COOLANT PLUG-IN PUMP WITH SEALING WASHER TO MINIMIZE THE SEALING GAP
20210381520 ยท 2021-12-09
Inventors
Cpc classification
F05D2260/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P5/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/126
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/426
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/628
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/622
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/167
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04D29/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P5/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/42
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A plug-in coolant pump for motor vehicles includes an impeller surrounded by a pump housing. The impeller can be driven about a longitudinal axis extending through the pump housing by a pump shaft. A seal is provided between the pump shaft and the pump housing to seal the coolant-carrying pump housing, wherein the pump housing includes retaining domes on which a sealing disc is fastened which sets a sealing gap between a pump inlet with a pressure slope and the open impeller.
Claims
1-12. (canceled)
13: A plug-in coolant pump of a motor vehicle, the plug-in coolant pump comprising: an open impeller surrounded by a pump housing and drivable about a longitudinal axis by a pump shaft extending through the pump housing; and a seal between the pump shaft and the pump housing to seal the pump housing; wherein the pump housing includes retaining domes on which a sealing disc is fastened to set a sealing gap between a pump inlet with a pressure slope and the open impeller.
14: The plug-in coolant pump according to claim 13, wherein the sealing disc is positioned concentrically to the pump shaft and is defined by a sealing ring.
15: The plug-in coolant pump according to claim 13, wherein the sealing disc is curved inwardly away from the impeller in the radial direction and has a shape corresponding to a shape of the impeller.
16: The plug-in coolant pump according to claim 13, wherein an electric motor to drive the pump shaft is provided.
17: The plug-in coolant pump according to claim 13, wherein the sealing disc is fixed to the retaining domes by retaining pin.
18: The plug-in coolant pump according to claim 13, wherein at least three of the retaining domes are provided, the retaining domes being uniformly distributed in a circumferential direction with respect to the longitudinal axis.
19: The plug-in coolant pump according to claim 13, wherein the retaining domes terminate at an edge of the pump housing in the longitudinal direction.
20: The plug-in coolant pump according to claim 13, wherein the sealing disk includes a sealing lip.
21: The plug-in coolant pump according to claim 13, wherein the plug-in coolant pump is installed in a mounting bore of an engine block of an internal combustion engine of a motor vehicle.
22: An internal combustion engine of a motor vehicle, the internal combustion engine comprising: an engine block including a mounting bore; and the plug-in coolant pump according to claim 13; wherein the plug-in coolant pump is fastened to the engine block; and a sealing lip of the sealing disc seals a gap located between the sealing disc and the engine block.
23: The internal combustion engine according to claim 22, wherein the engine block includes a pump inlet.
24: The internal combustion engine according to claim 22, wherein an entirety of the pump housing is outside the engine block.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0015]
DETAILED DESCRIPTION
[0016] An example embodiment of the disclosure is explained in more detail below with reference to
[0017] Retaining domes 12 are provided, which are part of the pump housing 3 and project from a bottom of the pump housing 13, on the side near the impeller and extend parallel to the longitudinal axis 100. The retaining domes 12 are evenly distributed in the circumferential direction around the longitudinal axis 100. Preferably, at least three retaining domes 12 are provided. The retaining domes 12 are thereby arranged in close proximity to the impeller 30 along the radius. An annular gap 14 is provided between the envelope of the impeller and the envelope of the retaining domes, so that the impeller 30 can rotate without obstruction. The end faces of the retaining domes 12 are approximately flush with the edge of the pump housing 10. The retaining domes 12 are approximately cylindrical in shape and have a central bore 15 extending along the longitudinal axis of the domes. A sealing washer 16 rests on the end faces of the retaining domes 12 and also has bores 17 corresponding to those of the retaining domes, do that retaining pins 18 can be used to firmly secure the sealing washer 16 to the domes 12. The sealing disc 16 has an outer radius and an inner radius, the outer radius being dimensioned such that the disc rests on the domes 12 over their entire surface but does not project beyond them to any great extent. The width of the sealing disc is defined as the difference between the outer radius and the inner radius. The height of the sealing disc is the extension of the sealing disc parallel to the longitudinal axis 100. The width of the sealing disc is significantly greater than the height. The width is in a range between 10% to 30% of the outer radius, preferably in a range between 1 mm and 3 mm. The sealing disc 16 is curved inwards towards the longitudinal axis 100, in the direction of the engine block 5. In the radial direction, the sealing disk 16 lies within the mounting bore 11. In the radial direction, it does not project inward toward the center beyond the mounting bore 11 or the inlet 7. In the axial direction, the sealing disk 16 projects radially inward into the mounting bore 11, so that the sealing disk 16 forms a transition area to the suction chamber located in the engine block 5. The sealing disk 16 is arranged concentrically to the longitudinal axis 100. It is rotationally symmetrical. The shape of the sealing disk 16 is adapted to the shape of the open impeller 30, so that a sealing gap 19 located between the impeller 30 and the sealing disk 16 can be set to a minimum dimension. Since the sealing gap 19 is defined by the position and design of the sealing disk 16 and the impeller 30, the size of the sealing gap 19 that forms is independent of the manufacturing tolerances of the mounting bore 11 of the engine block. A gap 20 can form between the sealing disk 16 and the mounting bore 11 of the engine block, which is sealed by a sealing lip 21. The sealing lip 21 is attached to the sealing disc 16 and is curved from the sealing disc 16 in a radial direction from the inside to the outside, so that it rests against the mounting bore 11 perpendicular to the longitudinal axis 100. The sealing disc preferably has a collar onto which the lip seal is pressed or vulcanized. Particularly preferably, the sealing lip 21, viewed in the radial direction, is pressed or vulcanized onto the collar from the outside. The sealing lip 21 is flexible and seals the gap 20 between the sealing washer 16 and the engine block 5 due to the pressure gradient between the pump pressure and the inlet pressure. Preferably, the sealing washer is made of steel.
[0018] In the operating state of the coolant pump 1, the coolant flows axially via the inlet 7 located in the engine block 5 to the impeller 30 and is directed radially via the vanes into a channel not shown. Sealing via the sealing disc 16 prevents backflow.
[0019] The use of sealing disk 16 also allows the use of open impellers, which are significantly less expensive to manufacture because there is no need for an additional cover disk. The efficiency of the plug-in pump can be significantly increased so that a separate electric motor can be used as the drive instead of a belt drive.
[0020] While example embodiments of the present disclosure have been described above, it is to be understood that variations and modifications will be apparent to those skilled in the art without departing from the scope and spirit of the present disclosure. The scope of the present disclosure, therefore, is to be determined solely by the following claims.