[go: up one dir, main page]

WO2006016847A1 - Heat pump - Google Patents

Heat pump Download PDF

Info

Publication number
WO2006016847A1
WO2006016847A1 PCT/SE2005/001199 SE2005001199W WO2006016847A1 WO 2006016847 A1 WO2006016847 A1 WO 2006016847A1 SE 2005001199 W SE2005001199 W SE 2005001199W WO 2006016847 A1 WO2006016847 A1 WO 2006016847A1
Authority
WO
WIPO (PCT)
Prior art keywords
heat pump
compressor
ranque
space
generator
Prior art date
Application number
PCT/SE2005/001199
Other languages
French (fr)
Inventor
Peter Blomkvist
Original Assignee
Peter Blomkvist
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Peter Blomkvist filed Critical Peter Blomkvist
Priority to JP2007525576A priority Critical patent/JP2008510121A/en
Priority to EP05772201A priority patent/EP1792127A1/en
Priority to US11/659,787 priority patent/US20080115507A1/en
Publication of WO2006016847A1 publication Critical patent/WO2006016847A1/en

Links

Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25BREFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
    • F25B9/00Compression machines, plants or systems, in which the refrigerant is air or other gas of low boiling point
    • F25B9/02Compression machines, plants or systems, in which the refrigerant is air or other gas of low boiling point using Joule-Thompson effect; using vortex effect
    • F25B9/04Compression machines, plants or systems, in which the refrigerant is air or other gas of low boiling point using Joule-Thompson effect; using vortex effect using vortex effect
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F5/00Air-conditioning systems or apparatus not covered by F24F1/00 or F24F3/00, e.g. using solar heat or combined with household units such as an oven or water heater
    • F24F5/0007Air-conditioning systems or apparatus not covered by F24F1/00 or F24F3/00, e.g. using solar heat or combined with household units such as an oven or water heater cooling apparatus specially adapted for use in air-conditioning

Definitions

  • the present invention relates to a heat pump that is intended to operate in a space, said heat pump comprising a compressor and an inlet conduit for supplying air/gas to the compressor.
  • a Ranque generator is a device that was invented by George Ranque in the 193CKs, a Ranque generator generally having the function that it divides a compressed air- or gas stream into a cold air- or gas stream and a hot air- or gas stream. The Ranque generator will be described more in detail below.
  • centrifuge for biological products comprising a device for cooling the space where centrifuging takes place.
  • a Ranque generator is included, said generator producing the cold air that is used in the cooling.
  • a primary object of the present invention is to present a heat pump of the type defined above, said heat pump having a coefficient of performance that is higher than one.
  • a further object of the present invention is to present a heat pump that is easy to install.
  • At least the primary object of the present invention is realized by means of a device that has been given the features of the appending independent claim 1. Preferred embodiments are defined in the dependent claims.
  • Figure A schematically shows a Ranque generator
  • Figure 1 shows the schematic structure of a first embodiment of a heat pump according to the present invention
  • Figure 2 shows the schematic structure of a second embodiment of a heat pump according to the present invention
  • Figure 3 shows the schematic structure of a third embodiment of a heat pump according to the present invention
  • Figure 4 shows the schematic structure of a fourth embodiment of a heat pump according to the present invention
  • Figure 5 shows the schematic structure of a fifth embodiment of a heat pump according to the present invention.
  • Figure 6 shows the schematic structure of a sixth embodiment of a heat pump according to present invention.
  • the Ranque generator shown in figure A comprises a chamber C, a first outlet pipe Pl emanating from the chamber C and a second outlet pipe P2 emanating from the chamber, said outlet pipes Pl and P2 generally being attached to opposite sides of the chamber C.
  • the chamber C defines a space that generally has circular cylindrical cross section relative to an axis in the plane of the paper.
  • compressed air or gas is supplied to the chamber C.
  • the supplied air or gas will flow along the circular cylindrical limiting surface of the chamber at a high speed, about 1.000.000 revolutions/min.
  • Due to means provided in the chamber C there is a division in an outer hot air- or gas stream and an inner cold air- or gas stream. Both these air- or gas streams are deviated in different directions via the two outlet pipes Pl and P2.
  • the difference in temperature between the cold air- or gas stream and the hot air- or gas stream is considerable.
  • a hot air stream could be achieved with a temperature that is about 5O 0 C higher than the supplied air and a cold air stream with a temperature that is about 50 0 C lower than the supplied air. If there is a division in hot and cold air streams of different volume the difference in temperature relative to the supplied air will decrease if the volume increases.
  • a space S is shown schematically, a first embodiment of a heat pump according to the present invention being provided in said space S.
  • the space S may for instance constitute a residential building.
  • the heat pump according to the present invention shown in figure 1, comprises a Ranque generator 1, a compressor 3, a connection conduit 5 to the Ranque generator 1, a first outlet conduit 7 from the Ranque generator 1, a second outlet conduit 9 from the Ranque generator 1 and a first inlet conduit 10 to the compressor 3.
  • the connection conduit 5 extends between the compressor 3 and the Ranque generator 1.
  • the first outlet conduit 7 emerges in the space S while the other outlet conduit extends through the limiting wall of the space S and thus emerges in the open air.
  • the first inlet conduit 10 extends from the open air outside the space S to the compressor 3.
  • the components in the dashed square in figure 1 are thus included in the heat pump according to the present invention.
  • the heat pump shown in figure 1 functions in such a way that outside air is supplied to the compressor 3 via the first inlet conduit 10.
  • the compressor 3 compresses this outside air and thus supplies compressed air to the Ranque generator 1.
  • the Ranque generator 1 transfers this compressed air into a hot air stream, that is discharged into the space S via the first outlet conduit 7, and a cold air stream that is supplied to the outdoor air via the second outlet conduit 9.
  • the enthalpy in the hot air stream will thus be of use to the space S.
  • the heat that is generated when the compressor 3 compresses the air will be of use to the space S. Losses due to the efficiency of the compressor 3 is also of use to the space S in the shape of heat.
  • the heat pump according to the present invention comprises the corresponding components as the embodiment according to figure 1, i.e. a Ranque generator 101, 1 compressor 103, a connection conduit 105 to the Ranque generator 101, a second outlet conduit 109 from the Ranque generator 101 and a first inlet conduit 110 to the compressor 103.
  • the heat pump shown in figure 2 functions in such a way that indoor air is supplied to the compressor 103 via the first inlet conduit 110.
  • the compressor 103 compresses this indoor air and thus supplies compressed air to the Ranque generator 101.
  • the Ranque generator 101 transfers this compressed air into a hot air stream, that is discharged into the space Sl via the first outlet conduit 107, and a cold air stream that is supplied to the outdoor air via the second outlet conduit 109.
  • the embodiment shown in figure 3 of a heat pump according to the present invention rely on a closed system that comprises two heat exchangers.
  • the components in the dashed square of figure 3 are thus included in the heat pump according to the present invention.
  • the heat pump according to figure 3 is installed in a space S2 and also comprises a Ranque generator 201 and a compressor 203.
  • a connection conduit 205 extends from the compressor 203 to the Ranque generator 201.
  • From the hot side of the Ranque generator 201 a first outlet conduit 207 exits, said first outlet conduit 207 being connected to a first heat exchanger 211 that is located inside the space S2.
  • a first inlet conduit 210 to the compressor 203 exits from a second heat exchanger 213 that is located outside the space S2.
  • a second inlet conduit 212 extends from the first heat exchanger 211 and joins the first inlet conduit 210 upstream the compressor 203.
  • the second heat exchanger 213 is connected to the cold side of the Ranque generator 201, this being effected by means of a second outlet conduit 209 from the Ranque generator 201.
  • the heat pump shown schematically in figure 3, functions in the following way. Air/gas is supplied to the compressor 203 via the first inlet conduit 210 and a second inlet conduit 212, this supplied air/gas is a mixture of air/gas from the first heat exchanger 211 and air/gas from the second heat exchanger 213. The air/gas that comes from the second heat exchanger 213 is heated by the outdoor air while the air/gas that comes from the first heat exchanger 211 has emitted heat to the space S2, i.e. said air/gas is chilled. These two volumes of air/gas are now mixed and supplied to the compressor 203 and then the supplied mixture is compressed by the compressor 203.
  • compressed air is supplied to the Ranque generator 201, said supplied compressed air in a known way being divided into a hot air stream that is deflected via the first outlet conduit 207 and a cold air stream that is deflected via the second outlet conduit 209.
  • the hot air-/gas stream that is discharged via the first outlet conduit 207 passes the first heat exchanger 211 and the hot air-/gas stream emits heat to the space S2.
  • the chilled air-/gas stream then continues in the second inlet conduit 212 and is mixed with the air-/gas stream in the first inlet conduit 210, upstream the compressor 203.
  • the cold air/gas that is discharged from the Ranque generator 201 flows in the second outlet conduit 209 and passes through the second heat exchanger 213. Since the air/gas that flows in the outlet conduit 209 is substantially chilled it will be heated by the outdoor air when passing through the second heat exchanger 213, even if the outdoor air has a comparatively low temperature.
  • the air/gas has pass the second heat exchanger 213 it is supplied to the compressor 203 via the first inlet conduit 210. As has been pointed out above a mixture will then take place with the air/gas that emanates from the first heat exchanger 211.
  • the embodiment of a heat pump according to the present invention that is shown in figure 4 is a variant of the embodiment according to figure 3.
  • the heat pump according to figure 4 is installed in a space S3, said heat pump also comprising a Ranque generator 301 and a compressor 303.
  • a connection conduit 305 extends from the compressor 303 to the Ranque generator 301.
  • From the hot side of the Ranque generator 301 a first outlet conduit 307 exits, said first outlet conduit 307 being connected to a first heat exchanger 311 that is located inside the space S3.
  • a first inlet conduit 310 to the compressor 303 emanates from a second heat exchanger 313 that is located outside the space S3.
  • a second inlet conduit 312 extends from the first heat exchanger 313 and joins the first inlet conduit 310 to the compressor 303.
  • This first inlet conduit 310 emanates from the first heat exchanger 311 that is located outside the space S3.
  • the first inlet conduit 310 is "coiled" around the compressor 303 and the connection conduit 305 before the first inlet conduit 310 joins the second inlet conduit 312 upstream the compressor 303.
  • This arrangement has the aim to cool the connection conduit 305 and the compressor 303. Thereby, the heat losses are reduced and the temperature in the first outlet conduit 307 is raised.
  • the second heat exchanger 313 is connected to the cold side of the Ranque generator 301, this being effected by means of a second outlet conduit 309 from the Ranque generator 301.
  • a conventional air heat pump is completed with a heat pump according to the present invention.
  • the conventional air heat pump according to figure 5 comprises a third heat exchanger 415 and a fourth heat exchanger 416.
  • the third heat exchanger 415 that in principle constitutes an evaporator, is located in the open air outside a space in which the conventional air heat pump is operating while the fourth heat exchanger 416, that in principle constitutes a condenser, is located in the air in the space, in which the conventional air heat pump operates.
  • a first transferring conduit 417 extends from the third heat exchanger 415 to the fourth heat exchanger 416.
  • a compressor 418 is provided, said compressor 418 being related to the conventional air heat pump.
  • a second transferring conduit 419 extends from the fourth heat exchanger 416 to the third heat exchanger 415.
  • An expansion valve 420 is provided in the second transferring conduit 419.
  • a first fan 421 is related to the third heat exchanger 415 and a second fan 422 is related to the fourth heat exchanger 416. These fans 421, 422 guarantee sufficient air movement in connection with the respective heat exchanger 415, 416.
  • the compressor 418 that is related to the air heat pump before the energy storing medium passes through the fourth heat exchanger 416 where heat is emitted to the space, in which the conventional heat pump operates.
  • the third heat exchanger 415 absorbs heat from the outdoor air. At low temperatures, especially below -10 0 C, the energy exchange is low.
  • a further heat pump is used in accordance with the principle of the present invention, said further heat pump comprising a Ranque generator.
  • the outdoor third heat exchanger 415 with its components, is located in a space S4, in which also the further heat pump is located, said further heat pump comprising a Ranque generator.
  • Al and A2 an air stream takes place through the space S4 in connection with the operation of the first fan 421.
  • FIG 5 it is schematically shown how a heat pump according to the present invention is provided in the space S4.
  • This heat pump comprises a Ranque generator 401, a compressor 403, a connection conduit 405 to the Ranque generator 401, a first outlet conduit 407 from the Ranque generator 401, a second outlet conduit ' 409 from the Ranque generator 401 and a first inlet conduit 410 to the compressor 403.
  • the hot air stream that emanates from the Ranque generator 401 is discharged via the first outlet conduit 407 and heats the air that surrounds the third heat exchanger 415.
  • the cold air stream that emanates from the Ranque generator 401 is discharged via the second outlet conduit 409 that emanates outside the space S4.
  • the heat pump according to the present invention comprises a Ranque generator 501, a compressor 503, a connection conduit 505 to the Ranque generator 501, a first outlet conduit 507 from the Ranque generator 501, a second outlet conduit 509 from the Ranque generator 501 and a first inlet conduit 510 to the compressor 503.
  • the hot air stream that exits from the Ranque generator 501 is discharged via the first outlet conduit 507 and heats the upper portion of the third heat exchanger 515.
  • the cold air stream that exits from the Ranque generator 501 is discharged via the second outlet conduit 509 that emerges outside the space S5.
  • the compressors 503 and 518 are driven by a common power source, this being illustrated by the interconnection of the compressors 503 and 518.
  • the compressors 503 and 518 each are related to a separate power source.
  • said heat pump comprising a Ranque generator and a compressor.
  • a worm compressor is used that has a high capacity and a regular air flow rate. The heat that is generated when the compressor compresses the air will be of use to the space, in which the heat pump is installed.
  • the compressor 3; 103; 203; 303; 403; 503 is located in the space S; Sl; S2; S3; S4; S5.
  • the compressor is located outside the space, in which the heat pump operates.
  • the heat pump system according to the present invention may for instance be equipped with a temperature sensor to register the temperature difference between the hot and the cold side of the Ranque generator 1; 101; 201; 301; 401; 501, the rotational frequency of the compressor 3; 103; 203; 303; 403; 503 being regulated dependent on said measured temperature difference.
  • the compressor 3; 103; 203; 303; 403; 503 that is used in a heat pump according to the present invention may be water cooled, the heat that is generated adjacent to the compressor 3; 103;, 203; 303; 403; 503 may be taken care of via a heat exchanger.
  • a second heat exchanger 213 is provided outside the space S2, in the free air.
  • This second heat exchanger 213 may also the located in water, for instance in a lake, it might be embedded in the ground or located in the bedrock. Is also feasible that the second the exchanger 213 is designed as a solar collector.
  • the purpose of the exemplified arrangements is to achieve an improved heating of the air/gas compared to the location of the second heat exchanger 213 in the open air.
  • the first heat exchanger 211 is used to heat hot service water or water in a system for hot water heating.
  • the second outlet conduit 209 is used to cool for instance a refrigerator, a freezer or an underground storehouse.
  • one or both heat exchangers are integrated with the heat pump according to the present invention, i.e. the compressor, the Ranque generator and at least one of the heat exchangers form a unit in the space, in which the heat pump is intended to operate.
  • the cold air that is generated in the area of this heat exchanger must be taken care of in a suitable way, this being for instance effected by means of a fan that transports the cold air to the outside of the space, in which the heat pump operates.

Landscapes

  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Sustainable Development (AREA)
  • Chemical & Material Sciences (AREA)
  • Combustion & Propulsion (AREA)
  • Physics & Mathematics (AREA)
  • Thermal Sciences (AREA)
  • Other Air-Conditioning Systems (AREA)
  • Heat-Pump Type And Storage Water Heaters (AREA)
  • Compressor (AREA)

Abstract

The present invention relates to a heat pump that is intended to operate in a space (S), said heat pump comprising a compressor (3), preferably located in the space (S), and a first inlet conduit (10) for supplying air/gas to the compressor (3). It is significant of the heat pump according to the present invention that it comprises a Ranque generator (1), a connection conduit (5) extending between the compressor (3) and the Ranque generator (1), said connection conduit (5) transferring compressed air/gas to the Ranque generator (1), a first outlet conduit (7) for air/gas emanating from the hot side of the Ranque generator (1), said first outlet conduit (7) emerging inside the space (S) or being connected to a first heat exchanger (211) inside the space (S2), and a second outlet conduit (9) for air/gas emanating from the cold side of the Ranque generator (1), said second outlet conduit (9) emerging outside the space (S).

Description

HEAT PUMP
Technical Field of the Invention
The present invention relates to a heat pump that is intended to operate in a space, said heat pump comprising a compressor and an inlet conduit for supplying air/gas to the compressor.
Prior Art It is previously known a great number of different heat pumps that normally comprise a compressor, an evaporator, a condenser and an expansion valve. As regards heat pumps with air it is a well known fact that they have low efficiency when the outdoor air has low temperature. A Ranque generator is a device that was invented by George Ranque in the 193CKs, a Ranque generator generally having the function that it divides a compressed air- or gas stream into a cold air- or gas stream and a hot air- or gas stream. The Ranque generator will be described more in detail below.
From for instance US 6,334,841 a centrifuge for biological products is previously known, said centrifuge comprising a device for cooling the space where centrifuging takes place. In this last mentioned device a Ranque generator is included, said generator producing the cold air that is used in the cooling.
Objects and Features of the Invention
A primary object of the present invention is to present a heat pump of the type defined above, said heat pump having a coefficient of performance that is higher than one.
A further object of the present invention is to present a heat pump that is extremely environment friendly since it is completely free from CFC or other gases that are hazardous to the environment when it is used in an open system. If it is used in a closed system the gases that are used will not come into contact with the environment. Still an object of the present invention is to present a heat pump having small dimensions.
A further object of the present invention is to present a heat pump that is easy to install. At least the primary object of the present invention is realized by means of a device that has been given the features of the appending independent claim 1. Preferred embodiments are defined in the dependent claims.
Brief Description of the Drawings
Below a number of embodiments of the invention will be described, reference being made to the accompanying drawings, where:
Figure A schematically shows a Ranque generator; Figure 1 shows the schematic structure of a first embodiment of a heat pump according to the present invention; Figure 2 shows the schematic structure of a second embodiment of a heat pump according to the present invention; Figure 3 shows the schematic structure of a third embodiment of a heat pump according to the present invention;
Figure 4 shows the schematic structure of a fourth embodiment of a heat pump according to the present invention; Figure 5 shows the schematic structure of a fifth embodiment of a heat pump according to the present invention; and
Figure 6 shows the schematic structure of a sixth embodiment of a heat pump according to present invention.
Detailed Description of Prior Art and Preferred Embodiments of the Present Invention
The Ranque generator shown in figure A comprises a chamber C, a first outlet pipe Pl emanating from the chamber C and a second outlet pipe P2 emanating from the chamber, said outlet pipes Pl and P2 generally being attached to opposite sides of the chamber C. The chamber C defines a space that generally has circular cylindrical cross section relative to an axis in the plane of the paper. In operation of the Ranque generator compressed air or gas is supplied to the chamber C. The supplied air or gas will flow along the circular cylindrical limiting surface of the chamber at a high speed, about 1.000.000 revolutions/min. Due to means provided in the chamber C there is a division in an outer hot air- or gas stream and an inner cold air- or gas stream. Both these air- or gas streams are deviated in different directions via the two outlet pipes Pl and P2. The difference in temperature between the cold air- or gas stream and the hot air- or gas stream is considerable. In exemplifying and non-restricting purpose it may be mentioned that if compressed air of 7 bar is supplied to the chamber C a hot air stream could be achieved with a temperature that is about 5O0C higher than the supplied air and a cold air stream with a temperature that is about 500C lower than the supplied air. If there is a division in hot and cold air streams of different volume the difference in temperature relative to the supplied air will decrease if the volume increases.
The Ranque generator represents prior art and will not be described in further detail. In figure 1 a space S is shown schematically, a first embodiment of a heat pump according to the present invention being provided in said space S. The space S may for instance constitute a residential building.
The heat pump according to the present invention, shown in figure 1, comprises a Ranque generator 1, a compressor 3, a connection conduit 5 to the Ranque generator 1, a first outlet conduit 7 from the Ranque generator 1, a second outlet conduit 9 from the Ranque generator 1 and a first inlet conduit 10 to the compressor 3. The connection conduit 5 extends between the compressor 3 and the Ranque generator 1. The first outlet conduit 7 emerges in the space S while the other outlet conduit extends through the limiting wall of the space S and thus emerges in the open air. The first inlet conduit 10 extends from the open air outside the space S to the compressor 3. The components in the dashed square in figure 1 are thus included in the heat pump according to the present invention. The heat pump shown in figure 1 functions in such a way that outside air is supplied to the compressor 3 via the first inlet conduit 10. The compressor 3 compresses this outside air and thus supplies compressed air to the Ranque generator 1. In a way that has been described above the Ranque generator 1 transfers this compressed air into a hot air stream, that is discharged into the space S via the first outlet conduit 7, and a cold air stream that is supplied to the outdoor air via the second outlet conduit 9. The enthalpy in the hot air stream will thus be of use to the space S. In this connection it should also be noticed that the heat that is generated when the compressor 3 compresses the air will be of use to the space S. Losses due to the efficiency of the compressor 3 is also of use to the space S in the shape of heat.
In the embodiment according to figure 2 the heat pump according to the present invention comprises the corresponding components as the embodiment according to figure 1, i.e. a Ranque generator 101, 1 compressor 103, a connection conduit 105 to the Ranque generator 101, a second outlet conduit 109 from the Ranque generator 101 and a first inlet conduit 110 to the compressor 103.
The heat pump shown in figure 2 functions in such a way that indoor air is supplied to the compressor 103 via the first inlet conduit 110. The compressor 103 compresses this indoor air and thus supplies compressed air to the Ranque generator 101. In a way that has been described above the Ranque generator 101 transfers this compressed air into a hot air stream, that is discharged into the space Sl via the first outlet conduit 107, and a cold air stream that is supplied to the outdoor air via the second outlet conduit 109.
As regards the arrangement shown in figure 2 no positive pressure is generated in the space Sl since the air that is supplied to the compressor 103 constitutes indoor air that is taken from the space Sl. If all air is taken from the space Sl a negative pressure will be generated in the space Sl. This brings about that air will flow into the space Sl through vents and the like, a vent Vl being indicated in figure 2. Since outdoor air is sucked in through the vent Vl the air change will generally be good in the embodiment according to figure 2.
The embodiment shown in figure 3 of a heat pump according to the present invention rely on a closed system that comprises two heat exchangers. The components in the dashed square of figure 3 are thus included in the heat pump according to the present invention. The heat pump according to figure 3 is installed in a space S2 and also comprises a Ranque generator 201 and a compressor 203. A connection conduit 205 extends from the compressor 203 to the Ranque generator 201. From the hot side of the Ranque generator 201 a first outlet conduit 207 exits, said first outlet conduit 207 being connected to a first heat exchanger 211 that is located inside the space S2. A first inlet conduit 210 to the compressor 203 exits from a second heat exchanger 213 that is located outside the space S2. A second inlet conduit 212 extends from the first heat exchanger 211 and joins the first inlet conduit 210 upstream the compressor 203. The second heat exchanger 213 is connected to the cold side of the Ranque generator 201, this being effected by means of a second outlet conduit 209 from the Ranque generator 201.
The heat pump, shown schematically in figure 3, functions in the following way. Air/gas is supplied to the compressor 203 via the first inlet conduit 210 and a second inlet conduit 212, this supplied air/gas is a mixture of air/gas from the first heat exchanger 211 and air/gas from the second heat exchanger 213. The air/gas that comes from the second heat exchanger 213 is heated by the outdoor air while the air/gas that comes from the first heat exchanger 211 has emitted heat to the space S2, i.e. said air/gas is chilled. These two volumes of air/gas are now mixed and supplied to the compressor 203 and then the supplied mixture is compressed by the compressor 203. From the compressor 203 compressed air is supplied to the Ranque generator 201, said supplied compressed air in a known way being divided into a hot air stream that is deflected via the first outlet conduit 207 and a cold air stream that is deflected via the second outlet conduit 209. The hot air-/gas stream that is discharged via the first outlet conduit 207 passes the first heat exchanger 211 and the hot air-/gas stream emits heat to the space S2. The chilled air-/gas stream then continues in the second inlet conduit 212 and is mixed with the air-/gas stream in the first inlet conduit 210, upstream the compressor 203.
The cold air/gas that is discharged from the Ranque generator 201 flows in the second outlet conduit 209 and passes through the second heat exchanger 213. Since the air/gas that flows in the outlet conduit 209 is substantially chilled it will be heated by the outdoor air when passing through the second heat exchanger 213, even if the outdoor air has a comparatively low temperature. When the air/gas has pass the second heat exchanger 213 it is supplied to the compressor 203 via the first inlet conduit 210. As has been pointed out above a mixture will then take place with the air/gas that emanates from the first heat exchanger 211.
The embodiment of a heat pump according to the present invention that is shown in figure 4 is a variant of the embodiment according to figure 3. The heat pump according to figure 4 is installed in a space S3, said heat pump also comprising a Ranque generator 301 and a compressor 303. A connection conduit 305 extends from the compressor 303 to the Ranque generator 301. From the hot side of the Ranque generator 301 a first outlet conduit 307 exits, said first outlet conduit 307 being connected to a first heat exchanger 311 that is located inside the space S3. A first inlet conduit 310 to the compressor 303 emanates from a second heat exchanger 313 that is located outside the space S3. A second inlet conduit 312 extends from the first heat exchanger 313 and joins the first inlet conduit 310 to the compressor 303. This first inlet conduit 310 emanates from the first heat exchanger 311 that is located outside the space S3. The first inlet conduit 310 is "coiled" around the compressor 303 and the connection conduit 305 before the first inlet conduit 310 joins the second inlet conduit 312 upstream the compressor 303. This arrangement has the aim to cool the connection conduit 305 and the compressor 303. Thereby, the heat losses are reduced and the temperature in the first outlet conduit 307 is raised. The second heat exchanger 313 is connected to the cold side of the Ranque generator 301, this being effected by means of a second outlet conduit 309 from the Ranque generator 301.
The embodiment of a heat pump according to the present invention that is described in figure 4 functions in principle in the same way as the embodiment according to figure 3.
In the embodiment shown in figure 5 a conventional air heat pump is completed with a heat pump according to the present invention. The conventional air heat pump according to figure 5 comprises a third heat exchanger 415 and a fourth heat exchanger 416. The third heat exchanger 415, that in principle constitutes an evaporator, is located in the open air outside a space in which the conventional air heat pump is operating while the fourth heat exchanger 416, that in principle constitutes a condenser, is located in the air in the space, in which the conventional air heat pump operates. A first transferring conduit 417 extends from the third heat exchanger 415 to the fourth heat exchanger 416. In this first transferring conduit 417 a compressor 418 is provided, said compressor 418 being related to the conventional air heat pump. A second transferring conduit 419 extends from the fourth heat exchanger 416 to the third heat exchanger 415. An expansion valve 420 is provided in the second transferring conduit 419. A first fan 421 is related to the third heat exchanger 415 and a second fan 422 is related to the fourth heat exchanger 416. These fans 421, 422 guarantee sufficient air movement in connection with the respective heat exchanger 415, 416. When the conventional air heat pump is operating an energy storing medium is brought to circulate through the third heat exchanger 415, the first transferring conduit 417, the fourth heat exchanger 416 and the second transferring conduit 419. The energy storing medium, e.g. CFC, is compressed by the compressor 418 that is related to the air heat pump before the energy storing medium passes through the fourth heat exchanger 416 where heat is emitted to the space, in which the conventional heat pump operates. The third heat exchanger 415 absorbs heat from the outdoor air. At low temperatures, especially below -100C, the energy exchange is low. In order to improve this energy exchange a further heat pump is used in accordance with the principle of the present invention, said further heat pump comprising a Ranque generator. As is evident from figure 5 the outdoor third heat exchanger 415, with its components, is located in a space S4, in which also the further heat pump is located, said further heat pump comprising a Ranque generator. As is indicated by the arrows Al and A2 an air stream takes place through the space S4 in connection with the operation of the first fan 421.
In figure 5 it is schematically shown how a heat pump according to the present invention is provided in the space S4. This heat pump comprises a Ranque generator 401, a compressor 403, a connection conduit 405 to the Ranque generator 401, a first outlet conduit 407 from the Ranque generator 401, a second outlet conduit '409 from the Ranque generator 401 and a first inlet conduit 410 to the compressor 403. The hot air stream that emanates from the Ranque generator 401 is discharged via the first outlet conduit 407 and heats the air that surrounds the third heat exchanger 415. The cold air stream that emanates from the Ranque generator 401 is discharged via the second outlet conduit 409 that emanates outside the space S4.
In the embodiment according to figure 6 only one space S5 is shown, said space S5 holding the third heat exchanger 515 of a conventional air heat pump and a heat pump according to the present invention. A compressor 518 and an expansion valve 520 are related to the conventional air heat pump. As is evident from figure 6 the first fan 521 heats a first portion of the third heat exchanger 515 while the heat pump according to the present invention heats a second portion of the third heat exchanger 515. The heat pump according to the present invention comprises a Ranque generator 501, a compressor 503, a connection conduit 505 to the Ranque generator 501, a first outlet conduit 507 from the Ranque generator 501, a second outlet conduit 509 from the Ranque generator 501 and a first inlet conduit 510 to the compressor 503. The hot air stream that exits from the Ranque generator 501 is discharged via the first outlet conduit 507 and heats the upper portion of the third heat exchanger 515. The cold air stream that exits from the Ranque generator 501 is discharged via the second outlet conduit 509 that emerges outside the space S5.
In the embodiment shown in figure 6 the compressors 503 and 518 are driven by a common power source, this being illustrated by the interconnection of the compressors 503 and 518. Within the scope of the invention it is feasible that the compressors 503 and 518 each are related to a separate power source.
Generally, in the embodiments described above of a heat pump according to the present invention, said heat pump comprising a Ranque generator and a compressor. Preferably, a worm compressor is used that has a high capacity and a regular air flow rate. The heat that is generated when the compressor compresses the air will be of use to the space, in which the heat pump is installed.
Feasible Modifications of the Invention
In the embodiments of the invention described above the compressor 3; 103; 203; 303; 403; 503 is located in the space S; Sl; S2; S3; S4; S5. However, within the scope of the present invention is also feasible that the compressor is located outside the space, in which the heat pump operates.
The heat pump system according to the present invention may for instance be equipped with a temperature sensor to register the temperature difference between the hot and the cold side of the Ranque generator 1; 101; 201; 301; 401; 501, the rotational frequency of the compressor 3; 103; 203; 303; 403; 503 being regulated dependent on said measured temperature difference. The compressor 3; 103; 203; 303; 403; 503 that is used in a heat pump according to the present invention may be water cooled, the heat that is generated adjacent to the compressor 3; 103;, 203; 303; 403; 503 may be taken care of via a heat exchanger.
In the embodiment according to figure 3 a second heat exchanger 213 is provided outside the space S2, in the free air. This second heat exchanger 213 may also the located in water, for instance in a lake, it might be embedded in the ground or located in the bedrock. Is also feasible that the second the exchanger 213 is designed as a solar collector. Generally, the purpose of the exemplified arrangements is to achieve an improved heating of the air/gas compared to the location of the second heat exchanger 213 in the open air.
In the embodiment according to figure 3 it is also feasible, within the scope of the present invention, that the first heat exchanger 211 is used to heat hot service water or water in a system for hot water heating.
In the embodiment according to figure 3 it is feasible, within the scope of present invention, that the second outlet conduit 209 is used to cool for instance a refrigerator, a freezer or an underground storehouse. Within the scope of the present invention is also feasible that one or both heat exchangers are integrated with the heat pump according to the present invention, i.e. the compressor, the Ranque generator and at least one of the heat exchangers form a unit in the space, in which the heat pump is intended to operate. If the heat exchanger that is connected to the cold side of the Ranque generator is integrated in this unit the cold air that is generated in the area of this heat exchanger must be taken care of in a suitable way, this being for instance effected by means of a fan that transports the cold air to the outside of the space, in which the heat pump operates.
The embodiments shown in figures 5 and 6 are illustrated with a conventional air heat pump. Within the scope of the present invention it is however feasible that the heat pump according to the present invention cooperates with some other type of conventional heat pump, for instance an air-water heat pump or a geothermal heat pump.

Claims

Claims
1. Heat pump that is intended to operate in a space (S; Sl; S2; S3; S4; S5) , said heat pump comprising a compressor (3; 103; 203; 303; 403; 503) and a first inlet conduit (10; 110; 210; 310; 410; 510) for supplying air/gas to the compressor (3; 103; 203; 303; 403; 503), c h a r a c t e r i s e d in that the heat pump comprises a Ranque generator (1; 101; 201;, 301; 401; 501), a connection conduit (5; 105; 205; 305; 405; 505) extending between the compressor (3; 103; 2203; 303; 403; 503) and the Ranque generator (1; 101; 201; 301; 401; 501) to transfer compressed air/gas to the Ranque generator (1; 101; 201; 301; 401; 501), a first outlet conduit (7; 107; 207; 307; 407; 507) for air/gas emanating from the hot side of the Ranque generator (1; 101; 201; 301; 401; 501), said first outlet conduit (7; 107; 207; 307; 407; 507) emerging inside the space (S; Sl; S4; S5) or being connected to a first heat exchanger (211; 311) inside the space (S2; S3) , and a second outlet conduit for air/gas emanating from the cold side of the Ranque generator (1; 101; 201; 301; 401; 501), said second outlet conduit (9; 109; 209; 309; 409; 509) emerging outside the space (S; Sl; S4; S5) or being connected to a second heat exchanger (213; 313) .
2. Heat pump according to claim 1, c h a r a c t e r i s e d in that the second heat exchanger (213; 313) is located outside the space (S2; S3) .
3. Heat pump according to claim 1 or 2, c h a r a c t e r i s e d in that the inlet of the inlet conduit (10; 410; 510) is located in the open air outside the space (S; S4; S5) .
4. Heat pump according to claim 1 or 2, c h a r a c t e r i s e d in that the inlet of the first inlet conduit (110) is located in the open air inside the space (Sl) .
5. Heat pump according to claim 1 or 2, c h a r a c t e r i s e d in that the first inlet conduit (210; 310), at its end remote from the compressor (203; 303), is connected to the second heat exchanger (213; 313) outside the space (S2; S3) .
6. Heat pump according to claim 5, c h a r a c t e r i s e d in that the first inlet conduit (310) extends around the compressor (303) and the connection conduit (305) , said connection conduit (305) transferring compressed air/gas to the Ranque generator (301) .
7. Heat pump according to claim 5 or 6, c h a r a c t e r i s e d in that a second inlet conduit (212;, 312) that emanates from the first heat exchanger (211; 311) joins the first inlet conduit (210; 310) upstream the compressor (203; 303) .
8. Heat pump according to any of the previous claims, c h a r a c t e r i s e d in that the compressor constitutes a worm compressor (3; 103; 203; 303; 403; 503) .
9. Heat pump according to any of the previous claims, c h a r a c t e r i s e d in that it comprises a temperature sensor to register the temperature difference between the hot and cold side of the Ranque generator (1; 101; 201; 301; 401; 501) , and that the heat pump also comprises means to regulate the rotational frequency of the compressor (3; 103, 203, 303; 403; 503) dependent on the measured temperature difference.
10. Heat pump according to any of the previous claims, c h a r a c t e r i s e d in that the space (S4; S5) also includes a third heat exchanger (415; 515) that constitutes a part of a conventional heat pump.
PCT/SE2005/001199 2004-08-12 2005-08-11 Heat pump WO2006016847A1 (en)

Priority Applications (3)

Application Number Priority Date Filing Date Title
JP2007525576A JP2008510121A (en) 2004-08-12 2005-08-11 heat pump
EP05772201A EP1792127A1 (en) 2004-08-12 2005-08-11 Heat pump
US11/659,787 US20080115507A1 (en) 2004-08-12 2005-08-11 Heat Pump

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
SE0402006A SE0402006L (en) 2004-08-12 2004-08-12 Heat pump
SE0402006-1 2004-08-12

Publications (1)

Publication Number Publication Date
WO2006016847A1 true WO2006016847A1 (en) 2006-02-16

Family

ID=32960384

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/SE2005/001199 WO2006016847A1 (en) 2004-08-12 2005-08-11 Heat pump

Country Status (5)

Country Link
US (1) US20080115507A1 (en)
EP (1) EP1792127A1 (en)
JP (1) JP2008510121A (en)
SE (1) SE0402006L (en)
WO (1) WO2006016847A1 (en)

Families Citing this family (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN102072677A (en) * 2010-12-30 2011-05-25 北京雪迪龙科技股份有限公司 Vortex cooler
US9790972B2 (en) 2013-06-25 2017-10-17 Emerson Process Management Regulator Technologies, Inc. Heated fluid regulators
US10094597B2 (en) 2014-09-24 2018-10-09 Fisher Controls International Llc Field instrument temperature apparatus and related methods
US20160085244A1 (en) * 2014-09-24 2016-03-24 Fisher Controls International Llc Vortex tube temperature control for process control devices
CN114060980B (en) * 2021-11-16 2024-10-18 广东信稳能控技术研究有限公司 Single-cooling green movable air conditioner
CN113983584B (en) * 2021-11-16 2024-10-18 广东信稳能控技术研究有限公司 Cold and warm environment-friendly movable air conditioner

Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3553971A (en) * 1967-12-19 1971-01-12 Vortair Engineering Ltd Refrigeration of mobile containers
US4646524A (en) * 1984-03-23 1987-03-03 Jantec Co., Ltd. Method of intensifying heat in reversed Rankine cycle and reversed Rankine cycle apparatus for conducting the same
DE4025804A1 (en) * 1990-08-15 1992-02-20 Joachim Scheuermann Air conditioning system utilising vortex tube - supplies separate streams of hot and cold air
WO1996024808A1 (en) * 1995-02-07 1996-08-15 Keller Juergen Cooling system
US20010042380A1 (en) * 2000-03-03 2001-11-22 Cho Young I. Vortex generator to recover performance loss of a refrigeration system

Family Cites Families (16)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US1952281A (en) * 1931-12-12 1934-03-27 Giration Des Fluides Sarl Method and apparatus for obtaining from alpha fluid under pressure two currents of fluids at different temperatures
US3630040A (en) * 1970-06-12 1971-12-28 Fred A Goldfarb Air conditioner
US3898978A (en) * 1972-12-12 1975-08-12 Schwartz Joseph M Breathing gas heater
US3815573A (en) * 1972-12-12 1974-06-11 Schwartz J Diving suit heater
US4333017A (en) * 1980-10-20 1982-06-01 Connell John J O Method and apparatus for closed loop vortex operation
US4538447A (en) * 1984-03-13 1985-09-03 Pravda Milton F Method and apparatus useful for rapidly determining the molecular weight of a flowing gaseous material
JPS60253768A (en) * 1984-05-31 1985-12-14 株式会社 ジヤンテツク Reverse rankine cycle device in which vortex tube is combined
JPS61243260A (en) * 1985-04-18 1986-10-29 株式会社 ジヤンテツク Reverse rankine cycle device
JPS62135078U (en) * 1986-02-18 1987-08-25
DE4122889C1 (en) * 1991-07-11 1992-12-17 Bitzer Kuehlmaschinenbau Gmbh & Co Kg, 7032 Sindelfingen, De
JPH08316673A (en) * 1995-05-17 1996-11-29 Fujitsu Ltd Cooling structure
DE19748083A1 (en) * 1997-10-30 1999-05-06 Aisin Seiki Expansion device for working medium using vortex tube
US6314747B1 (en) * 1999-01-12 2001-11-13 Xdx, Llc Vapor compression system and method
FR2790407B1 (en) * 1999-03-01 2001-06-01 Jouan RANQUE TUBE COOLING CENTRIFUGE
JP4582473B2 (en) * 2001-07-16 2010-11-17 Smc株式会社 Constant temperature liquid circulation device
US7669428B2 (en) * 2005-04-14 2010-03-02 Georgia Tech Research Corporation Vortex tube refrigeration systems and methods

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3553971A (en) * 1967-12-19 1971-01-12 Vortair Engineering Ltd Refrigeration of mobile containers
US4646524A (en) * 1984-03-23 1987-03-03 Jantec Co., Ltd. Method of intensifying heat in reversed Rankine cycle and reversed Rankine cycle apparatus for conducting the same
DE4025804A1 (en) * 1990-08-15 1992-02-20 Joachim Scheuermann Air conditioning system utilising vortex tube - supplies separate streams of hot and cold air
WO1996024808A1 (en) * 1995-02-07 1996-08-15 Keller Juergen Cooling system
US20010042380A1 (en) * 2000-03-03 2001-11-22 Cho Young I. Vortex generator to recover performance loss of a refrigeration system

Also Published As

Publication number Publication date
JP2008510121A (en) 2008-04-03
SE526649C2 (en) 2005-10-18
SE0402006L (en) 2005-10-18
US20080115507A1 (en) 2008-05-22
SE0402006D0 (en) 2004-08-12
EP1792127A1 (en) 2007-06-06

Similar Documents

Publication Publication Date Title
CN101258789B (en) Air conditioning system for communication equipment and controlling method thereof
US20120131935A1 (en) Air conditioner and method for operating same
CN101089366A (en) Deep mining mine cooling device
CN107504600A (en) Monoblock type radiation air-conditioner unit
CN103175324A (en) Concurrent flow evaporative type condensation refrigerating unit with heat recovery
US7631511B2 (en) Portable air conditioning and water cooling apparatus
CN102313321A (en) Chiller-heater type mobile air conditioner
CN107830697A (en) Air energy heat pump drying system
KR100511242B1 (en) Air conditioner
US20060123823A1 (en) Cogeneration system
US20100043464A1 (en) Heat Pump and Method of Heating Fluid
US20080115507A1 (en) Heat Pump
CN107387461B (en) Magnetic suspension cfentrifugal blower cooling system
US20060037354A1 (en) Indoor unit of air conditioner
CN104697247A (en) Shell-and-tube multifunctional heat exchanger
CN211876174U (en) An indoor unit of an air conditioner
CN118970269A (en) Battery thermal management device and vehicle
CN201488141U (en) Heat pump type energy-saving integrated air conditioner
KR101877310B1 (en) Cold Air and Warm Air Generating Apparatus
CN201425389Y (en) Heat pump and air conditioning water heater integrated machine capable of storing energy
CN100529587C (en) Air conditioning system for communication equipment and controlling method thereof
CN206160309U (en) Kitchen air conditioner
CN113531895A (en) Air-conditioning type heat pump water heater
CN1782600B (en) Air conditioner with condensate unit
KR100357106B1 (en) Air conditional of non-refrigerant

Legal Events

Date Code Title Description
AK Designated states

Kind code of ref document: A1

Designated state(s): AE AG AL AM AT AU AZ BA BB BG BR BW BY BZ CA CH CN CO CR CU CZ DE DK DM DZ EC EE EG ES FI GB GD GE GH GM HR HU ID IL IN IS JP KE KG KM KP KR KZ LC LK LR LS LT LU LV MA MD MG MK MN MW MX MZ NA NG NI NO NZ OM PG PH PL PT RO RU SC SD SE SG SK SL SM SY TJ TM TN TR TT TZ UA UG US UZ VC VN YU ZA ZM ZW

AL Designated countries for regional patents

Kind code of ref document: A1

Designated state(s): BW GH GM KE LS MW MZ NA SD SL SZ TZ UG ZM ZW AM AZ BY KG KZ MD RU TJ TM AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HU IE IS IT LT LU LV MC NL PL PT RO SE SI SK TR BF BJ CF CG CI CM GA GN GQ GW ML MR NE SN TD TG

121 Ep: the epo has been informed by wipo that ep was designated in this application
WWE Wipo information: entry into national phase

Ref document number: 2007525576

Country of ref document: JP

WWE Wipo information: entry into national phase

Ref document number: 2005772201

Country of ref document: EP

NENP Non-entry into the national phase

Ref country code: DE

WWE Wipo information: entry into national phase

Ref document number: 11659787

Country of ref document: US

WWP Wipo information: published in national office

Ref document number: 2005772201

Country of ref document: EP