The present invention relates to water pumps used in connection with internal combustion engines.
It is known in connection with water pumps to use a pre-assembled integrated shaft bearing which is installed in a water pump housing, along with a separate mechanical seal that is installed to isolate the bearing from the engine coolant fluid on the impeller side of the shaft. In some cases, coolant leakage through the mechanical seal is purposely used to lubricate the mechanical seal faces. However, this coolant leakage can create condensate on the bearing seal lip areas. The condensate as well as any excess leakage of coolant through the mechanical seal raises the risk of condensate and/or coolant intrusion into the bearing, resulting in early bearing failure. Also, excessive grease leakage from the bearing in the region of the seal can block the condensate leakage vent hole resulting in a pressure build-up in the space between the mechanical seal and the bearing, which can also result in coolant intrusion into the bearing and early bearing failure.
It would be desirable to provide a water pump in which the known arrangements are improved to prevent early bearing failure due to these potential leakage issues.
In one aspect, a coolant pump is provided including a pump housing with an integrated shaft bearing assembly located in the pump housing. The integrated shaft bearing includes a bearing housing and at least one bearing located in the bearing housing that supports a shaft that extends through the bearing housing. A bearing seal is connected to the bearing housing at a first axial end and contacts the shaft. A vent cover is located at the first axial end of the bearing housing, with the vent cover extending radially toward the shaft and defining a vent space between the bearing seal and the vent cover. A seal assembly is located between the shaft and the vent cover. A vent insert having a radially extending surface is located in the vent space and connected to the shaft for rotation therewith. A vent space inlet is connected to the vent space and a vent space outlet is also connected to the vent space. A generally annular collection cavity is located inside the vent space and is connected to the vent space outlet. The pump includes an inlet opening in communication with the vent space inlet and an outlet opening in communication with the vent space outlet. Based on this arrangement, any condensation and/or coolant leakage which is used to lubricate the mechanical seal contact surface for the bearing are actively purged via the vent insert in order to prevent water intrusion into the bearing. This prevents early bearing failure. Additionally, any excessive grease purge from the bearing is preferably also contained at the bearing seal and/or can be purged to the extent necessary via the active purging system.
In one aspect, an impeller is located in the pump housing and connected to the shaft on the same axial end as the vent cover, and a pulley is connected on an opposite axial end of the shaft.
Preferably, an external collection reservoir is provided on or connected to the pump housing in an area of the outlet opening.
In one preferred arrangement, the generally annular collection cavity has a volute shape in order to direct any condensate, coolant leakage and/or grease which passes through the bearing seal to the vent space outlet. Preferably, the outlet opening is arranged downwardly in a use position to allow for easier drainage.
In another aspect, the vent insert includes through holes that extend from the first axial side to the second axial side. Depending upon the arrangement, the vent inlet is preferably located on the first axial side of the vent insert and the vent outlet is located on the second axial side and the through holes promote air flow from the vent inlet through the vent insert to the vent outlet. Preferably, radially extending vanes are located on one or both axial sides of the vent insert, depending upon the particular arrangement.
In one preferred aspect, the vent insert includes an annular flange on the first axial side that at least partially surrounds a contact area between the bearing seal and the shaft. This is used in order to capture excessive grease which escapes through the bearing seal.
In a preferred arrangement, the vent insert tapers to a reduced thickness from a radially inner portion to a radial outer portion.
In one arrangement, the inlet opening is located in the pump housing. In another arrangement, the inlet opening extends through the shaft to the vent space.
In one arrangement, the vent cover is part of a vent ring that includes an axially extending generally cylindrical portion that abuts the bearing housing at the first axial end. The vent space inlet and the vent space outlet are located in the axially extending generally cylindrical portion.
The generally annular collection cavity that is shaped as a volute can be formed in the vent ring, or can be formed in the housing.
In a preferred variant, the vent space inlet is located in the bearing housing on the first axial side of the vent insert and the vent space outlet is located in the bearing housing on the second axial side of the vent insert. In this arrangement, preferably the radial vanes on the vent insert are only located on the second axial side. In another arrangement, with the vent space inlet being located through the shaft, the vanes are located on both axial sides of the vent insert in order to promote an outward flow of any condensate, coolant leakage or other material toward the generally annular collection cavity.
In another aspect of the invention, an integrated shaft bearing assembly for use in a coolant pump is provided. The integrated shaft bearing assembly includes the bearing housing as well as at least one bearing located in the bearing housing that supports the shaft that extends through the bearing housing. Preferably, two bearings are provided. A bearing seal is connected to the bearing housing at a first axial end and contacts the shaft. Preferably, a second bearing seal is also provided at the second axial end of the bearing housing and contacts the shaft at the second axial end as well. A vent cover is located at the first axial end of the bearing housing, which can be a separate flat cover or formed as a vent ring having a cylindrical portion that extends from the flat cover as discussed above. A seal assembly is located between the shaft and the vent cover. This isolates the wet side of the coolant pump from the bearing side. A vent insert having a radially extending surface is located in the vent space and is connected to the shaft for rotation therewith. A vent space inlet is connected to the vent space and a vent space outlet is also connected to the vent space. A generally annular collection cavity is located in the vent space and is connected to the vent outlet. This collects any condensate or excess coolant leakage which is actively purged via rotation of the vent insert in order to remove the condensate, excess coolant leakage, and/or other materials through the vent space outlet.
In one aspect, the vent space inlet is formed through an opening in the shaft. In another aspect, it is formed through an opening in the vent ring. Alternatively, it can be formed in a portion of the bearing housing.
The foregoing Summary and the following detailed description will be better understood when read in conjunction with the appended drawings, which illustrate a preferred embodiment of the invention. In the drawings:
Certain terminology is used in the following description for convenience only and is not limiting. The words “front,” “rear,” “upper” and “lower” designate directions in the drawings to which reference is made. The words “inwardly” and “outwardly” refer to directions toward and away from the parts referenced in the drawings. “Axially” refers to a direction along the axis of a shaft or rotating part. A reference to a list of items that are cited as “at least one of a, b, or c” (where a, b, and c represent the items being listed) means any single one of the items a, b, or c, or combinations thereof. The terminology includes the words specifically noted above, derivatives thereof and words of similar import.
Referring to
A vent cover 40 is located at the first axial end 32 of the bearing housing 22. The vent cover 40 in the first embodiment of the coolant pump 10 is part of a vent ring 42 which includes the generally flat radially extending cover 40 which is integrally connected with an axially extending generally cylindrical portion 43 that abuts the bearing housing 22 at the first axial end 32. However, as discussed in detail below, the vent cover 40 can be a separate part formed as a generally flat disc. The vent cover 40 extends radially inwardly from the axial end of the bearing housing 22 toward the shaft 28 and defines a vent space 44 between the bearing seal 30 and the vent cover 40. A seal assembly 46 is located between the shaft 28 and the vent cover 40. One arrangement of the seal assembly 46 is shown and includes a clamping ring 48 that is connected to the shaft 28 as well as a bellows 50, which is preferably elastic and pre-loaded in a direction toward the vent cover 40, as well as a seal element 52 that rides on the vent cover 40. The seal element 52 is preferably made of an elastomeric seal material and may have a PTFE coating at the moving contact face.
A vent insert 60 having a radially extending surface 62 is located in the vent space 44 and connected for rotation with the shaft 28. The vent insert 60 includes a first axial side 66 and a second axial side 68. Preferably through holes 64 extend from the first axial side 66 to the second axial side 68. The vent insert is shown in detail in
Preferably, an annular flange 70 is located on the vent insert 60 facing the bearing seal 30. The annular flange 70 preferably partially surrounds a portion of the bearing seal 30 where it contacts the shaft 28, forming a grease reservoir for excess grease which may be purged from inside the ISB 20 past the bearing seal 30.
Still with reference to
The pump 10 further includes an inlet opening 82, located in the pump housing 12 in the embodiment of
Referring to
In the embodiment illustrated in
The coolant pump 10 is preferably provided as a pre-assembled unit. The ISB 20 as described above in connection with the coolant pump 10 can be also provided as a separate pre-assembled unit that can be later assembled with the pump housing 12 as well as the impeller 14 and pulley 16 during assembly of the coolant pump 10. The separately assembled ISB 20 is shown in
Referring now to
Referring now to
As shown in
This arrangement potentially allows for reduced production costs for the pre-assembled ISB 20″ due to the vent cover 40″ being formed as a flat stamped disc rather than as the vent ring 42 as described above.
Having thus described the present invention in detail, it is to be appreciated and will be apparent to those skilled in the art that many physical changes, only a few of which are exemplified in the detailed description of the invention, could be made without altering the inventive concepts and principles embodied therein. It is also to be appreciated that numerous embodiments incorporating only part of the preferred embodiment are possible which do not alter, with respect to those parts, the inventive concepts and principles embodied therein. The present embodiment and optional configurations are therefore to be considered in all respects as exemplary and/or illustrative and not restrictive, the scope of the invention being indicated by the appended claims rather than by the foregoing description, and all alternate embodiments and changes to this embodiment which come within the meaning and range of equivalency of said claims are therefore to be embraced therein.
Number | Name | Date | Kind |
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4768923 | Baker | Sep 1988 | A |
5217350 | Kimura | Jun 1993 | A |
5226786 | Dorski | Jul 1993 | A |
5322373 | Oakes | Jun 1994 | A |
5950577 | Sasaki | Sep 1999 | A |
6029695 | Logan | Feb 2000 | A |
20120134789 | Murakami | May 2012 | A1 |
20150128415 | Russalian | May 2015 | A1 |
Number | Date | Country | |
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20170002838 A1 | Jan 2017 | US |