MOTOR VEHICLE COOLING SYSTEM WITH AN ELECTRIC COOLANT PUMP
20230060455 · 2023-03-02
Inventors
- Luis HERRLING (Foritztal, DE)
- Heidemarie WEINERT (Reurieth OT Siegritz, DE)
- Conrad Nickel (Troistedt, DE)
- Jakob SCHNITZER (Hilburghausen, DE)
Cpc classification
F05D2260/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D13/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P5/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B17/03
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B2/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P2050/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/605
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K5/24
ELECTRICITY
F04B53/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A motor vehicle cooling system with an electric coolant pump includes a housing with a pump shaft. The electric coolant pump includes an electric motor in a motor housing. The electric coolant pump is at least partially accommodated in the pump shaft. A clamping device including at least two clamping arms is attached to an upper side of the motor housing. The clamping arms are supported with free ends thereof on an inner side of the pump shaft to clamp the electric coolant pump to the housing.
Claims
1. A motor vehicle cooling system, comprising: an electric coolant pump; a housing that houses a pump shaft; and a clamping device; wherein the electric coolant pump includes an electric motor located in a motor housing; the electric coolant pump is at least partially accommodated in the pump shaft; the clamping device includes at least two clamping arms fastened to an upper side of the motor housing, the clamping arms being provided with free ends thereof against an inner side of the pump shaft and clamping the electric coolant pump to the housing.
2. The motor vehicle cooling system according to claim 1, wherein wedge-shaped projections are provided on a lateral surface of the motor housing, each of the at least two clamping arms being supported on one of the projections; and a total height of the projections increases downwards in a longitudinal direction from the lateral surface, such that when the clamping device is mounted on the upper side of the motor housing, the clamping arms slide on the wedge-shaped projections and are spread outwardly away from the longitudinal axis of the electric coolant pump.
3. The motor vehicle cooling system according to claim 2, wherein the free ends of the clamping arms engage in corresponding recesses of an inner side of the pump shaft to provide a positive fit.
4. The motor vehicle cooling system according to claim 3, wherein the recesses are window-shaped.
5. The motor vehicle cooling system according to claim 4, wherein the clamping arms are wedge-shaped in an end region and have a total height decreasing outwards in a radial direction.
6. The motor vehicle cooling system according to claim 1, wherein the clamping device includes a central fastening portion from which the clamping arms extend radially outwards parallel or substantially parallel to the upper side of the motor housing; and the clamping arms are spaced uniformly or substantially uniformly in a circumferential direction with respect to a longitudinal axis of the electric coolant pump.
7. The motor vehicle cooling system according to claim 1, wherein the motor vehicle cooling system includes a circumferential gap between the electric coolant pump and the pump shaft, the clamping arms including a first bend to extend in a first region parallel or substantially parallel to a peripheral surface of the motor housing, and a second bend defining a second region between the second bend and the free end, the second region of the clamping arms spanning the circumferential gap.
8. The motor vehicle cooling system according to claim 5, wherein the wedge-shaped projections of the motor housing and a normal of the lateral surface of the motor housing enclose a slip angle which is smaller than an angle of the wedge-shaped region of the clamping arms.
9. The motor vehicle cooling system according to claim 6, wherein the motor housing includes, on the upper side, a threaded dome with an external thread on which the central fastening portion of the clamping device is placed and is fastened by a nut.
10. The motor vehicle cooling system according to claim 1, wherein the motor housing includes, on the upper side, an opening with an undercut into which the clamping device engages by being pressed in an axial direction.
11. A method of inserting an electric coolant pump into a motor vehicle cooling system, the motor vehicle cooling system including a housing with a pump shaft, and the electric coolant pump including an electric motor in a motor housing, the method comprising: inserting the electric coolant pump into the pump shaft; advancing a clamping device towards an upper side of the motor housing, the clamping device including at least two clamping arms which are provided against a lateral surface of the motor housing; and fixing the clamping device on the upper side of the motor housing and moving the clamping device in an axial direction towards the upper side of the motor housing; wherein the clamping arms are spread away from each other by sliding against the lateral surface of the motor housing relative to a longitudinal axis and are pressed with free ends thereof against an inside of the pump shaft in such a way that a frictional connection is produced between the clamping device and the housing with axial holding force.
12. The method according to claim 11, wherein, in the fixing of the clamping device on the upper side of the motor housing, the clamping device is fixed to the upper side of the motor housing by a screw connection or the upper side of the motor housing includes an opening into which the clamping device engages.
13. The method according to claim 11, wherein, in the fixing of the clamping device on the upper side of the motor housing, the free ends of the clamping arms engage in corresponding recesses on an inner side of the pump shaft to produce a positive fit.
14. The method of claim 13, wherein the clamping arms include a wedge-shaped end portion that slides along an upper edge of the recess in the fixing of the clamping device on the upper side of the motor housing to achieve a targeted positive fit and frictional connection.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Example embodiments of the present disclosure are described in more detail below with reference to the drawings. Identical components or components with identical functions bear identical reference signs. They show:
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
DETAILED DESCRIPTION
[0030]
[0031] The electric coolant pump 5 is held centered in the pump shaft 2 by a clamping device 9. A circumferential, annular gap 11 is provided between the coolant pump 5 and an inner side 10 of the pump shaft 2. The clamping device 9 is held stationary centrally on the upper side of the housing cover 7 and, starting therefrom, has three clamping arms 12 which extend in the radial direction and are evenly spaced in the circumferential direction. The clamping arms 12 project outwardly beyond the housing cover 7 and the gap 11. The clamping arms 12 have an approximately right-angled bend 13 which has an inside diameter corresponding, with some play, to the outside diameter of the housing cover 7 or the outer surface of the engine housing 6. The clamping arms 12 thus run parallel to the outer surface of the motor housing 6 in a first region 14. This first region 14 is adjoined by a second approximately right-angled bend 15, which forms a bearing surface 16 on the inside or underside. The adjoining second region 17 extends in the radial direction over the gap 11 and has a free end 18. The second region 17 of the clamping arm 12 is wedge-shaped in longitudinal section, with the height decreasing outwardly in the radial direction and the underside lying approximately perpendicular to the longitudinal axis of the pump. The s-shaped course of the clamping arms 12 in the side view enables targeted bracing of the coolant pump 5 in the pump shaft 2.
[0032] For this purpose, the clamping arms 12 are supported at their free, outer ends 18 on the inside 10 of the pump shaft 2. In the pump shaft 2, recesses 19 extending in the longitudinal direction are provided in the contact area with the clamping arms 12, which form a guide for the ends of the clamping arms 18 in the longitudinal direction during assembly. The recesses 19 define the position of the clamping arms 12 in the pump shaft 2 and form a positive fit with them.
[0033] Wedge-shaped projections 20 are provided on the outer jacket surface of the motor housing 6 to support the clamping arms, the height from the outer surface of which increases longitudinally downwards (from the housing cover side). The wedge-shaped projections 20 form a slip angle with the normal to the lateral surface of the motor housing 6 (see
[0034] When mounting the clamping device, it is fed in longitudinal direction to the upper side of the housing cover. This causes the clamping arms to deform elastically. The clamping arms slide on the wedge-shaped projections of the motor housing and are spread in the radial direction. The clamping arms thus exert an axial force against the element to be clamped and the components are clamped together with a frictional connection. Forces acting on the coolant pump can be absorbed by the clamping device so that tilting of the coolant pump in the pump shaft can be prevented.
[0035] It may also be provided that the wedge-shaped protrusions are one circumferential protrusion so that the electric coolant pump can be mounted independent of angle.
[0036] The clamping device has a low radial space requirement in contrast to the conventionally used clamps. Installation in the final system is also particularly simple, as the clamping device only needs to be acted on in the axial direction. Due to the defined position of the coolant pump in the pump shaft, a connection with piping is possible.
[0037]
[0038]
[0039]
[0040] 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.