical, electro-mechanical, optical, etc.) adapted to detect the liquid level inside thewashing tub 3. - A
water supply circuit 5 is preferably arranged in the upper part of thelaundry washing machine 1 and is suited to supply water into thewashing tub 3 from an external water supply line E. Thewater supply circuit 5 preferably comprises a controlledsupply valve 5 a which is properly controlled, opened and closed, during the washing cycle. The water supply circuit of a laundry washing machine is well known in the art, and therefore it will not be described in detail. - The
laundry washing machine 1 advantageously comprises a treatingagents dispenser 14 to supply one or more treating agents into thewashing tub 3 during a washing cycle. Treating agents may comprise, for example, detergents, rinse additives, fabric softeners or fabric conditioners, waterproofing agents, fabric enhancers, rinse sanitization additives, chlorine-based additives, etc. - Preferably, the treating
agents dispenser 14 comprises aremovable drawer 6 provided with various compartments suited to be filled with treating agents. - In a preferred embodiment, not illustrated, the treating agents dispenser may comprise a pump suitable to convey one or more of said agents from the dispenser to the washing tub.
- In the preferred embodiment here illustrated, the water is supplied into the
washing tub 3 from thewater supply circuit 5 by making it flow through the treatingagents dispenser 14 and then through asupply pipe 18. - In an alternative embodiment of the invention, a further separate water supply pipe can be provided, which supplies exclusively clean water into the washing tub from the external water supply line.
- In further preferred embodiments, not illustrated herein, a water softening device may preferably be arranged/interposed between the external water supply line and the treating agents dispenser so as to be crossed by the fresh water flowing from the external water supply line. The water softening device, as known, is structured for reducing the hardness degree of the fresh water drawn from the external water supply line and conveyed to the treating agents dispenser.
- In a different embodiment, the water softening device may be arranged/interposed between the external water supply line and the washing tub, so as to be crossed by the fresh water flowing from the external water supply line and conveying it directly to the washing tub.
-
Laundry washing machine 1 preferably comprises awater outlet circuit 25 suitable for withdrawing liquid from thebottom region 3 a of thewashing tub 3. - The
water outlet circuit 25 preferably comprises amain pipe 17, a drainingpump 27 and anoutlet pipe 28 ending outside thecabinet 2. - The
water outlet circuit 25 preferably further comprises afiltering device 12 arranged between themain pipe 17 and the drainingpump 27. Thefiltering device 12 is adapted to retain all the undesirable bodies (for example buttons that have come off the laundry, coins erroneously introduced into the laundry washing machine, etc.). Thefiltering device 12 can preferably be removed, and then cleaned, through agate 13 placed advantageously on the front wall of thecabinet 2 of thelaundry washing machine 1, as illustrated inFIG. 1 . - The
main pipe 17 connects thebottom region 3 a of thewashing tub 3 to thefiltering device 12. - In a further embodiment, not illustrated, the
filtering device 12 may be provided directly in thewashing tub 3, preferably obtained in a single piece construction with the latter. In this case, thefiltering device 12 is fluidly connected to the outlet of thewashing tub 3, in such a way that water and washing liquid drained from thewashing tub 3 enters thefiltering device 12. - Activation of the draining
pump 27 drains the liquid, i.e. dirty water or water mixed with washing and/or rinsing products, from thewashing tub 3 to the outside. - According to the invention, the
laundry washing machine 1 preferably comprises arecirculation system 20 which is adapted to drain liquid from thebottom region 3 a of thewashing tub 3 and to re-admit such a liquid into afirst region 3 b of thewashing tub 3, as better described below. - Preferably, the
first region 3 b of thewashing tub 3 substantially corresponds to anupper region 3 b of thewashing tub 3. The liquid is preferably re-admitted to theupper region 3 b of thewashing tub 3 in order to improve wetting of the laundry inside thewashing drum 4. This action is preferably carried out at the beginning of a washing cycle when the laundry needs to be completely soaked. Furthermore, this action is preferably carried out during rinsing phases at the beginning of the washing cycle or during rinsing phases in successive steps of the washing cycle. - The
recirculation system 20 preferably comprises afirst recirculation circuit 30 for conveying liquid to thefirst region 3 b of thewashing tub 3. - The
first recirculation circuit 30 preferably comprises afirst duct 33 terminating at saidfirst region 3 b, preferably ending at the bellows. Thefirst duct 33 is preferably provided with aterminal nozzle 33 a. - The
recirculation system 20 preferably comprises arecirculation pump 22 having anoutlet 26 connected to thefirst recirculation circuit 30 for conveying liquid to thefirst recirculation circuit 30, more preferably to thefirst duct 33. - The
recirculation pump 22 preferably comprises a pump chamber, not shown, having aninlet 24 connected to the bottom 3 a of thewashing tub 3.Inlet 24 of therecirculation pump 22 is preferably connected to the bottom 3 a of thewashing tub 3 through asuction pipe 32 preferably connected to thefiltering device 12. - The pump chamber of the
recirculation pump 22 then communicates with theoutlet 26 for conveying liquid, as said above, to thefirst recirculation circuit 30, more preferably to thefirst duct 33. - According to an advantageous aspect of the invention, the
recirculation pump 22 comprises a variable speed pump. The variablespeed recirculation pump 22 is therefore operable at variable speeds to circulate liquid through thefirst recirculation circuit 30, more preferably through thefirst duct 33. - In the following, we will refer to the control of the
recirculation pump 22 during a recirculation phase of a washing cycle carried out in thelaundry washing machine 1 of the invention. - The control of the
recirculation pump 22 according to the present invention is preferably carried out during the recirculation phase in main washing phase. The main washing phase, as known, preferably comprises mechanical and/or chemical treating of the laundry by rotating the washing drum and by adding detergent and water inside thewashing tub 3. During the main washing phase the laundry needs to be completely soaked and the recirculation phase is advantageously carried out. - Anyway, control of the
recirculation pump 22 according to the present invention may be carried out during the recirculation phase in other phases of a washing cycle, for example in any rinsing phase which follows the main washing phase. - After the main washing phase, laundry needs to be cleaned and steps of adding clean water, rotating the washing drum and draining water extracted from the laundry are preferably carried out. Said steps may be consecutively carried out two or more times.
- Addition of clean water is advantageously carried through a recirculation phase according to the invention.
- According to an advantageous aspect of the invention, the rotation speed Rs of the
recirculation pump 22 is varied depending to the difference between the detected liquid level Ld inside thewashing tub 3 and a prefixed liquid level value Lp. - The detected liquid level Ld is preferably obtained by means of the
sensor device 19. - According to a preferred embodiment of the invention, the prefixed liquid level value Lp is preferably set as a value at which liquid inside the
washing tub 3 is above theheating device 10. Preferably, the prefixed liquid level value Lp is also set as a value at which liquid inside thewashing tub 3 is below the lower point of thewashing drum 4. - In further preferred embodiments, the prefixed liquid level value Lp is set above the lower point of the
washing drum 4 and part of the liquid wet the laundry inside thewashing drum 4 thereby improving wetting of the laundry. - Variation of the rotation speed Rs of the
recirculation pump 22 according to the invention, as better explained below, is carried out while therecirculation pump 22 is active. - According to an advantageous aspect of the invention, the
recirculation pump 22 is preferably activated when the detected liquid level Ld is above the prefixed liquid level value Lp. On the contrary, therecirculation pump 22 is preferably deactivated when the detected liquid level Ld is equal to, or goes below to, the prefixed liquid level value Lp. - For example, referring to a rinsing phase which follows the main washing phase, an amount of clean water is introduced into the
washing tub 3, preferably through thewater supply system 5, and once the water goes above the prefixed liquid level value Lp therecirculation pump 22 is activated. - Preferably, according to the invention, the rotation speed Rs of the
recirculation pump 22 is varied so that the rotation speed Rs is directly proportional to the difference between the detected liquid level Ld and the prefixed liquid level value Lp. The rotation speed Rs is therefore preferably evaluated as a function of the detected liquid level Ld as follows: -
Rs=k*(Ld−Lp) if Ld>Lp -
Rs=0 if Ld≤Lp - wherein k is the coefficient of proportionality.
- When the detected liquid level Ld increases above the prefixed liquid level value Lp, the rotation speed Rs of the
recirculation pump 22 is also increased, preferably according to said function, so that the liquid flowing through thefirst recirculation circuit 30, more preferably through thefirst duct 33, is in turn increased. Soaking speed of the laundry is therefore increased. - At the same time, the level of the liquid inside the
washing tub 3 is controlled in order to be maintained as much as possible close to, and preferably above, the prefixed liquid level value Lp. - The aim of the control of the
recirculation pump 22 according to the invention is to circulate the maximum quantity of liquid through thefirst recirculation circuit 30, more preferably through thefirst duct 33, while assuring that the liquid level inside thewashing tub 3 is above the prefixed liquid level value Lp. - Advantageously, either a good soaking of the laundry is reached and a minimum amount of liquid inside the
washing tub 3 is assured thus avoiding suction cavitation for therecirculation pump 22. - According to a preferred embodiment of the invention, the
recirculation pump 22 is controlled so that its rotation speed Rs does not go above a maximum threshold value Rsmax. - In such a case, even if the difference between the detected liquid level Ld and the prefixed liquid level value Lp has a high value, the rotation speed Rs is limited to said maximum threshold value Rsmax.
- A maximum threshold value Rsmax is preferably chosen in order to limit the noise and/or vibrations generated by the
recirculation pump 22. - According to a preferred embodiment of the invention, the
recirculation pump 22 is controlled so that its minimum rotation speed Rs is equal to a minimum threshold value Rsmin greater than 0. - Preferably in such a case the rotation speed Rs is preferably evaluated as a function of the detected liquid level Ld as follows:
-
Rs=k*(Ld−Lp)+Rsmin if Ld>Lp -
Rs=0 if Ld≤Lp - In a preferred embodiment, the rotation speed Rs of the
recirculation pump 22 is varied over the time according to a continuous function. - In a further preferred embodiment, the rotation speed Rs of the
recirculation pump 22 is varied over the time according to a step function. - According to an advantageous aspect of the invention, the method further comprises a step of controlling when the liquid level goes below the prefixed liquid level value Lp and taking one or more actions accordingly.
- Preferably, as already mentioned above, when the liquid level is equal to, or goes below to, the prefixed liquid level value Lp the
recirculation pump 22 is deactivated. - In a preferred embodiment of the invention, the method comprises a step of reestablishing the prefixed liquid level value Lp inside the
washing tub 3 when the liquid level goes below the prefixed liquid level value Lp. - In a first preferred embodiment of the invention, the step of reestablishing the prefixed liquid level value Lp inside the
washing tub 3 is carried out by conveying an amount of water into thewashing tub 3. Preferably said amount of water is supplied into the washing tub through thewater supply system 5. The water introduced into thewashing tub 3 has the scope of bringing the liquid level inside thewashing tub 3 above the prefixed liquid level value Lp so that therecirculation pump 22 may be activated again and its rotation speed Rs controlled according to the above-described methodology. - In another preferred embodiment of the invention, the step of reestablishing the prefixed liquid level value Lp is carried out by extracting an amount of water from the laundry in a dewatering process.
- The dewatering process is preferably carried out by rotating the
washing drum 4 at a dewatering speed Ds wherein, preferably, at the dewatering speed Ds the laundry stuck to the inner side wall of thewashing drum 4 and water is expelled under the action of centrifugal force. -
FIGS. 3 to 8 show a further preferred embodiment of the invention which differs from the preferred embodiment previously described in that therecirculation system 120 comprises a further recirculation circuit. In the drawings, corresponding characteristics and/or components of the first embodiment previously described are identified by the same reference numbers. - The
recirculation system 120 is adapted to drain liquid from thebottom region 3 a of thewashing tub 3 and to re-admit such a liquid into afirst region 3 b and asecond region 3 a of thewashing tub 3, as better described below. - Preferably, the
first region 3 b of thewashing tub 3 substantially corresponds to theupper region 3 b of thewashing tub 3, as described above with reference to the first embodiment illustrated inFIGS. 1 and 2 . The liquid is preferably re-admitted to theupper region 3 b of thewashing tub 3 in order to improve wetting of the laundry inside thewashing drum 4. This action, as said above, is preferably carried out at the beginning of a washing cycle, during washing or rinsing phases at the beginning of the washing cycle or during rinsing phases in successive steps of the washing cycle. - Preferably, the
second region 3 a of thewashing tub 3 substantially corresponds to the samebottom region 3 a of thewashing tub 3. The liquid is preferably re-admitted to thebottom region 3 a of thewashing tub 3 for the mixing and/or the dissolution of the products, in particular of the detergent. Mixing and/or dissolution of a product is preferably carried out during a washing cycle when one of the products is supplied into thewashing tub 3 from the treatingagents dispenser 14. - The
recirculation system 120 preferably comprises afirst recirculation circuit 30 for conveying liquid to thefirst region 3 b of thewashing tub 3 and asecond recirculation circuit 40 for conveying liquid to thesecond region 3 a of thewashing tub 3. - The
first recirculation circuit 30 preferably comprises afirst duct 33 terminating at saidfirst region 3 b, preferably ending at thebellows 7, as better illustrated inFIG. 4 . Thefirst duct 33 is preferably provided with aterminal nozzle 33 a. - The
second recirculation circuit 40 preferably comprises asecond duct 43 terminating at saidsecond region 3 a, preferably ending inside thesump 15. Thesecond duct 43 is preferably provided with aterminal nozzle 43 a. - The
recirculation system 120 then preferably comprises a common variablespeed recirculation pump 122 for conveying liquid to the first andsecond recirculation circuits second ducts - The
recirculation pump 122 preferably comprises apump chamber 123 having aninlet 124 connected to the bottom 3 a of thewashing tub 3.Inlet 124 of therecirculation pump 122 is preferably connected to the bottom 3 a of thewashing tub 3 through asuction pipe 32 preferably connected to thefiltering device 12. - The
recirculation pump 122 then preferably has anoutlet arrangement 126 for conveying liquid from thepump chamber 123 to the first andsecond recirculation circuits - The
pump chamber 123 preferably receives animpeller 123 a apt to be rotated and to force liquid from thepump chamber 123 towards theoutlet arrangement 126, as illustrated inFIG. 8 - The
pump chamber 123 preferably has a substantially cylindrical shape. - In a preferred embodiment of the invention and according to
FIGS. 5 to 8 , theoutlet arrangement 126 preferably comprises afirst outlet 158 a connected to thefirst duct 33 and asecond outlet 158 b connected to thesecond duct 43. - The
first outlet 158 a preferably comprises a portion of duct which extends tangentially from thepump chamber 123. - The
second outlet 158 b preferably comprises a portion of duct which extends tangentially from thepump chamber 123. - First and the second outlets (ducts) 158 a, 158 b are preferably parallel one to the other.
- Preferably, first and
second outlets body portion 150 of therecirculation pump 122. - Preferably, the
recirculation circuits second recirculation circuit 40 requires a pressure P2 to reach thesecond region 3 a ofwashing tub 3 which is lower than the pressure P1 required for the liquid in thefirst recirculation circuit 30 to reach thefirst region 3 b of thewashing tub 3. More preferably, theducts second duct 43 requires a pressure P2 to reach thesecond region 3 a of thewashing tub 3 which is lower than the pressure P1 required for a liquid in thefirst duct 33 to reach thefirst region 3 b of thewashing tub 3. - It should be noted that the pressure required for the liquid in the
second duct 43 to reach thesecond region 3 a of thewashing tub 3 may vary according to the operational condition of the samesecond recirculation circuit 40. - Namely, the pressure required for the liquid in the
second duct 43 to reach thesecond region 3 a of thewashing tub 3 while the liquid level inside thewashing tub 3 is lower than the position of theterminal nozzle 43 a, has a first value P2 which is lower than the value P2′ of the pressure required for the liquid in thesecond duct 43 to reach thesecond region 3 a of thewashing tub 3 while the liquid level inside thewashing tub 3 is equal or higher than the position of theterminal nozzle 43 a. - At the same time, the value P1 of the pressure required for the liquid in the
first duct 33 to reach thefirst region 3 b of thewashing tub 3 does not vary according to the operational conditions of thesecond recirculation circuit 40. - Said pressure value P1 has the same value irrespective of the liquid level inside the
washing tub 3. - In any case, said pressure values P2, P2′ required for the liquid in the
second duct 43 to reach thesecond region 3 a of thewashing tub 3 are lower than the pressure value P1 required for the liquid in thefirst duct 33 to reach thefirst region 3 b of thewashing tub 3 - According to the preferred embodiment illustrated herein, the
first duct 33 preferably defines a first volume V1. The first volume V1 is closely related to the size of thefirst duct 33 and preferably depends on diameter and length of the same. Analogously, thesecond duct 43 preferably defines a second volume V2. The second volume V2 is closely related to the size of thesecond duct 43 and preferably depends on diameter and length of the same. - According to the spatial arrangement of the components of the
recirculation system 120, in particular the position of therecirculation pump 122 and the layout of theducts second duct 43 is lower than the first volume V1 defined by thefirst duct 33. - The
second duct 43 preferably comprises a second pipe connecting thesecond outlet 158 b to thelower region 3 a of thewashing tub 3. Thefirst duct 33 preferably comprises a first pipe, substantially having the same diameter of the second pipe but much longer than the second pipe, connecting thefirst outlet 158 a to theupper region 3 b of thewashing tub 3. - Preferably, in such a case, the
recirculation circuits second recirculation circuit 40 requires a pressure P2 to fill the second volume V2 and then to reach thesecond region 3 a ofwashing tub 3 which is lower than the pressure P1 required for the liquid to fill the first volume V1 in thefirst recirculation circuit 30 and to reach thefirst region 3 b of thewashing tub 3. - More preferably, in such a case, the
ducts second duct 43 requires a pressure P2 to fill the second volume V2 and then to reach thesecond region 3 a ofwashing tub 3 which is lower than the pressure P1 required for the liquid to fill the first volume V1 in thefirst duct 33 and to reach thefirst region 3 b of thewashing tub 3. - In different embodiments, ducts of the recirculation system may be differently configured to achieve the same effect.
- For example, the first and the second duct may have the same volume but extending at different heights.
- According to an advantageous aspect of the invention, the
recirculation pump 122 comprises a bi-directional variable speed pump operable in a first direction of rotation R1 and in a second direction of rotation R2 opposite to the first direction R1. - It has to be noted that saying that the
recirculation pump 122 is operable in a first direction of rotation R1 means that theimpeller 123 a is rotatable in the first direction of rotation R1 and saying that therecirculation pump 122 is operable in a second direction of rotation R2 opposite to the first direction R1 means that theimpeller 123 a is rotatable in the second direction of rotation R2 opposite to the first direction R1. - According to an advantageous aspect of the invention, therefore, the
impeller 123 a may be rotated in the first direction of rotation R1 and in the second direction of rotation R2 opposite to the first direction R1. - The two directions R1 and R2 are depicted in particular in
FIGS. 5 and 8 . - According to an advantageous aspect of the invention, the
recirculation pump 122 is operated in the first direction R1 to circulate liquid in thefirst duct 33 through thefirst outlet 158 a to reach thewashing tub 3 and is operated in the second direction R2 to circulate liquid in thesecond duct 43 through thesecond outlet 158 b to reach thewashing tub 3. - In other words, preferably, the
impeller 123 a is rotated in the first direction R1 to circulate liquid in thefirst duct 33 through thefirst outlet 158 a to reach thewashing tub 3 and is rotated in the second direction R2 to circulate liquid in thesecond duct 43 through thesecond outlet 158 b to reach thewashing tub 3. - As illustrated in
FIG. 8 , thepump chamber 123, theimpeller 123 a, first andsecond outlets impeller 123 a rotates in the first direction R1 the liquid forced by theimpeller 123 a itself principally meets thefirst outlet 158 a and, vice versa, when theimpeller 123 a rotates in the second direction R2 the liquid forced by theimpeller 123 a itself principally meets thesecond outlet 158 b. - Preferably, the
recirculation pump 122 is operated in the first direction R1 to circulate liquid in thefirst duct 33 and to spray liquid inside thewashing tub 3 through theterminal nozzle 33 a, more preferably sprayed over the laundry inside thewashing drum 4. - More preferably, the variable
speed recirculation pump 122 is operable at variable speeds in the first direction R1 to circulate liquid through thefirst recirculation circuit 30, more preferably through thefirst duct 33, during a recirculation phase of a washing cycle carried out in the laundry washing machine of the invention. - Control of the rotation speed Rs of the
recirculation pump 122 in the first direction R1 of rotation is carried out according to the invention as described above with reference to the control of therecirculation pump 22 of the first preferred embodiment shown inFIGS. 1 and 2 . Therefore, the rotation speed Rs of therecirculation pump 122 in the first direction of rotation R1 is varied depending to the difference between the detected liquid level Ld inside thewashing tub 3 and a prefixed liquid level value Lp, as shown inFIG. 3 . What has been described for the first preferred embodiment shown inFIGS. 1 and 2 with reference to the control of therecirculation pump 22 shall therefore apply mutatis mutandis to the control of therecirculation pump 122 while rotating in the first direction R1 of rotation. - Advantageously, all the effects and/or advantages above-mentioned with reference to the first embodiment relating the control of the recirculation pump are achieved.
- Preferably, then, the
recirculation pump 122 is operated in the second direction R2 to circulate liquid only in thesecond duct 43 through thesecond outlet 158 b to reach thewashing tub 3. - When the
recirculation pump 122 is operated in the second direction R2, the liquid circulates in thesecond duct 43 and is sprayed inside thewashing tub 3 through theterminal nozzle 43 a, more preferably sprayed inside thesump 15. - Advantageously, during the washing cycle when the liquid needs to be re-admitted to the
bottom region 3 a of thewashing tub 3, for example for the mixing and/or the dissolution of the products, therecirculation pump 122 is operated in the second direction R2. - Preferably, the
recirculation pump 122 may be operated in the second direction R2 either at a predetermined fixed speed S2 or at a speed s2 varying over time. - In the latest, the liquid is preferably re-admitted to the
bottom region 3 a of thewashing tub 3 at a variable speed. Said variation of speed causes a respective variation of the flow rate of the liquid circulating in thesecond duct 43. In turn, the liquid is sprayed inside thesump 15 through theterminal nozzle 43 a at variable intensity. This advantageously enhances mixing and/or dissolution of the products. - In a preferred embodiment, the second speed s2 of the
recirculation pump 122 in the second direction R2 varies according to a step function. - In a further preferred embodiment, the second speed s2 of the
recirculation pump 122 in the second direction R2 varies according to a continuous function. -
FIGS. 9 to 13 show a further preferred embodiment of the invention which differs from the preferred embodiment previously described with reference toFIGS. 3 to 8 in the shape of therecirculation pump 222. In the drawings, corresponding characteristics and/or components of the embodiments previously described are identified by the same reference numbers. - The
recirculation system 220 preferably comprises a common bi-directional variablespeed recirculation pump 222 for conveying liquid to the first andsecond recirculation circuits second ducts - The
recirculation pump 222 preferably comprises apump chamber 223 having aninlet 224 connected to the bottom 3 a of thewashing tub 3.Inlet 224 of therecirculation pump 222 is preferably connected to the bottom 3 a of thewashing tub 3 through asuction pipe 32 preferably connected to thefiltering device 12. - The
recirculation pump 222 then preferably has anoutlet arrangement 226 for conveying liquid from thepump chamber 223 to the first andsecond recirculation circuits - The
pump chamber 223 preferably receives animpeller 223 a apt to be rotated and to force liquid from thepump chamber 223 towards theoutlet arrangement 226. - The
pump chamber 223 preferably has a substantially cylindrical shape. - The
outlet arrangement 226 preferably comprises afirst outlet 258 a connected to thefirst duct 33 and asecond outlet 258 b connected to thesecond duct 43. - The
first outlet 258 a preferably comprises a portion of duct which extends obliquely from thepump chamber 223. - The
second outlet 258 b preferably comprises a portion of duct which extends obliquely from thepump chamber 223. - First and the second outlets (ducts) 258 a, 258 b are preferably parallel one to the other.
- Preferably, first and
second outlets body portion 250 of therecirculation pump 222. - According to the advantageous aspect of the invention, the
recirculation pump 222 is operated in a first direction R1 to circulate liquid in thefirst duct 33 through thefirst outlet 258 a to reach thewashing tub 3 and is operated in a second direction R2 to circulate liquid in thesecond duct 43 through thesecond outlet 258 b to reach thewashing tub 3. - In other words, preferably, the
impeller 223 a is rotated in the first direction R1 to circulate liquid in thefirst duct 33 through thefirst outlet 258 a to reach thewashing tub 3 and is rotated in the second direction R2 to circulate liquid in thesecond duct 43 through thesecond outlet 258 b to reach thewashing tub 3. - As illustrated in
FIG. 13 , thepump chamber 223, theimpeller 223 a, first andsecond outlets impeller 223 a rotates in the first direction R1 the liquid forced by theimpeller 223 a itself principally meets thefirst outlet 258 a and, vice versa, when theimpeller 223 a rotates in the second direction R2 the liquid forced by theimpeller 223 a itself principally meets thesecond outlet 258 b. - Advantageously, control of the rotation speed Rs of the
recirculation pump 222 in the first direction R1 of rotation is carried out according to the invention as described above with reference to the control of therecirculation pump 22 of the first preferred embodiment shown inFIGS. 1 and 2 . Therefore, the rotation speed Rs of therecirculation pump 222 in the first direction of rotation R1 is varied depending to the difference between the detected liquid level Ld and a prefixed liquid level value Lp. What has been described for the first preferred embodiment shown inFIGS. 1 and 2 with reference to the control of therecirculation pump 22 shall therefore apply mutatis mutandis to the control of therecirculation pump 222 while rotating in the first direction R1 of rotation. - Advantageously, all the effects and/or advantages above-mentioned with reference to the first embodiment relating the control of the recirculation pump are achieved.
-
FIGS. 14 to 18 show a further preferred embodiment of the invention which differs from the preferred embodiments previously described in the shape of therecirculation pump 322. In the drawings, corresponding characteristics and/or components of the embodiments previously described are identified by the same reference numbers. - The
recirculation system 320 preferably comprises a common bi-directional variablespeed recirculation pump 322 for conveying liquid to the first andsecond recirculation circuits second ducts - The
recirculation pump 322 preferably comprises apump chamber 323 having aninlet 324 connected to the bottom 3 a of thewashing tub 3.Inlet 324 of therecirculation pump 322 is preferably connected to the bottom 3 a of thewashing tub 3 through asuction pipe 32 preferably connected to thefiltering device 12. - The
recirculation pump 322 then preferably has anoutlet arrangement 326 for conveying liquid from thepump chamber 323 to the first andsecond recirculation circuits - The
pump chamber 323 preferably receives animpeller 323 a apt to be rotated and to force liquid from thepump chamber 323 towards theoutlet arrangement 326. - The
pump chamber 323 preferably has a substantially cylindrical shape. - The
outlet arrangement 326 preferably comprises acommon outlet portion 358 from thepump chamber 323 and abifurcation 360 having afirst outlet 360 a for thefirst duct 33 and asecond outlet 360 b for thesecond duct 43. - Preferably,
common outlet portion 358 andbifurcation 360 are realized at abody portion 350 of thepump recirculation 322. - The
bifurcation 360 is preferably substantially Y shaped and configured so that the twoducts bifurcation 360. - According to the advantageous aspect of the invention, the
recirculation pump 322 is operated in a first direction R1 to circulate liquid in thefirst duct 33 to reach thewashing tub 3 and is operated in a second direction R2 to circulate liquid in thesecond duct 43 to reach thewashing tub 3. - In other words, preferably, the
impeller 323 a is rotated in the first direction R1 to circulate liquid in thefirst duct 33 to reach thewashing tub 3 and is rotated in the second direction R2 to circulate liquid in thesecond duct 43 to reach thewashing tub 3. - Advantageously, control of the rotation speed Rs of the
recirculation pump 322 in the first direction R1 of rotation is carried out according to the invention as described above with reference to the control of therecirculation pump 22 of the first preferred embodiment shown inFIGS. 1 and 2 . Therefore, the rotation speed Rs of therecirculation pump 322 in the first direction of rotation R1 is varied depending to the difference between the detected liquid level Ld inside awashing tub 3 and a prefixed liquid level value Lp. What has been described for the first preferred embodiment shown inFIGS. 1 and 2 with reference to the control of therecirculation pump 22 shall therefore apply mutatis mutandis to the control of therecirculation pump 322 while rotating in the first direction R1 of rotation. - Advantageously, all the effects and/or advantages above-mentioned with reference to the first embodiment relating the control of the recirculation pump are achieved.
-
FIGS. 19 to 23 show a further preferred embodiment of the invention. In the drawings, corresponding characteristics and/or components of the embodiments previously described are identified by the same reference numbers. - The
recirculation system 420 preferably comprises a common variablespeed recirculation pump 422 comprising aninlet 424 connected to the bottom 3 a of thewashing tub 3 and anoutlet 426 for conveying liquid to the first andsecond recirculation circuits second ducts -
Inlet 424 of therecirculation pump 422 is preferably connected to the bottom 3 a of thewashing tub 3 through apipe 32 preferably connected to thefiltering device 12. - According to an aspect of the invention,
outlet 426 of therecirculation pump 422 conveys liquid to thefirst duct 33 and thesecond duct 43 through abifurcation 460. - Preferably, an
outlet duct 462 is connected to thepump outlet 426 and thebifurcation 460 is realized at anoutlet duct end 462 a thereof. Thebifurcation 460 is preferably Y shaped. - Preferably, the liquid continuously flows from the
inlet duct 424 concurrently to thefirst duct 33 and thesecond duct 43. - According to an advantageous aspect of the invention, the
recirculation pump 422 is operated at a first speed s1 to circulate liquid only in thesecond recirculation circuit 40 to reach thewashing tub 3 and therecirculation pump 422 is operated at a second speed s2 to circulate liquid both in thefirst recirculation circuit 30 and thesecond recirculation circuit 40 to reach thewashing tub 3. - More preferably, the
recirculation pump 422 is operated at a first speed s1 to circulate liquid only in thesecond duct 43 to reach thewashing tub 3 and therecirculation pump 422 is operated at a second speed s2 to circulate liquid both in thefirst duct 33 and thesecond duct 43 to reach thewashing tub 3. - It should be noted that when the
recirculation pump 422 is operated at the first speed s1, the liquid may partially fill thefirst recirculation circuit 30, in particular thefirst duct 33, but it does not reach thewashing tub 3. - Advantageously, during the washing cycle when the liquid needs to be re-admitted to the
bottom region 3 a of thewashing tub 3, for example for the mixing and/or the dissolution of the products, therecirculation pump 422 is operated at a first speed s1. When the liquid needs to be re-admitted to theupper region 3 b of thewashing tub 3, preferably to soak the laundry, therecirculation pump 422 is operated at a second speed s2 higher than the first speed s1. In the latest, liquid is also re-admitted to thebottom region 3 a of thewashing tub 3 through thesecond recirculation circuit 40. - Nevertheless, re-admission of the liquid to the
bottom region 3 a of thewashing tub 3 is accepted since it does not negatively affect the soaking process. - According to an aspect of the invention, with the
recirculation pump 422 operated at the first speed s1 the liquid may circulate only in thesecond recirculation circuit 40 and not in thefirst recirculation circuit 30 thanks to the asymmetry of the twolines - Preferably, at this purpose, the
recirculation circuits second recirculation circuit 40 requires a pressure P2 to reach thesecond region 3 a ofwashing tub 3 which is lower than the pressure P1 required for the liquid in thefirst recirculation circuit 30 to reach thefirst region 3 b of thewashing tub 3. Symmetry of the twolines ducts second duct 43 requires a pressure P2 to reach thesecond region 3 a of thewashing tub 3 which is lower than the pressure P1 required for a liquid in thefirst duct 33 to reach thefirst region 3 a of thewashing tub 3. Symmetry of the twoducts - It should be noted that the pressure required for the liquid in the
second duct 43 to reach thesecond region 3 a of thewashing tub 3 may vary according to the operational condition of the samesecond recirculation circuit 40. - Namely, the pressure required for the liquid in the
second duct 43 to reach thesecond region 3 a of thewashing tub 3 while the liquid level inside thewashing tub 3 is lower than the position of theterminal nozzle 43 a, has a first value P2 which is lower than the value P2′ of the pressure required for the liquid in thesecond duct 43 to reach thesecond region 3 a of thewashing tub 3 while the liquid level inside thewashing tub 3 is equal or higher than the position of theterminal nozzle 43 a. - At the same time, the value P1 of the pressure required for the liquid in the
first duct 33 to reach thefirst region 3 b of thewashing tub 3 does not vary according to the operational condition of thesecond recirculation circuit 40. - Said pressure value P1 has the same value irrespective of the liquid level inside the
washing tub 3. - In any case, and according to the invention, said pressure values P2, P2′ for the liquid in the
second duct 43 to reach thesecond region 3 a ofwashing tub 3 are lower than the pressure value P1 for the liquid in thefirst duct 33 to reach thefirst region 3 b of thewashing tub 3. - According to the preferred embodiment illustrated herein, the
second duct 43 preferably defines a second volume V2. The second volume V2 is closely related to the size of thesecond duct 43 and preferably depends on diameter and length of the same. Analogously, thefirst duct 33 preferably defines a first volume V1. The first volume V1 is closely related to the size of thefirst duct 33 and preferably depends on diameter and length of the same. - According to the spatial arrangement of the components of the
recirculation system 420, in particular the position of therecirculation pump 422 and the layout of theducts second duct 43 is lower than the first volume V1 defined by thefirst duct 33. - The
second duct 43 preferably comprises a second pipe connecting thebifurcation 460 to thelower region 3 a of thewashing tub 3. Thefirst duct 33 preferably comprises a first pipe, substantially having the same diameter of the second pipe but much longer than the second pipe, connecting thebifurcation 460 to theupper region 3 b of thewashing tub 3. - Preferably, in such a case, the
recirculation circuits second recirculation circuit 40 requires a pressure P2 to fill the second volume V2 and then to reach thesecond region 3 a of thewashing tub 3 which is lower than the pressure P1 required for the liquid to fill the first volume V1 in thefirst recirculation circuit 30 and to reach thefirst region 3 b of thewashing tub 3. - More preferably, in such a case, the
ducts second duct 43 requires a pressure P2 to fill the second volume V2 and then to reach thesecond region 3 a ofwashing tub 3 which is lower than the pressure P1 required for the liquid to fill the first volume V1 in thefirst duct 33 and to reach thefirst region 3 b of thewashing tub 3. - In different embodiments, ducts of the recirculation system may be differently configured to achieve the same effect.
- For example, the first and the second duct may have the same volume but extending at different highs.
- When the
recirculation pump 422 is operated at the first speed s1, a proper pressure is maintained at itsoutlet 426 so that the liquid in thesecond duct 43 reaches thesecond region 3 a ofwashing tub 3 while the liquid in thefirst duct 33 does not reach thefirst region 3 b of thewashing tub 3. - When the
recirculation pump 422 is operated at the second speed s2, a proper pressure is maintained at itsoutlet 26 so that the liquid in thesecond duct 43 reaches thesecond region 3 a ofwashing tub 3 and the liquid in thefirst duct 33 reaches thefirst region 3 b of thewashing tub 3. - According to an aspect of the invention, and according to the above description, it can be appreciated that the
recirculation system 420 shows a threshold point between a condition wherein the liquid circulates only in thesecond recirculation circuit 40, orsecond duct 43, and a condition wherein the liquid circulates both in thefirst recirculation circuit 30 and thesecond recirculation circuit 40, orducts recirculation pump 422 shows a speed threshold RSt wherein if therecirculation pump 422 is operated at a speed below, or equal to, the speed threshold RSt the liquid circulates only in thesecond recirculation circuit 40, orsecond duct 43, and if therecirculation pump 422 is operated at a speed above the speed threshold RSt the liquid circulates both in thefirst recirculation circuit 30 and thesecond recirculation circuit 40, orducts - Preferably, the
recirculation pump 422 is operated at a second speed s2 above the speed threshold RSt to circulate liquid in thefirst duct 33 and to spray liquid inside thewashing tub 3 through theterminal nozzle 33 a, more preferably sprayed over the laundry inside thewashing drum 4. - More preferably, the variable
speed recirculation pump 422 is operable at variable speeds above the speed threshold RSt to circulate liquid through thefirst recirculation circuit 30, more preferably to thefirst duct 33, during a recirculation phase of a washing cycle carried out in the laundry washing machine of the invention. - Control of the rotation speed Rs of the
recirculation pump 422 is carried out according to the invention as described above with reference to the control of therecirculation pump 22 of the first preferred embodiment shown inFIGS. 1 and 2 . In particular, the rotation speed Rs of therecirculation pump 422 is varied depending to the difference between the detected liquid level Ld inside thewashing tub 3 and a prefixed liquid level value Lp. A minimum threshold rotation speed Rsmin is preferably set for therecirculation pump 420. - The minimum threshold value Rsmin is preferably set equal to, or greater than, said speed threshold RSt.
- Preferably, in such a case, the rotation speed Rs is evaluated as a function of the detected liquid level Ld as follows:
-
Rs=k*(Ld−Lp)+Rsmin if Ld>Lp -
Rs=0 if Ld≤Lp - with the condition that Rsmin≥RSt.
- Advantageously, all the effects and/or advantages above-mentioned with reference to the first embodiment relating the control of the recirculation pump are achieved.
- It has thus been shown that the present invention allows all the set objects to be achieved.
- In particular, it makes it possible to provide a method for controlling a recirculation pump in a laundry washing machine which improves wetting of laundry during a recirculation phase compared to known techniques.
- While the present invention has been described with reference to the particular embodiments shown in the figures, it should be noted that the present invention is not limited to the specific embodiments illustrated and described herein; on the contrary, further variants of the embodiments described herein fall within the scope of the present invention, which is defined in the claims.
Claims (15)
1. A method for operating a laundry washing machine comprising:
a washing drum configured to receive laundry to be washed;
a washing tub external to the washing drum;
a water supply system configured to convey water to the washing tub;
a recirculation system comprising a recirculation circuit configured to drain liquid from a bottom of the washing tub and to re-admit the liquid into a first region of the washing tub, the recirculation system comprising a variable speed recirculation pump having an outlet connected to the recirculation circuit and wherein the recirculation pump is operable at variable rotation speeds to circulate liquid through the recirculation circuit;
a liquid level sensor device configured to detect a liquid level inside the washing tub;
wherein the method comprises operating the recirculation system in a recirculation phase to drain the liquid from the bottom of the washing tub and to re-admit the liquid into the first region of the washing tub through the recirculation circuit, wherein the recirculation phase comprises:
determining a detected liquid level using the liquid level sensor device;
determining a difference between the detected liquid level and a prefixed liquid level value; and
the step of controlling the recirculation pump by varying a rotation speed of the recirculation pump depending to the difference between the detected liquid level and the prefixed liquid level value.
2. The method according to claim 1 , wherein the recirculation phase further comprises activating the recirculation pump when the detected liquid level is above the prefixed liquid level value.
3. The method according to claim 1 , wherein the recirculation phase further comprises deactivating the recirculation pump when the detected liquid level is equal to, or below the prefixed liquid level value.
4. The method according to claim 1 , wherein controlling the recirculation pump by varying the rotation speed of the recirculation pump comprises operating the rotation speed of the recirculation pump to be directly proportional to the difference between the detected liquid level and the prefixed liquid level value.
5. The method according to claim 1 , wherein controlling the recirculation pump by varying the rotation speed of the recirculation pump comprises maintaining the rotation speed of the recirculation pump between a minimum threshold value and a maximum threshold value.
6. The method according to claim 5 , wherein the minimum threshold value is zero.
7. The method according to claim 5 , wherein the minimum threshold value is greater than zero.
8. The method according to claim 1 , wherein controlling the recirculation pump by varying the rotation speed of the recirculation pump comprises varying the rotation speed of the recirculation pump over the time according to a continuous function or a step function.
9. The method according to claim 1 , wherein the recirculation phase further comprises reestablishing the prefixed liquid level value inside the washing tub when the liquid level goes below the prefixed liquid level value by conveying an amount of water into the washing tub.
10. The method according to claim 1 , wherein the recirculation phase further comprises reestablishing the prefixed liquid level value inside the washing tub when the liquid level goes below the prefixed liquid level value by extracting an amount of water from the laundry in a dewatering process carried out by rotating the washing drum at a dewatering speed.
11. The method according to claim 1 , wherein the recirculation system comprises a second recirculation circuit configured to drain liquid from the bottom of the washing tub and to re-admit the liquid into a second region of the washing tub, wherein the variable speed recirculation pump is a bi-directional variable speed pump having a second outlet connected to the second recirculation circuit, and wherein varying the rotation speed of the recirculation pump during the recirculation phase comprises:
activating the recirculation pump in a first direction of rotation to drain the liquid from the bottom of the washing tub and to re-admit the liquid into the first region of the washing tub through the recirculation circuit, and
activating the recirculation pump in a second direction of rotation opposite to the first direction of rotation to drain liquid from the bottom of the washing tub and to re-admit the liquid into the second region of the washing tub through the second recirculation circuit.
12. The method according to claim 11 , wherein the recirculation pump is operated in the second direction at a first fixed speed.
13. The method according to claim 11 , wherein the recirculation pump is operated in the second direction at a speed varying over the time.
14. The method according to claim 1 , wherein the recirculation system comprises a second recirculation circuit configured to drain liquid from the bottom of the washing tub and to re-admit such liquid into a second region of the washing tub, wherein the outlet conveys liquid to a bifurcation for the recirculation circuit and the second recirculation circuit, wherein the recirculation circuits are configured so that a liquid in the second recirculation circuit requires a first pressure to reach the washing tub which is lower than a second pressure required for a liquid in the recirculation circuit to reach the washing tub, and in that the recirculation pump is operated at a first speed below, or equal to, a speed threshold to circulate liquid only in the second recirculation circuit to reach the washing tub and the recirculation pump is operated at a second speed above the speed threshold to circulate liquid both in the first recirculation circuit and the second recirculation circuit to reach the washing tub, wherein the step of controlling the recirculation pump by varying the rotation speed of the recirculation pump depending to the difference between the detected liquid level and the prefixed liquid level value is carried out when the recirculation pump is operated above the speed threshold.
15. The method according to claim 14 , wherein the recirculation pump is operated at a first speed to circulate liquid only in the second recirculation circuit to reach a bottom region of the washing tub and is operated at the second speed to circulate liquid also in the first recirculation circuit to reach an upper region of the washing tub.
Applications Claiming Priority (1)
Application Number | Priority Date | Filing Date | Title |
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PCT/EP2018/061545 WO2019210974A1 (en) | 2018-05-04 | 2018-05-04 | A method of operating a laundry washing machine comprising a recirculation circuit |
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US20210071344A1 true US20210071344A1 (en) | 2021-03-11 |
Family
ID=62116873
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
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US17/043,285 Abandoned US20210071344A1 (en) | 2018-05-04 | 2018-05-04 | A method of operating a laundry washing machine comprising a recirculation circuit |
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US (1) | US20210071344A1 (en) |
EP (1) | EP3788197A1 (en) |
CN (1) | CN112074635A (en) |
AU (1) | AU2018421969A1 (en) |
WO (1) | WO2019210974A1 (en) |
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KR20210072496A (en) * | 2019-12-09 | 2021-06-17 | 삼성전자주식회사 | Diaphragm assembly and washing machine having the same |
KR102592654B1 (en) * | 2021-05-18 | 2023-10-23 | 엘지전자 주식회사 | Washing machine |
DE102021123348A1 (en) * | 2021-09-09 | 2023-03-09 | Miele & Cie. Kg | Liquid separator for a washing machine, liquid system, washing machine and method for operating a washing machine |
Citations (1)
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US20150240408A1 (en) * | 2012-08-29 | 2015-08-27 | Electrolux Home Products Corporation N.V. | Laundry Washing Machine |
Family Cites Families (14)
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AU2006235862C1 (en) * | 2005-11-04 | 2011-09-22 | Fisher & Paykel Appliances Ltd | Improvements Relating to Washing Machines |
JP4448843B2 (en) * | 2006-11-08 | 2010-04-14 | 日立アプライアンス株式会社 | Washing machine |
WO2008079070A1 (en) * | 2006-12-22 | 2008-07-03 | Aktiebolaget Electrolux | Improved water saving washing machine |
JP4325734B1 (en) * | 2008-09-29 | 2009-09-02 | パナソニック株式会社 | Drum washing machine |
KR101619955B1 (en) * | 2009-01-09 | 2016-05-12 | 엘지전자 주식회사 | Laundry machine and laundry method of using the same |
JP5449846B2 (en) * | 2009-04-27 | 2014-03-19 | 株式会社東芝 | Drum washing machine |
JP4935877B2 (en) * | 2009-09-24 | 2012-05-23 | パナソニック株式会社 | Drum washing machine |
SI2246469T1 (en) * | 2010-02-16 | 2012-10-30 | V Zug Ag | Method for operating a washing machine and washing machine with circulation pump and spinning phase |
JP5873968B2 (en) * | 2011-09-05 | 2016-03-01 | パナソニックIpマネジメント株式会社 | Washing machine |
EP2703548A1 (en) * | 2012-08-29 | 2014-03-05 | Electrolux Home Products Corporation N.V. | Laundry washing machine and method for washing laundry in a laundry washing machine |
JP6135979B2 (en) * | 2012-12-28 | 2017-05-31 | パナソニックIpマネジメント株式会社 | Washing machine |
JP6471354B2 (en) * | 2015-09-07 | 2019-02-20 | パナソニックIpマネジメント株式会社 | Washing machine |
JP6543808B2 (en) * | 2015-10-16 | 2019-07-17 | パナソニックIpマネジメント株式会社 | Washing machine |
EP3235940B1 (en) * | 2016-04-21 | 2020-07-29 | Electrolux Appliances Aktiebolag | Method for the detection of foam in a laundry washing machine, and washing machine |
-
2018
- 2018-05-04 EP EP18722974.5A patent/EP3788197A1/en not_active Withdrawn
- 2018-05-04 WO PCT/EP2018/061545 patent/WO2019210974A1/en active Application Filing
- 2018-05-04 US US17/043,285 patent/US20210071344A1/en not_active Abandoned
- 2018-05-04 AU AU2018421969A patent/AU2018421969A1/en not_active Abandoned
- 2018-05-04 CN CN201880093130.0A patent/CN112074635A/en active Pending
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US20150240408A1 (en) * | 2012-08-29 | 2015-08-27 | Electrolux Home Products Corporation N.V. | Laundry Washing Machine |
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WO2019210974A1 (en) | 2019-11-07 |
AU2018421969A1 (en) | 2020-10-22 |
CN112074635A (en) | 2020-12-11 |
EP3788197A1 (en) | 2021-03-10 |
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