US20120321489A1 - Water Pump - Google Patents
Water Pump Download PDFInfo
- Publication number
- US20120321489A1 US20120321489A1 US13/469,202 US201213469202A US2012321489A1 US 20120321489 A1 US20120321489 A1 US 20120321489A1 US 201213469202 A US201213469202 A US 201213469202A US 2012321489 A1 US2012321489 A1 US 2012321489A1
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- United States
- Prior art keywords
- annular
- water pump
- housing
- bearing
- slinger
- Prior art date
- Legal status (The legal status 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 status listed.)
- Abandoned
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Classifications
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04D—NON-POSITIVE-DISPLACEMENT PUMPS
- F04D29/00—Details, component parts, or accessories
- F04D29/08—Sealings
- F04D29/10—Shaft sealings
- F04D29/106—Shaft sealings especially adapted for liquid pumps
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F01—MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
- F01P—COOLING OF MACHINES OR ENGINES IN GENERAL; COOLING OF INTERNAL-COMBUSTION ENGINES
- F01P5/00—Pumping cooling-air or liquid coolants
- F01P5/10—Pumping liquid coolant; Arrangements of coolant pumps
- F01P5/12—Pump-driving arrangements
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16C—SHAFTS; FLEXIBLE SHAFTS; ELEMENTS OR CRANKSHAFT MECHANISMS; ROTARY BODIES OTHER THAN GEARING ELEMENTS; BEARINGS
- F16C33/00—Parts of bearings; Special methods for making bearings or parts thereof
- F16C33/72—Sealings
- F16C33/76—Sealings of ball or roller bearings
- F16C33/78—Sealings of ball or roller bearings with a diaphragm, disc, or ring, with or without resilient members
- F16C33/7886—Sealings of ball or roller bearings with a diaphragm, disc, or ring, with or without resilient members mounted outside the gap between the inner and outer races, e.g. sealing rings mounted to an end face or outer surface of a race
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16C—SHAFTS; FLEXIBLE SHAFTS; ELEMENTS OR CRANKSHAFT MECHANISMS; ROTARY BODIES OTHER THAN GEARING ELEMENTS; BEARINGS
- F16C33/00—Parts of bearings; Special methods for making bearings or parts thereof
- F16C33/72—Sealings
- F16C33/76—Sealings of ball or roller bearings
- F16C33/78—Sealings of ball or roller bearings with a diaphragm, disc, or ring, with or without resilient members
- F16C33/7896—Sealings of ball or roller bearings with a diaphragm, disc, or ring, with or without resilient members with two or more discrete sealings arranged in series
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16C—SHAFTS; FLEXIBLE SHAFTS; ELEMENTS OR CRANKSHAFT MECHANISMS; ROTARY BODIES OTHER THAN GEARING ELEMENTS; BEARINGS
- F16C19/00—Bearings with rolling contact, for exclusively rotary movement
- F16C19/02—Bearings with rolling contact, for exclusively rotary movement with bearing balls essentially of the same size in one or more circular rows
- F16C19/04—Bearings with rolling contact, for exclusively rotary movement with bearing balls essentially of the same size in one or more circular rows for radial load mainly
- F16C19/06—Bearings with rolling contact, for exclusively rotary movement with bearing balls essentially of the same size in one or more circular rows for radial load mainly with a single row or balls
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16C—SHAFTS; FLEXIBLE SHAFTS; ELEMENTS OR CRANKSHAFT MECHANISMS; ROTARY BODIES OTHER THAN GEARING ELEMENTS; BEARINGS
- F16C2360/00—Engines or pumps
- F16C2360/44—Centrifugal pumps
Definitions
- Japanese Laid-open Patent Application (Tokkai) 2010-169143 shows a water pump that has a watertight construction for a bearing of a rotating member.
- the watertight construction comprises a seal member that is fixed to the pump housing and has first and second lip portions slidably contacting with a flat portion formed on the drive shaft, and an annular slinger that is fixed to the drive shaft and has a peripheral portion to which a third lip (or axial lip) of the seal member slidably contacts. Due to the first and second lips that slidably contact to the flat portion of the drive shaft, there are defined two sealing portions by which water penetration into the ball bearing is restrained.
- a water pump which comprises a rotating unit including a pulley, a drive shaft and an impeller which rotate as a single unit; a housing covering the drive shaft and having a pump chamber for receiving therein the impeller; a mechanical seal unit installed between the housing and the drive shaft to seal the pump chamber; a bearing including an outer race fixed to one of the rotating unit and the housing, an inner race fixed to the other one of the rotating unit and the housing and a plurality of rotating bodies operatively disposed between the outer and inner races; an annular seal member arranged at an axial end of the bearing and having a peripheral portion that is fixed to one of the outer and inner races and another peripheral portion that slidably contacts with the other one of the outer and inner races; and an annular slinger fixed to the housing in a manner to face the annular seal member, the annular slinger having a given portion that slidably contacts with a given portion of the rotating unit.
- a water pump which comprises a rotating unit including a pulley, a drive shaft and an impeller which rotate as a single unit; a housing covering the drive shaft and having a pump chamber for receiving therein the impeller; a mechanical seal unit installed between the housing and the drive shaft to seal the pump chamber; a bearing including an outer race fixed to one of the rotating unit and the housing, an inner race fixed to the other one of the rotating unit and the housing and a plurality of rotating bodies operatively disposed between the outer and inner races; and an annular slinger arranged in a passage extending between the bearing and the mechanical seal unit, the annular slinger being fixed to the housing and having a given portion that slidably contacts to a rotating member fixed to the rotating unit, the rotating member being either one of the outer and inner races of the bearing.
- a water pump which comprises a rotating member adapted to be rotated by an external driving source; a housing that forms at least a part of a pump chamber from which a cooling water is led to an internal combustion chamber for cooling the engine upon rotation of the rotating member; a mechanical seal unit installed between the housing and the rotating member to seal the pump chamber; a bearing operatively disposed between the rotating member and the housing at a position other than the pump chamber; and an annular slinger arranged at an axial end of the bearing and fixed to a fixed portion, the annular slinger having a given portion that slidably contacts to the rotating member.
- FIG. 1 is an exploded view of a water pump of a first embodiment of the present invention
- FIG. 2 is a front view of the water pump of the first embodiment of the present invention
- FIG. 3 is a sectional view taken along the line A-A of FIG. 2 ;
- FIG. 4 is an enlarged sectional view of an essential portion of the water pump of the first embodiment
- FIG. 5 is a sectional view of a slinger that is usable as a part of a watertight construction employed in the water pump of the first embodiment
- FIG. 6 is a view similar to FIG. 5 , but showing another slinger that is also usable as a part of the watertight construction employed in the water pump of the first embodiment;
- FIG. 7 is a view similar to FIG. 4 , but showing an essential portion of a water pump of a second embodiment of the present invention.
- FIG. 8 is a view similar to FIG. 4 , but showing an essential portion of a water pump of a third embodiment of the present invention.
- the water pumps to which the following explanation is directed are of a type that is used for pumping a cooling water that circulates in an engine cooling system of a motor vehicle powered by an internal combustion engine. More specifically, the water pump is of a type that is mounted on a side wall of an engine block and powered by a crankshaft of the engine for circulating cooling water through a water jacket formed in the engine block.
- FIGS. 1 , 2 , 3 and 4 there is shown a water pump 1 A of a first embodiment of the present invention.
- water pump 1 A comprises a pump housing 2 that has at its left side a cylindrical portion 11 and at its right side a flange portion 2 a integrated with a right end of the cylindrical portion 11 .
- Pump housing 2 is a cast product of aluminum alloy and fixed to a side surface of an engine block (not shown) through flange portion 2 a thereby to form a pump chamber P (or volute chamber, see FIG. 3 ) between pump housing 2 and the engine block.
- a conical cover 5 is fixed to a left portion of pulley 4 in a manner to cover the substantially entire left surface of pulley 4 , as shown.
- Ball bearing 6 comprises an inner race 16 fixed to smaller diameter end portion 11 c, an outer race 17 fixed to pulley 4 and a plurality of balls 18 rotatably disposed between the inner and outer races 16 and 17 .
- annular slinger 7 As is seen from FIGS. 3 and 4 , between pulley 4 and smaller diameter end portion 11 c of pump housing 2 , there is concentrically arranged an annular slinger 7 of which inner peripheral portion is fixed to the pump housing 2 . As is best seen from FIG. 4 , annular slinger 7 is oriented to face a right end of ball bearing 6 . Due to provision of annular slinger 7 , water penetration into ball bearing 6 is restrained for the reasons that will be described hereinafter.
- drive shaft 3 has a right end to which the central hollow portion 8 c of an impeller 8 is fixed.
- impeller 8 is rotated in pump chamber P.
- cylindrical portion 11 of pump housing 2 comprises a larger diameter portion 11 a that is formed beside the above-mentioned flange portion 2 a, an intermediate diameter portion 11 b that extends leftward from larger diameter portion 11 a through a radially extending annular portion (no numeral) and a smaller diameter end portion 11 c that extends leftward from intermediate diameter portion 11 b through a radially extending annular portion 11 d.
- an inner diameter of smaller diameter end portion 11 c gradually increases as a distance from the left end of the end portion 11 c increases.
- a drain chamber 12 that communicates with an inside space of the portion 11 b through a drain passage 13 .
- Denoted by numeral 9 is a plug for sealing drain chamber 12 .
- the water drain construction comprises the drain passage 13 that is formed in a thicker lower portion of intermediate diameter portion 11 b to communicate the inside space of the portion 11 b with drain chamber 12 . That is, drain passage 13 extends along the Y-axis of FIG. 3 . Due to provision of drain passage 13 , cooling water that would penetrate into the inside space of intermediate diameter portion 11 b from pump chamber P through the mechanical seal unit 10 is drained into drain chamber 12 . Thus, water penetration toward the interior of smaller diameter end portion 11 c is suppressed or at least minimized.
- intermediate diameter portion 11 b is formed, at a position diametrically opposite to the position of the drain passage 13 , with a connecting opening 14 to communicate the interior of the portion 11 b with the outside of pump housing 2 . That is, connecting opening 14 extends along the Y-axis of FIG. 3 . Due to provision of connecting opening 14 , water vapor produced in drain chamber 12 can escape into the outside of pump housing 2 .
- Drive shaft 3 is made of a steel and rotatably disposed in pump housing 2 with its axially opposed ends projected outward from pump housing 2 , as shown.
- Pulley 4 is produced by pressing a steel plate and as is seen from FIG. 1 , pulley 4 has a cylindrical shape.
- pulley 4 comprises a tubular base portion 4 a (or first tubular portion) that is shaped to surround the smaller diameter end portion 11 c of pump housing 2 , a belt putting rim portion 4 b (or second tubular portion) that is shaped to surround tubular base portion 4 a and integrally connected to tubular base portion 4 a through an annular wall portion 4 f and the above-mentioned central hollow portion 4 c that is integrally connected to tubular base portion 4 a through an annular wall portion 4 e and fixed to the left end of drive shaft 3 .
- the left end of drive shaft 3 is press-fitted into the central hollow portion 4 c of pulley 4 .
- tubular base portion 4 a of pulley 4 comprises a cylindrical wall 4 d that is intimately and tightly disposed on outer race 17 of ball bearing 6 and the above-mentioned annular wall portion 4 e.
- the wall portion 4 e extends radially inward from a left end of cylindrical wall 4 d to a right end of central hollow portion 4 c.
- annular wall portion 4 e of pulley 4 is formed with a plurality of openings 15 through which the penetrating water in the interior of smaller diameter end portion 11 c of pump housing 2 is discharged to the outside of water pump 1 A. Openings 15 are arranged at evenly spaced intervals. Each opening 15 extends along the X-axis of FIG. 3 .
- Each opening 15 is so positioned and arranged as to place at least part thereof to a position where an inside end of an after-mentioned first annular seal member 19 and the inner race 16 of ball bearing 6 contact. More specifically, each opening 15 is arranged to substantially face the given contact portion between the first annular seal member 19 and the inner race 16 . With this arrangement, the penetrating water or water vapor in the interior of smaller diameter end portion 11 c is smoothly discharged into the outside through each opening 15 before arriving at the first annular seal member 19 . Due to provision of plural openings 15 , the water discharging from pump housing 2 is effectively carried out.
- openings 15 are arranged to axially face inner race 16 of ball bearing 6 , the openings 15 can be used as work assist openings for the tools that are manipulated or handled to place the ball bearing 6 onto an exact position of the smaller diameter end portion 11 c.
- the above-mentioned conical cover 5 is produced by pressing a corrosion-resistant metal plate, such as aluminum plate, stainless plate or the like.
- conical cover 5 comprises a main cover portion 5 a that covers tubular base portion 4 a of pulley 4 and a central annular portion 5 b that is tightly mounted on central hollow portion 4 c of pulley 4 through press-fitting.
- main cover portion 5 a of conical cover 5 extends radially outwardly from central annular portion 5 b to a position near an inside part of belt putting rim portion 4 b of pulley 4 . Due to provision of conical cover 5 , direct penetration or invasion of water or foreign substances into pump housing 2 through openings 15 is suppressed.
- the above-mentioned ball bearing 6 is of a single ball-row type with seal members. That is, ball bearing 6 is snugly disposed between an outer cylindrical surface of smaller diameter end portion 11 c of pump housing 2 and an inner cylindrical surface of cylindrical wall 4 d of pulley 4 .
- ball bearing 6 comprises inner race 16 that is press-fitted to the outer surface of smaller diameter end portion 11 c, outer race 17 that is press-fitted to the inner surface of cylindrical wall 4 d and a plurality of balls 18 that are rotatably and partially received in guide grooves (no numerals) respectively formed in inner and outer races 16 and 17 .
- ball bearing 6 is equipped with first and second annular seal members 19 and 20 .
- first and second annular seal members 19 and 20 are arranged at axially opposed ends of ball bearing 6 respectively in a manner to cover axially opposed open ends of an annular space (no numeral) defined by inner and outer races 16 and 17 .
- first and second annular seal members 19 and 20 are fixed to axially opposed inside ends of outer race 17 by caulking, while, as will be described in detail hereinafter, inner peripheries of first and second annular seal members 19 and 20 are arranged to slide in grooves respectively formed in axially opposed inside ends of inner race 16 . Due to provision of first annular seal member 19 , water penetration from the interior of smaller diameter end portion 11 c to the interior of ball bearing 6 is suppressed.
- first and second annular seal members 19 and 20 have substantially the same construction, the following detailed description on the construction will be directed to only second annular seal member 20 for simplification of explanation.
- second annular seal member 20 comprises an annular metal core member 20 a and an annular rubber cover member 20 x that covers an outer surface of annular metal core member 20 a.
- the outer periphery of second annular seal member 20 is fixed to the inner end of outer race 17 by caulking, and the inner periphery of second annular seal member 20 is in contact with an inclined wall of an annular cut (no numeral) formed in the inner end of inner race 16 .
- first and second seal lips 20 d and 20 e are parts of the rubber cover 20 x and slidably and elastically pressed against the inclined wall of the annular cut of inner race 16 .
- seal lip member 20 b Due to provision of seal lip member 20 b elastically pressed against the inclined wall of inner race 16 , there is produced a first sealing section S 1 by which penetration or invasion of foreign substances from the outside into ball bearing 6 is suppressed. Due to provision of the two seal lips 20 d and 20 e, a so-called double sealing structure is defined by second annular seal member 20 .
- first annular seal member 19 (see FIG. 3 ) has the same structure as the above-mentioned second annular seal member 20 , penetration or invasion of foreign substances into ball bearing 6 from the inner space of smaller diameter end portion 11 c of pump housing 2 is suppressed.
- annular slinger 7 secured to pump housing 2 is arranged to face the right end of ball bearing 16 .
- Annular slinger 7 comprises an annular metal core member 21 and an annular rubber cover member 22 that covers a radially outside portion of annular metal core member 21 except a left surface that faces second annular seal member 20 .
- Annular metal core member 21 is made of a metal having a high thermal conductivity and suitable resiliency.
- One example of such metal is aluminum alloy.
- annular slinger 7 has an inner peripheral portion 21 a that is fixed to an outer surface of smaller diameter end portion 11 c of pump housing 2 and an outer peripheral portion that is provided with an annular seal lip 23 .
- the outer peripheral portion of annular slinger 7 is placed near an inner surface of cylindrical wall 4 d of pulley 4 .
- C 1 the space formed between the outer periphery of annular slinger 7 and the inner surface of cylindrical wall 4 d.
- s annular seal lip 23 is a part of rubber cover member 22 and slidably and elastically pressed against a right end surface of outer race 17 .
- annular seal lip 23 As is seen from FIGS. 3 and 4 , due to provision of annular seal lip 23 , foreign substances from the outside and cooling water that would arrive thereto through connecting opening 14 from mechanical seal unit 10 are suppressed from invading the interior of ball bearing 6 .
- annular slinger 7 that is tightly disposed on the outer surface of smaller diameter end portion 11 c of pump housing 2 , is sandwiched between an annular ridge 11 d ′ formed on radially extending annular portion 11 d of pump housing 2 and the right end of inner race 16 of ball bearing 6 .
- inner race 16 of ball bearing 6 , annular slinger 7 and pump housing 2 constitute a first single unit which is fixed. It is to be noted that in FIG. 4 , cylindrical wall 4 d and outer race 17 constitute a second single unit that turns around the fixed first single unit.
- annular slinger 7 is slightly depressed rightward and thus there is defined a given space C 2 between the right end of ball bearing 6 and the outer peripheral portion of annular slinger 7 .
- the space C 2 is sealed by annular seal lip 23 , as shown.
- annular portion 11 d of pump housing 2 is formed with an annular groove 24 at a radially inside position of annular ridge 11 d ′. More specifically, as shown, the radially inside end of annular groove 24 is mated with the cylindrical outer surface of smaller diameter end portion 11 c. With this arrangement, exact setting of the inner periphery of annular slinger 7 onto the cylindrical outer surface of smaller diameter end portion 11 c is achieved. This is because the inner periphery of annular slinger 7 can have an increased flexibility in selecting the best set position due to provision of annular groove.
- annular groove 24 If such annular groove 24 is not provided, the flexibility in selecting the best set position for the inner periphery of annular slinger 7 would be lowered. That is, due to provision of annular groove 24 , annular slinger 7 can be exactly and tightly disposed on smaller diameter end portion 11 c of pump housing 2 without rattle.
- annular seal lip 24 elastically pressed against the right end of outer race 17 , there is provided a second sealing section S 2 by which invasion of foreign substances from the outside into the space C 2 and thus into ball bearing 6 is suppressed.
- impeller 8 is fixed at its central hollow portion 8 c to the projected right end of drive shaft 3 .
- impeller 8 is produced by pressing a steel plate and has an integrated structure.
- impeller 8 comprises an annular base portion 8 a, a plurality of vanes 8 b pressed out of a peripheral portion of annular base portion 8 a and the above-mentioned central hollow portion 8 c.
- first and second sealing sections S 1 and S 2 in series in a passage that extends from the outside (or water drain chamber 12 ) to the interior of ball bearing 6 .
- a third sealing section that is constructed by first annular seal member 19 (see FIG. 3 ) and arranged in a passage that extends from the outside to the interior of ball bearing 6 through openings 15 of pulley 4 . Accordingly, invasion or penetration of foreign substances and water into the interior of ball bearing 6 is quite effectively suppressed.
- first given space SP 1 (see FIG. 4 ) defined by pulley 4 , ball bearing 6 and is annular slinger 7 .
- first given space SP 1 tends to collect therein leaked cooling water from connecting opening 14 (see FIG. 3 ) and foreign substances from the outside.
- annular slinger 7 heat transmitted to annular slinger 7 from pump housing 2 promotes the above-mentioned water evaporation. That is, cooling water pumped up by water pump 1 A is led to the engine block for cooling the engine, and thus, the cooling water is heated by the engine block before rerunning to water pump 1 A. This means that under operation of water pump 1 A, pump housing 2 that defines pump chamber P therein is heated to a certain level and thus annular slinger 7 connected to pump housing 2 is also heated by the heat transfer from heated pump housing 2 . Heating of annular slinger 7 induces heating of annular seal lip 23 , which promotes the water is evaporation at first given space SP 1 .
- annular slinger 7 is of a fixed member, the slinger 7 is not subjected to “cooling by wind” that would be induced if annular slinger 7 rotates, and thus, the heat accumulated in annular slinger 7 is not lost fast. That is, in the first embodiment, the heat transmitted to annular slinger 7 is effectively used for evaporating water.
- FIGS. 5 and 6 there are shown modifications of annular slinger 7 , which are usable in water pump 1 A of the first embodiment.
- annular metal core member 21 is covered with the rubber cover member 22 , as shown.
- the peripheral portion of the metal core member 21 is formed with a plurality of openings 21 b through which material of the rubber cover member 22 runs.
- water pump 1 B of this second embodiment there is no space that corresponds to the first given space SP 1 of the first embodiment 1 A. Thus, the possibility of leakage of water through second sealing section S 2 is lowered.
- FIG. 8 there is shown an essential portion of a water pump 1 C of a third embodiment of the present invention.
- the annular slinger 7 has no rubber cover member disposed thereon, and annular rubber cover member 20 x of second annular seal member 20 is formed with an annular seal lip 24 that extends radially outward to slidably contact to an inner surface 7 a of the naked annular slinger 7 .
- FIG. 9 there is shown an essential portion of a water pump 1 D of a fourth embodiment of the present invention.
- grease may be applied to the top of annular seal lip 23 or 24 for promoting the water stopping function of the seal lip and increasing the durability of the seal lip against the friction in case of water pumps 1 A, 1 B and 1 C of the first, second and third embodiments.
- a structure similar to the water/foreign substances stopping structure may be applied to a left side of ball bearing 6 (see FIG. 3 ).
- the water stopping structure comprises an annular seal lip (not shown) that is mounted on conical cover 5 (see FIG. 3 ) and has a leading end pressed against an inner surface of belt putting rim portion 4 b of pulley 4 or an outer surface of cylindrical wall 4 d of pulley.
- a space S 3 defined between a periphery of conical cover 5 and the inner surface of belt putting rim portion 4 b is substantially closed, and thus, invasion of water into ball bearing 6 through openings 15 is suppressed or at least minimized.
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- Engineering & Computer Science (AREA)
- General Engineering & Computer Science (AREA)
- Mechanical Engineering (AREA)
- Chemical & Material Sciences (AREA)
- Combustion & Propulsion (AREA)
- Structures Of Non-Positive Displacement Pumps (AREA)
- Mechanical Sealing (AREA)
- Mounting Of Bearings Or Others (AREA)
- Sealing Of Bearings (AREA)
- Rolling Contact Bearings (AREA)
Abstract
A water pump is constructed to have a rotating member that is adapted to be rotated by an external driving source, a housing that forms a part of a pump chamber from which a cooling water is led to an internal combustion chamber for cooling the engine upon rotation of the rotating member, a mechanical seal unit that is installed between the housing and the rotating member to seal the pump chamber and a bearing that is operatively disposed between the rotating member and the housing at a position other than the pump chamber, in which an annular slinger is arranged at an axial end of the bearing and fixed to a fixed portion, the annular slinger having a given portion that slidably contacts to the rotating member.
Description
- 1. Field of the Invention
- The present invention relates in general to water pumps for pumping a cooling water that circulates in an engine cooling system of a motor vehicle, and more particularly to the water pumps of a type that provides a bearing of a rotating member with a watertight construction.
- 2. Description of the related Art
- Japanese Laid-open Patent Application (Tokkai) 2010-169143 shows a water pump that has a watertight construction for a bearing of a rotating member.
- In the water pump shown in the publication, there is disclosed a watertight construction between a cylindrical pump housing and a drive shaft that is concentrically and rotatably disposed in the pump housing. Between the pump housing and the drive shaft, there is disposed a ball bearing of a type that has two rows of balls for smoothing rotation of the drive shaft.
- The watertight construction comprises a seal member that is fixed to the pump housing and has first and second lip portions slidably contacting with a flat portion formed on the drive shaft, and an annular slinger that is fixed to the drive shaft and has a peripheral portion to which a third lip (or axial lip) of the seal member slidably contacts. Due to the first and second lips that slidably contact to the flat portion of the drive shaft, there are defined two sealing portions by which water penetration into the ball bearing is restrained.
- Although the watertight construction disclosed by the above-mentioned publication exhibits a watertight function to a certain extent due to provision of the two sealing portions, the sliding contact between the third lip and the annular slinger causes formation of an annular space in which water is collected, which however promotes the undesired penetration of water into the ball bearing from the annular space through the two sealing portions.
- It is therefore an object of the present invention to provide a water pump which is free of the above-mentioned drawback.
- According to the present invention, there is provided an improved watertight construction for a ball bearing installed in a water pump, that exhibits a satisfied watertight function by providing means by which water staying in the annular space is easily discharged therefrom.
- In accordance with a first aspect of the present invention, there is provided a water pump which comprises a rotating unit including a pulley, a drive shaft and an impeller which rotate as a single unit; a housing covering the drive shaft and having a pump chamber for receiving therein the impeller; a mechanical seal unit installed between the housing and the drive shaft to seal the pump chamber; a bearing including an outer race fixed to one of the rotating unit and the housing, an inner race fixed to the other one of the rotating unit and the housing and a plurality of rotating bodies operatively disposed between the outer and inner races; an annular seal member arranged at an axial end of the bearing and having a peripheral portion that is fixed to one of the outer and inner races and another peripheral portion that slidably contacts with the other one of the outer and inner races; and an annular slinger fixed to the housing in a manner to face the annular seal member, the annular slinger having a given portion that slidably contacts with a given portion of the rotating unit.
- In accordance with a second aspect of the present invention, there is provided a water pump which comprises a rotating unit including a pulley, a drive shaft and an impeller which rotate as a single unit; a housing covering the drive shaft and having a pump chamber for receiving therein the impeller; a mechanical seal unit installed between the housing and the drive shaft to seal the pump chamber; a bearing including an outer race fixed to one of the rotating unit and the housing, an inner race fixed to the other one of the rotating unit and the housing and a plurality of rotating bodies operatively disposed between the outer and inner races; and an annular slinger arranged in a passage extending between the bearing and the mechanical seal unit, the annular slinger being fixed to the housing and having a given portion that slidably contacts to a rotating member fixed to the rotating unit, the rotating member being either one of the outer and inner races of the bearing.
- In accordance with third aspect of the present invention, there is provided a water pump which comprises a rotating member adapted to be rotated by an external driving source; a housing that forms at least a part of a pump chamber from which a cooling water is led to an internal combustion chamber for cooling the engine upon rotation of the rotating member; a mechanical seal unit installed between the housing and the rotating member to seal the pump chamber; a bearing operatively disposed between the rotating member and the housing at a position other than the pump chamber; and an annular slinger arranged at an axial end of the bearing and fixed to a fixed portion, the annular slinger having a given portion that slidably contacts to the rotating member.
- Other objects and advantages of the present invention will become apparent from the following description when taken in conjunction of the accompanying drawings, in which:
-
FIG. 1 is an exploded view of a water pump of a first embodiment of the present invention; -
FIG. 2 is a front view of the water pump of the first embodiment of the present invention; -
FIG. 3 is a sectional view taken along the line A-A ofFIG. 2 ; -
FIG. 4 is an enlarged sectional view of an essential portion of the water pump of the first embodiment; -
FIG. 5 is a sectional view of a slinger that is usable as a part of a watertight construction employed in the water pump of the first embodiment; -
FIG. 6 is a view similar toFIG. 5 , but showing another slinger that is also usable as a part of the watertight construction employed in the water pump of the first embodiment; -
FIG. 7 is a view similar toFIG. 4 , but showing an essential portion of a water pump of a second embodiment of the present invention; -
FIG. 8 is a view similar toFIG. 4 , but showing an essential portion of a water pump of a third embodiment of the present invention; and -
FIG. 9 is a view similar toFIG. 4 , but showing an essential portion of a water pump of a fourth embodiment of the present invention. - In the following, water pumps of various embodiments of the present invention will be described in detail with reference to the accompanying drawings.
- The water pumps to which the following explanation is directed are of a type that is used for pumping a cooling water that circulates in an engine cooling system of a motor vehicle powered by an internal combustion engine. More specifically, the water pump is of a type that is mounted on a side wall of an engine block and powered by a crankshaft of the engine for circulating cooling water through a water jacket formed in the engine block.
- In the following description, various directional terms, such as right, left, upper, lower, rightward and the like are used for ease of explanation. It is however to be noted that such terms are to be understood with respect to only a drawing or drawings on which a corresponding part or portion is shown.
- Referring to
FIGS. 1 , 2, 3 and 4, particularlyFIGS. 1 and 3 , there is shown awater pump 1A of a first embodiment of the present invention. - As is seen from
FIG. 1 ,water pump 1A comprises apump housing 2 that has at its left side acylindrical portion 11 and at its right side aflange portion 2 a integrated with a right end of thecylindrical portion 11.Pump housing 2 is a cast product of aluminum alloy and fixed to a side surface of an engine block (not shown) throughflange portion 2 a thereby to form a pump chamber P (or volute chamber, seeFIG. 3 ) betweenpump housing 2 and the engine block. - As is best seen from
FIG. 3 , adrive shaft 3 is rotatably and coaxially installed inpump housing 2 through an after-mentionedmechanical seal unit 10.Drive shaft 3 has a left end (inFIG. 3 ) that is projected outward or leftward frompump housing 2. To the projected left end of thedrive shaft 3, there is fixed a centralhollow portion 4 c of apulley 4. Although not shown in the drawing, a drive belt is put onpulley 4 to transmit a turning force (or torque) to driveshaft 3 from a crankshaft of the engine. - As is seen from
FIGS. 1 and 3 , aconical cover 5 is fixed to a left portion ofpulley 4 in a manner to cover the substantially entire left surface ofpulley 4, as shown. - As is best seen from
FIG. 3 , betweenpulley 4 and a smallerdiameter end portion 11 c ofpump housing 2, there is concentrically disposed a ball bearing 6 to allow a smoothed rotation ofpulley 4 around smaller diameter end portion 11 e ofpump housing 2.Ball bearing 6 comprises aninner race 16 fixed to smallerdiameter end portion 11 c, anouter race 17 fixed topulley 4 and a plurality ofballs 18 rotatably disposed between the inner andouter races - As is seen from
FIGS. 3 and 4 , betweenpulley 4 and smallerdiameter end portion 11 c ofpump housing 2, there is concentrically arranged anannular slinger 7 of which inner peripheral portion is fixed to thepump housing 2. As is best seen fromFIG. 4 ,annular slinger 7 is oriented to face a right end of ball bearing 6. Due to provision ofannular slinger 7, water penetration into ball bearing 6 is restrained for the reasons that will be described hereinafter. - Referring back to
FIG. 3 , driveshaft 3 has a right end to which the centralhollow portion 8 c of animpeller 8 is fixed. Thus, under rotation ofdrive shaft 3,impeller 8 is rotated in pump chamber P. - As is seen from
FIG. 3 ,cylindrical portion 11 ofpump housing 2 comprises alarger diameter portion 11 a that is formed beside the above-mentionedflange portion 2 a, anintermediate diameter portion 11 b that extends leftward fromlarger diameter portion 11 a through a radially extending annular portion (no numeral) and a smallerdiameter end portion 11 c that extends leftward fromintermediate diameter portion 11 b through a radially extendingannular portion 11 d. As shown, an inner diameter of smallerdiameter end portion 11 c gradually increases as a distance from the left end of theend portion 11 c increases. - Below intermediate diameter portion lib in
FIG. 3 , there is defined adrain chamber 12 that communicates with an inside space of theportion 11 b through adrain passage 13. Denoted bynumeral 9 is a plug for sealingdrain chamber 12. - As is seen from
FIG. 3 , betweenintermediate diameter portion 11 b anddrive shaft 3, there is concentrically disposed amechanical seal unit 10 by which water penetration or invasion toward ball bearing 6 from pump chamber P is suppressed or at least minimized. However, since complete stopping of the water penetration toward ball bearing 6 is not effected by only themechanical seal unit 10, the following water drain construction is provided. - That is, the water drain construction comprises the
drain passage 13 that is formed in a thicker lower portion ofintermediate diameter portion 11 b to communicate the inside space of theportion 11 b withdrain chamber 12. That is,drain passage 13 extends along the Y-axis ofFIG. 3 . Due to provision ofdrain passage 13, cooling water that would penetrate into the inside space ofintermediate diameter portion 11 b from pump chamber P through themechanical seal unit 10 is drained intodrain chamber 12. Thus, water penetration toward the interior of smallerdiameter end portion 11 c is suppressed or at least minimized. - In addition to the above-mentioned
drain passage 13,intermediate diameter portion 11 b is formed, at a position diametrically opposite to the position of thedrain passage 13, with a connectingopening 14 to communicate the interior of theportion 11 b with the outside ofpump housing 2. That is, connectingopening 14 extends along the Y-axis ofFIG. 3 . Due to provision of connecting opening 14, water vapor produced indrain chamber 12 can escape into the outside ofpump housing 2. -
Drive shaft 3 is made of a steel and rotatably disposed inpump housing 2 with its axially opposed ends projected outward frompump housing 2, as shown. - As is seen from
FIG. 3 ,drive shaft 3 is formed at a portion thereof facing thedrain passage 13 and connecting opening 14 with anannular groove 3 a that has a given width. Due to provision ofannular groove 3 a, penetrating water on the outer surface ofdrive shaft 3 is suppressed from directly flowing toward the interior of smallerdiameter end portion 11 c. That is, the penetrating water is trapped byannular groove 3 a and then led to drainchamber 12 throughdrain passage 13. -
Pulley 4 is produced by pressing a steel plate and as is seen fromFIG. 1 ,pulley 4 has a cylindrical shape. - As is seen from
FIG. 3 ,pulley 4 comprises atubular base portion 4 a (or first tubular portion) that is shaped to surround the smallerdiameter end portion 11 c ofpump housing 2, a belt puttingrim portion 4 b (or second tubular portion) that is shaped to surroundtubular base portion 4 a and integrally connected totubular base portion 4 a through anannular wall portion 4 f and the above-mentioned centralhollow portion 4 c that is integrally connected totubular base portion 4 a through anannular wall portion 4e and fixed to the left end ofdrive shaft 3. As is seen fromFIG. 3 , for the fixing betweenpulley 4 and driveshaft 3, the left end ofdrive shaft 3 is press-fitted into the centralhollow portion 4 c ofpulley 4. - As shown in
FIG. 3 ,tubular base portion 4 a ofpulley 4 comprises acylindrical wall 4 d that is intimately and tightly disposed onouter race 17 ofball bearing 6 and the above-mentionedannular wall portion 4 e. Thewall portion 4e extends radially inward from a left end ofcylindrical wall 4 d to a right end of centralhollow portion 4 c. For the assembly,ball bearing 6 is press-fitted intotubular base portion 4 a, and then, smallerdiameter end portion 11 c ofpump housing 2 is press-fitted intoball bearing 6. - As will be understood from
FIG. 3 ,annular wall portion 4e ofpulley 4 is formed with a plurality ofopenings 15 through which the penetrating water in the interior of smallerdiameter end portion 11 c ofpump housing 2 is discharged to the outside ofwater pump 1A.Openings 15 are arranged at evenly spaced intervals. Eachopening 15 extends along the X-axis ofFIG. 3 . - Each
opening 15 is so positioned and arranged as to place at least part thereof to a position where an inside end of an after-mentioned firstannular seal member 19 and theinner race 16 ofball bearing 6 contact. More specifically, each opening 15 is arranged to substantially face the given contact portion between the firstannular seal member 19 and theinner race 16. With this arrangement, the penetrating water or water vapor in the interior of smallerdiameter end portion 11 c is smoothly discharged into the outside through eachopening 15 before arriving at the firstannular seal member 19. Due to provision ofplural openings 15, the water discharging frompump housing 2 is effectively carried out. Furthermore, sinceopenings 15 are arranged to axially faceinner race 16 ofball bearing 6, theopenings 15 can be used as work assist openings for the tools that are manipulated or handled to place theball bearing 6 onto an exact position of the smallerdiameter end portion 11 c. - The above-mentioned
conical cover 5 is produced by pressing a corrosion-resistant metal plate, such as aluminum plate, stainless plate or the like. - As is seen from
FIG. 3 ,conical cover 5 comprises amain cover portion 5 a that coverstubular base portion 4 a ofpulley 4 and a centralannular portion 5 b that is tightly mounted on centralhollow portion 4 c ofpulley 4 through press-fitting. As is seen,main cover portion 5 a ofconical cover 5 extends radially outwardly from centralannular portion 5 b to a position near an inside part of belt puttingrim portion 4 b ofpulley 4. Due to provision ofconical cover 5, direct penetration or invasion of water or foreign substances intopump housing 2 throughopenings 15 is suppressed. - The above-mentioned
ball bearing 6 is of a single ball-row type with seal members. That is,ball bearing 6 is snugly disposed between an outer cylindrical surface of smallerdiameter end portion 11 c ofpump housing 2 and an inner cylindrical surface ofcylindrical wall 4 d ofpulley 4. - As is mentioned hereinabove,
ball bearing 6 comprisesinner race 16 that is press-fitted to the outer surface of smallerdiameter end portion 11 c,outer race 17 that is press-fitted to the inner surface ofcylindrical wall 4 d and a plurality ofballs 18 that are rotatably and partially received in guide grooves (no numerals) respectively formed in inner andouter races - As is seen from
FIG. 3 ,ball bearing 6 is equipped with first and secondannular seal members annular seal members ball bearing 6 respectively in a manner to cover axially opposed open ends of an annular space (no numeral) defined by inner andouter races - As will be understood from
FIGS. 3 and 4 , outer peripheries of first and secondannular seal members outer race 17 by caulking, while, as will be described in detail hereinafter, inner peripheries of first and secondannular seal members inner race 16. Due to provision of firstannular seal member 19, water penetration from the interior of smallerdiameter end portion 11 c to the interior ofball bearing 6 is suppressed. - As is seen from
FIG. 4 , due to provision of secondannular seal member 20 and the above-mentionedannular slinger 7 placed near secondannular seal member 20, water penetration from the outside to the interior ofball bearing 6 is suppressed. - Since first and second
annular seal members annular seal member 20 for simplification of explanation. - As is seen from
FIG. 4 , secondannular seal member 20 comprises an annularmetal core member 20 a and an annularrubber cover member 20 x that covers an outer surface of annularmetal core member 20 a. The outer periphery of secondannular seal member 20 is fixed to the inner end ofouter race 17 by caulking, and the inner periphery of secondannular seal member 20 is in contact with an inclined wall of an annular cut (no numeral) formed in the inner end ofinner race 16. - That is, the inner periphery of second
annular seal member 20 is shaped into aseal lip member 20 b that includes first andsecond seal lips second seal lips rubber cover 20 x and slidably and elastically pressed against the inclined wall of the annular cut ofinner race 16. - Due to provision of
seal lip member 20 b elastically pressed against the inclined wall ofinner race 16, there is produced a first sealing section S1 by which penetration or invasion of foreign substances from the outside intoball bearing 6 is suppressed. Due to provision of the twoseal lips annular seal member 20. - Since first annular seal member 19 (see
FIG. 3 ) has the same structure as the above-mentioned secondannular seal member 20, penetration or invasion of foreign substances intoball bearing 6 from the inner space of smallerdiameter end portion 11 c ofpump housing 2 is suppressed. - As is best shown in
FIG. 4 ,annular slinger 7 secured to pumphousing 2 is arranged to face the right end ofball bearing 16.Annular slinger 7 comprises an annularmetal core member 21 and an annularrubber cover member 22 that covers a radially outside portion of annularmetal core member 21 except a left surface that faces secondannular seal member 20. Annularmetal core member 21 is made of a metal having a high thermal conductivity and suitable resiliency. One example of such metal is aluminum alloy. - As shown,
annular slinger 7 has an innerperipheral portion 21 a that is fixed to an outer surface of smallerdiameter end portion 11 c ofpump housing 2 and an outer peripheral portion that is provided with anannular seal lip 23. The outer peripheral portion ofannular slinger 7 is placed near an inner surface ofcylindrical wall 4 d ofpulley 4. InFIG. 4 , the space formed between the outer periphery ofannular slinger 7 and the inner surface ofcylindrical wall 4 d is denoted by C1. As shown, sannular seal lip 23 is a part ofrubber cover member 22 and slidably and elastically pressed against a right end surface ofouter race 17. - As is seen from
FIGS. 3 and 4 , due to provision ofannular seal lip 23, foreign substances from the outside and cooling water that would arrive thereto through connectingopening 14 frommechanical seal unit 10 are suppressed from invading the interior ofball bearing 6. - As is seen from
FIG. 4 , innerperipheral portion 21 a ofannular slinger 7, that is tightly disposed on the outer surface of smallerdiameter end portion 11 c ofpump housing 2, is sandwiched between anannular ridge 11 d′ formed on radially extendingannular portion 11 d ofpump housing 2 and the right end ofinner race 16 ofball bearing 6. - Thus,
inner race 16 ofball bearing 6,annular slinger 7 and pumphousing 2 constitute a first single unit which is fixed. It is to be noted that inFIG. 4 ,cylindrical wall 4 d andouter race 17 constitute a second single unit that turns around the fixed first single unit. - As is seen from
FIG. 4 , the outer peripheral portion ofannular slinger 7 is slightly depressed rightward and thus there is defined a given space C2 between the right end ofball bearing 6 and the outer peripheral portion ofannular slinger 7. The space C2 is sealed byannular seal lip 23, as shown. - As is seen from
FIGS. 3 and 4 , radially extendingannular portion 11 d ofpump housing 2 is formed with anannular groove 24 at a radially inside position ofannular ridge 11 d′. More specifically, as shown, the radially inside end ofannular groove 24 is mated with the cylindrical outer surface of smallerdiameter end portion 11 c. With this arrangement, exact setting of the inner periphery ofannular slinger 7 onto the cylindrical outer surface of smallerdiameter end portion 11 c is achieved. This is because the inner periphery ofannular slinger 7 can have an increased flexibility in selecting the best set position due to provision of annular groove. If suchannular groove 24 is not provided, the flexibility in selecting the best set position for the inner periphery ofannular slinger 7 would be lowered. That is, due to provision ofannular groove 24,annular slinger 7 can be exactly and tightly disposed on smallerdiameter end portion 11 c ofpump housing 2 without rattle. -
Annular seal lip 24 is so sized and constructed as to be sufficiently pressed against the right end ofouter race 17 even when a certain displacement is taken place byouter race 17 under operation of thewater pump 1A. The displaced positions ofouter race 17 are shown by broken lines inFIG. 4 . - Due to provision of
annular seal lip 24 elastically pressed against the right end ofouter race 17, there is provided a second sealing section S2 by which invasion of foreign substances from the outside into the space C2 and thus intoball bearing 6 is suppressed. - As is seen from
FIGS. 1 , 2 and 3, particularlyFIG. 2 , the above-mentionedimpeller 8 is fixed at its centralhollow portion 8 c to the projected right end ofdrive shaft 3. Likepulley 4,impeller 8 is produced by pressing a steel plate and has an integrated structure. - As is well shown in
FIGS. 2 and 3 ,impeller 8 comprises anannular base portion 8 a, a plurality ofvanes 8 b pressed out of a peripheral portion ofannular base portion 8 a and the above-mentioned centralhollow portion 8 c. - As is described in detail hereinabove, in
water pump 1A according to the present invention, there are arranged two, viz., first and second sealing sections S1 and S2 in series in a passage that extends from the outside (or water drain chamber 12) to the interior ofball bearing 6. Furthermore, inwater pump 1A, there is further arranged a third sealing section that is constructed by first annular seal member 19 (seeFIG. 3 ) and arranged in a passage that extends from the outside to the interior ofball bearing 6 throughopenings 15 ofpulley 4. Accordingly, invasion or penetration of foreign substances and water into the interior ofball bearing 6 is quite effectively suppressed. - In the following, conspicuous effects of
water pump 1A of the first embodiment of the present invention will be described with the aid ofFIGS. 3 and 4 . - Due to the nature of
water pump 1A having the above-mentioned construction, there is inevitably formed a first given space SP1 (seeFIG. 4 ) defined bypulley 4,ball bearing 6 and isannular slinger 7. Thus, under operation ofwater pump 1A, first given space SP1 tends to collect therein leaked cooling water from connecting opening 14 (seeFIG. 3 ) and foreign substances from the outside. - However, for the following reasons, such tendency is suppressed or at least minimized. That is, as is seen from
FIG. 3 , upon starting of the associated engine,pulley 4 is turned around the fixed smallerdiameter end portion 11 c ofpump housing 2 and thus, as is seen fromFIG. 4 ,outer race 17 ofball bearing 6, which is secured topulley 4, turns around the axis ofdrive shaft 3 keeping a contact of the right end surface thereof withannular seal lip 23 ofslinger 7. Due to frictional heat produced by the sliding contact between the right end surface ofouter race 17 andannular seal lip 23, water collected in first given space SP1 is evaporated and thus removed therefrom. This reduces the possibility of leakage of water through second sealing section S2. If the leading end ofannular seal lip 23 is arranged to contact a radially outer side of the right end surface ofouter race 17 as shown inFIG. 4 , the frictional heat is much effectively produced due to an increased speed with which the leading end ofannular seal lip 23 contacts the right end surface ofouter race 17. Of course, in this case, water evaporation is much effectively made. - In addition to the above, heat transmitted to
annular slinger 7 frompump housing 2 promotes the above-mentioned water evaporation. That is, cooling water pumped up bywater pump 1A is led to the engine block for cooling the engine, and thus, the cooling water is heated by the engine block before rerunning towater pump 1A. This means that under operation ofwater pump 1A, pumphousing 2 that defines pump chamber P therein is heated to a certain level and thusannular slinger 7 connected to pumphousing 2 is also heated by the heat transfer fromheated pump housing 2. Heating ofannular slinger 7 induces heating ofannular seal lip 23, which promotes the water is evaporation at first given space SP1. - Even if the water (viz., cooling water or foreign substances) passes through the second sealing section S2 and enters into a second given space SP2 (see
FIG. 4 ) that is defined byannular slinger 7,annular seal lip 23, the right end surface ofouter roller 17 and secondannular seal member 20, the water in second given space SP2 is evaporated by the heat transmitted toannular slinger 7 andinner race 16 ofball bearing 6 frompump housing 2. That is, even if water leaks into second given space SP2 from first given space SP1, the possibility of inversion or penetration of water into the interior ofball bearing 6 is quite small. - Because
annular slinger 7 is of a fixed member, theslinger 7 is not subjected to “cooling by wind” that would be induced ifannular slinger 7 rotates, and thus, the heat accumulated inannular slinger 7 is not lost fast. That is, in the first embodiment, the heat transmitted toannular slinger 7 is effectively used for evaporating water. - As is described hereinabove, in
water pump 1A of the first embodiment of the present invention, due to provision ofannular seal lip 23, invasion and penetration of foreign substances and water from the outside and connectingpassage 14 toward second given space SP2 facing secondannular seal member 20 are suppressed or at least minimized. Furthermore, by the frictional heat produced under operation ofwater pump 1A, the water staying near second sealing section S2 is effectively evaporated. Thus, undesired invasion or penetration of such foreign substances and water into the interior ofball bearing 6 is suppressed or at least minimized. - Even if water happens to leak into second given space SP2 through second sealing section S2, the heat produced under operation of
water pump 1A functions to evaporate the water and thus suppresses or at least minimizes the possibility of invasion or penetration of water into the interior ofball bearing 6. - Because of the above-mentioned effective watertight construction for
ball bearing 6, there is no need of using a high precision ball bearing, such as the ball bearing having two rows of balls between inner and outer races. Thus, production cost can be reduced in the water pump of the invention. - Referring to
FIGS. 5 and 6 , there are shown modifications ofannular slinger 7, which are usable inwater pump 1A of the first embodiment. - In the modification of
FIG. 5 , only a peripheral portion of annularmetal core member 21 is covered with therubber cover member 22, as shown. For a tight mounting ofrubber cover member 22 onto themetal core member 21, the peripheral portion of themetal core member 21 is formed with a plurality ofopenings 21 b through which material of therubber cover member 22 runs. - In the modification of
FIG. 6 , an entire construction of annularmetal core member 21 is covered with therubber cover member 22, as shown. In this modification, the annularmetal core member 21 is protected from corrosion. - Referring to
FIG. 7 , there is shown an essential portion of awater pump 1B of a second embodiment of the present invention. - As shown, in this second embodiment, the
annular seal lip 23 ofannular slinger 7 extends radially outward to slidably contact to an inner surface of ajunction portion 4 x (seeFIG. 3 ) betweentubular base portion 4 a andannular wall portion 4 f ofpulley 4. - In this
second embodiment 1B, substantially the same effects as those of the above-mentionedfirst embodiment 1A are obtained due to similar construction therebetween. However, in thissecond embodiment 1B, the frictional heat produced by the sliding contact between thejunction portion 4 x ofpulley 4 andannular seal lip 23 is higher than that produced in thefirst embodiment 1A since thejunction portion 4 x provides theannular seal lip 23 with a much longer running way per each turning ofpulley 4. This means that the water staying at and near second sealing section S2 is much effectively evaporated. - Furthermore, in
water pump 1B of this second embodiment, there is no space that corresponds to the first given space SP1 of thefirst embodiment 1A. Thus, the possibility of leakage of water through second sealing section S2 is lowered. - Referring to
FIG. 8 , there is shown an essential portion of awater pump 1C of a third embodiment of the present invention. - As shown, in this third embodiment, the
annular slinger 7 has no rubber cover member disposed thereon, and annularrubber cover member 20 x of secondannular seal member 20 is formed with anannular seal lip 24 that extends radially outward to slidably contact to aninner surface 7 a of the nakedannular slinger 7. - Because of the naked structure of
annular slinger 7, the heat transmitted thereto frompump housing 2 is much effectively used for producing the frictional heat by the sliding contact ofannular seal lip 24 withannular slinger 7. Thus, water staying at and near second sealing section S2 is much effectively evaporated. - Referring to
FIG. 9 , there is shown an essential portion of awater pump 1D of a fourth embodiment of the present invention. - As shown, in this fourth embodiment, the
annular slinger 7 has no rubber cover member disposed thereon and an annular dry film coat (or annular solid lubricant film) 25 is formed on a peripheral part of theinner surface 7 a of the nakedannular slinger 7. As shown, a major surface of annulardry film coat 25 is in contact with the right end surface ofouter race 17 ofball bearing 6. Due to the resiliency possessed by nakedannular slinger 7, the major surface of annulardry film coat 25 is pressed against the right end surface of theouter race 17. - Due to usage of annular
dry film coat 25 that is pressed against the right end surface ofouter race 17 ofball bearing 6, second sealing section S2 can exhibit an excellent sealing function against water and foreign substances. - If desired, following modifications may be applied to the water pumps of the above-mentioned embodiments.
- That is, if desired, grease may be applied to the top of
annular seal lip - Furthermore, if desired, besides the above-mentioned water/foreign substances stopping structure including
annular slinger 7 andannular seal lip dry film coat 25, a structure similar to the water/foreign substances stopping structure may be applied to a left side of ball bearing 6 (seeFIG. 3 ). - Furthermore, if desired, another water stopping structure may be employed in water pumps 1A, 1B, 1C and 1D. That is, the water stopping structure comprises an annular seal lip (not shown) that is mounted on conical cover 5 (see
FIG. 3 ) and has a leading end pressed against an inner surface of belt puttingrim portion 4 b ofpulley 4 or an outer surface ofcylindrical wall 4 d of pulley. With such water stopping structure, a space S3 defined between a periphery ofconical cover 5 and the inner surface of belt puttingrim portion 4 b is substantially closed, and thus, invasion of water intoball bearing 6 throughopenings 15 is suppressed or at least minimized. - The entire contents of Japanese Patent Application 2011-132180 filed Jun. 14, 2011 are incorporated herein by reference.
- Although the invention has been described above with reference to embodiments of the invention, the invention is not limited to such embodiments as described above. Various modifications and variations of such embodiments may be carried out by those skilled in the art, in light of the above description.
Claims (20)
1. A water pump comprising:
a rotating unit including a pulley, a drive shaft and an impeller which rotate as a single unit;
a housing covering the drive shaft and having a pump chamber for receiving therein the impeller;
a mechanical seal unit installed between the housing and the drive shaft to seal the pump chamber;
a bearing including an outer race fixed to one of the rotating unit and the housing, an inner race fixed to the other one of the rotating unit and the housing and a plurality of rotating bodies operatively disposed between the outer and inner races;
an annular seal member arranged at an axial end of the bearing and having a peripheral portion that is fixed to one of the outer and inner races and another peripheral portion that slidably contacts with the other one of the outer and inner races; and
an annular slinger fixed to the housing in a manner to face the annular seal member, the annular slinger having a given portion that slidably contacts with a given portion of the rotating unit.
2. A water pump as claimed in claim 1 , in which the outer race of the bearing is tightly disposed in a first cylindrical portion provided by the pulley and the inner race of the bearing is tightly disposed on an outer cylindrical surface of the housing.
3. A water pump as claimed in claim 2 , in which the pulley has a second cylindrical portion that surrounds the first cylindrical portion.
4. A water pump as claimed in claim 3 , in which the first and second cylindrical portions are connected through an annular wall portion that faces toward the impeller and in which the first cylindrical portion is connected to one end of the drive shaft that is opposite to the other end to which the impeller is connected.
5. A water pump as claimed in claim 4 , in which another annular wall portion that extends from the first cylindrical portion toward the one end of the drive shaft is formed, at an annular zone thereof facing one end of the inner race, with a plurality of openings and in which the inner race of the bearing is press-fitted onto the outer cylindrical surface of the housing.
6. A water pump as claimed in claim 5 , in which the pulley and the drive shaft are separate members.
7. A water pump as claimed in claim 1 , in which the given portion of the annular slinger is arranged to slidably contact with one of the outer race of the bearing and the pulley.
8. A water pump as claimed in claim 1 , in which the given portion of the annular slinger is arranged to slidably contact with one of the outer race of the bearing and the pulley through a rubber member.
9. A water pump as claimed in claim 8 , in which the rubber member is integral with a rubber cover member that intimately covers the annular slinger.
10. A water pump as claimed in claim 1 , in which the annular slinger is arranged to slidably contact with the annular seal member.
11. A water pump as claimed in claim 1 , in which the given portion of the annular slinger is provided with a solid lubricant film of which outer surface slidably contacts with either one of the outer race of the bearing and the pulley.
12. A water pump as claimed in claim 11 , in which the annular slinger is made of a resilient member.
13. A water pump as claimed in claim 1 , in which the annular slinger is tightly put between an axial end of the bearing and a stepped portion provided by the housing, and in which the stepped portion of the housing is provided with an annular groove to which an inner peripheral portion of the annular slinger is exposed.
14. A water pump as claimed in claim 1 , in which grease is applied to the given portion of the annular slinger.
15. A water pump as claimed in claim 1 , in which an outer peripheral portion of the annular seal member is fixed to the outer race of the bearing that is fixed to the rotating unit and in which an inner peripheral portion of the annular seal member has seal lips that slidably contact to the inner race of the bearing that is fixed to the housing.
16. A water pump as claimed in claim 1 , in which the annular slinger is made of a metal having a high thermal conductivity.
17. A water pump as claimed in claim 16 , in which the annular slinger is made of an aluminum alloy.
18. A water pump as claimed in claim 1 , in which the bearing is a ball bearing of single ball-row type.
19. A water pump comprising:
a rotating unit including a pulley, a drive shaft and an impeller which rotate as a single unit;
a housing covering the drive shaft and having a pump chamber for receiving therein the impeller;
a mechanical seal unit installed between the housing and the drive shaft to seal the pump chamber;
a bearing including an outer race fixed to one of the rotating unit and the housing, an inner race fixed to the other one of the rotating unit and the housing and a plurality of rotating bodies operatively disposed between the outer and inner races; and
an annular slinger arranged in a passage extending between the bearing and the mechanical seal unit, the annular slinger being fixed to the housing and having a given portion that slidably contacts to a rotating member fixed to the rotating unit, the rotating member being either one of the outer and inner races of the bearing.
20. A water pump comprising:
a rotating member adapted to be rotated by an external driving source;
a housing that forms at least a part of a pump chamber from which a cooling water is led to an internal combustion chamber for cooling the engine upon rotation of the rotating member;
a mechanical seal unit installed between the housing and the rotating member to seal the pump chamber;
a bearing operatively disposed between the rotating member and the housing at a position other than the pump chamber; and
an annular slinger arranged at an axial end of the bearing and fixed to a fixed portion, the annular slinger having a given portion that slidably contacts to the rotating member.
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
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JP2011-132180 | 2011-06-14 | ||
JP2011132180A JP5563525B2 (en) | 2011-06-14 | 2011-06-14 | Water pump |
Publications (1)
Publication Number | Publication Date |
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US20120321489A1 true US20120321489A1 (en) | 2012-12-20 |
Family
ID=47228643
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
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US13/469,202 Abandoned US20120321489A1 (en) | 2011-06-14 | 2012-05-11 | Water Pump |
Country Status (4)
Country | Link |
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US (1) | US20120321489A1 (en) |
JP (1) | JP5563525B2 (en) |
CN (1) | CN102828812B (en) |
DE (1) | DE102012209687A1 (en) |
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US10240638B2 (en) * | 2017-07-28 | 2019-03-26 | GM Global Technology Operations LLC | Cartridge bearing with bearing grease setting member |
WO2021073722A1 (en) * | 2019-10-15 | 2021-04-22 | Volvo Truck Corporation | A wheel bearing sealing arrangement and a vehicle |
US11646245B2 (en) * | 2018-11-15 | 2023-05-09 | Denso Corporation | Waterproof casing with a sealing grommet in a casting hole |
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JP6359251B2 (en) * | 2013-07-11 | 2018-07-18 | Ntn株式会社 | Idler pulley support device |
DE102015207523B4 (en) * | 2015-04-24 | 2022-09-08 | Aktiebolaget Skf | bearing arrangement |
GB2584676B (en) * | 2019-06-10 | 2021-11-10 | Edwards Ltd | Rotor support and vacuum pump with such a rotor support |
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JP2010169143A (en) | 2009-01-21 | 2010-08-05 | Jtekt Corp | Water pump bearing device |
JP2011132180A (en) | 2009-12-24 | 2011-07-07 | Sumitomo Chemical Co Ltd | Phthalocyanine compound having fullerene structure |
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2011
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- 2012-02-29 CN CN201210049441.1A patent/CN102828812B/en active Active
- 2012-05-11 US US13/469,202 patent/US20120321489A1/en not_active Abandoned
- 2012-06-11 DE DE102012209687A patent/DE102012209687A1/en not_active Ceased
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US3306223A (en) * | 1964-10-22 | 1967-02-28 | Illinois Milling Inc | Water pump seal |
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US6561756B2 (en) * | 2000-09-19 | 2003-05-13 | Aisin Seiki Kabushiki Kaisha | Water pump |
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US7311308B2 (en) * | 2002-04-23 | 2007-12-25 | Nsk Ltd. | Seal device for water pump, rotation supporting device for water pump and assembly method for water pump |
US7311499B2 (en) * | 2005-03-24 | 2007-12-25 | Aisin Seiki Kabushiki Kaisha | Impeller apparatus for water pump and water pump |
US20100104232A1 (en) * | 2006-10-23 | 2010-04-29 | Masahiro Tabata | Sealing device, rolling bearing, and rolling bearing for wheel |
US20100046873A1 (en) * | 2006-11-22 | 2010-02-25 | Masao Takimoto | Sealing device and rolling bearing apparatus |
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Cited By (6)
Publication number | Priority date | Publication date | Assignee | Title |
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US10006503B2 (en) | 2013-12-16 | 2018-06-26 | Nsk Ltd. | Release bearing and clutch release bearing device |
TWI553229B (en) * | 2014-01-16 | 2016-10-11 | Chao Fou Hsu | Damping method of diaphragm booster pump |
US10240638B2 (en) * | 2017-07-28 | 2019-03-26 | GM Global Technology Operations LLC | Cartridge bearing with bearing grease setting member |
US11646245B2 (en) * | 2018-11-15 | 2023-05-09 | Denso Corporation | Waterproof casing with a sealing grommet in a casting hole |
WO2021073722A1 (en) * | 2019-10-15 | 2021-04-22 | Volvo Truck Corporation | A wheel bearing sealing arrangement and a vehicle |
US12104649B2 (en) | 2019-10-15 | 2024-10-01 | Volvo Truck Corporation | Wheel bearing sealing arrangement and a vehicle |
Also Published As
Publication number | Publication date |
---|---|
DE102012209687A1 (en) | 2012-12-20 |
CN102828812A (en) | 2012-12-19 |
CN102828812B (en) | 2017-07-21 |
JP2013002499A (en) | 2013-01-07 |
JP5563525B2 (en) | 2014-07-30 |
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Legal Events
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AS | Assignment |
Owner name: HITACHI AUTOMOTIVE SYSTEMS, LTD., JAPAN Free format text: ASSIGNMENT OF ASSIGNORS INTEREST;ASSIGNORS:MURAKAMI, SHINGO;WATANABE, MASAHIKO;NAKAMURA, HIDEAKI;SIGNING DATES FROM 20120410 TO 20120416;REEL/FRAME:028288/0771 |
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STCB | Information on status: application discontinuation |
Free format text: ABANDONED -- FAILURE TO RESPOND TO AN OFFICE ACTION |