IP Library › Granted Patent US 11,183,902
Granted Patent B2
US 11,183,902 · App. 16/384,112 · Granted Nov 23, 2021

Device for driving a compressor and method for assembling of the device

Inventors: Bernd Guntermann (Lennestadt, DE); David Walisko (Hürth, DE); Stephan Heinrichs (Hürtgenwald, DE)
Assignee: Hanon Systems
H02K5/225F04B35/04F04B39/0044F04B39/0072F04B39/121F04B39/127F04D25/0606H02K3/50H02K3/522H02K5/24H02K11/33F04B39/023F04B39/12F05B2210/12F05B2230/60H02K5/08H02K2203/06Y10S417/902
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Quick Facts
Patent No.
US 11,183,902
App. No.
16/384,112
Granted
Nov 23, 2021
Kind
B2
Abstract

A device for driving a compressor of a gaseous fluid, in particular an electric motor. The device comprises a rotor and a stator which are disposed extending along a common longitudinal axis. A carrier element is disposed in contact on a first end side, oriented in an axial direction, of the stator, which carrier element comprises at least one resiliently deformable pressure element with a contact region. The pressure element is developed extending with an extent in the axial direction and, in a mounted state of the device, is in contact with the contact region on a mating surface under resilient deformation. A method for mounting and a use of the device is also provided.

Claims (23)

1. A device for driving a compressor of a gaseous fluid comprising a rotor and a stator which are disposed extending along a common longitudinal axis, wherein a carrier element is disposed in contact on a first end side oriented in an axial direction of the stator, which carrier element comprises at least one resiliently deformable pressure element with a contact region, wherein the pressure element extends with an extent (h) in the axial direction and, in a mounted state the device contacts its contact region on a mating surface under resilient deformation;

wherein the carrier element is implemented with a receiving element with connection passages for a connector housing with connector ports.

2. A device according to claim 1 , wherein the pressure element and the receiving element are disposed on a common side, oriented in an axial direction, of the carrier element.

3. A device according to claim 1 , wherein the carrier element, the pressure element and the receiving element are developed as a coherent unit as an integral component.

4. A device for driving a compressor of a gaseous fluid comprising a rotor and a stator which are disposed extending along a common longitudinal axis, wherein a carrier element is disposed in contact on a first end side oriented in an axial direction of the stator, which carrier element comprises at least one resiliently deformable pressure element with a contact region, wherein the pressure element extends with an extent (h) in the axial direction and, in a mounted state the device contacts with its contact region on a mating surface under resilient deformation, wherein the pressure element is developed in the form of an arc and comprises a web; and

wherein the web is disposed oriented in the axial direction and the contact region is oriented in the radial direction.

5. A device according to claim 4 , wherein the pressure element is connected with the carrier element across a front edge of the web.

6. A device according to claim 5 , wherein the pressure element comprises the contact region at an end developed distally to the front edge of the web.

7. A device for driving a compressor of a gaseous fluid comprising a rotor and a stator which are disposed extending along a common longitudinal axis, wherein a carrier element is disposed in contact on a first end side oriented in an axial direction of the stator, which carrier element comprises at least one resiliently deformable pressure element with a contact region, wherein the pressure element extends with an extent (h) in the axial direction and, in a mounted state of the device contacts its contact region on a mating surface under resilient deformation, wherein the carrier element comprises a radially oriented annular surface as well as an axially oriented annular surface, which are disposed adjoining one another at outer side edges and are connected with one another;

wherein the axially oriented annular surface of the carrier element has the form of a cylinder.

8. A device according to claim 7 , wherein the pressure element is connected with the radially oriented annular surface of the carrier element.

9. A device according to claim 7 , wherein the radially oriented annular surface of carrier element has the form of a circular ring.

10. A device according to claim 9 , wherein the pressure element is disposed in a region of the radially oriented annular surface of the carrier element.

11. A device according to claim 1 , wherein at an implementation of the carrier element with a multiplicity of pressure elements the pressure elements are disposed on the carrier element distributed over a circumference.

12. A method for mounting the device for driving a compressor of a gaseous fluid according to claim 1 , comprising the following steps:

disposing the rotor and the stator on a common longitudinal axis, with the stator encompassing the rotor in the radial direction,

disposing the carrier element on a first end side, oriented in an axial direction, of the stator, wherein the resilient pressure element is oriented extending with an extent (h) in the axial direction, as well as

disposing the stator with the carrier element on a mating surface, wherein the pressure element with a contact region is in contact on the mating surface and is resiliently deformed such that between the carrier element and the mating surface a force (F), is generated and the carrier element is pressed in the axial direction against a stator core of the stator and is stayed;

wherein a connector housing is introduced into a receiving element developed on the carrier element and in this manner is fixed in position on the carrier element.

13. A method comprising driving a compressor with the device of claim 1 to compress a gaseous fluid, wherein the gaseous fluid is a refrigerant in a refrigerant circuit of a motor vehicle climate control system.

14. A device according to claim 1 , wherein at an implementation of the carrier element with a multiplicity of pressure elements the pressure elements are disposed on the carrier element distributed over a circumference.

15. A device according to claim 2 , wherein at an implementation of the carrier element with a multiplicity of pressure elements the pressure elements are disposed on the carrier element distributed over a circumference.

16. A device according to claim 3 , wherein at an implementation of the carrier element with a multiplicity of pressure elements the pressure elements are disposed on the carrier element distributed over a circumference.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 14, 2020
From: GUNTERMANN, BERND; WALISKO, DAVID; HEINRICHS, STEPHAN
To: HANON SYSTEMS
Reel/Frame 051820/0240 →
Priority Claims (2)
DE 102018110042.6 · Apr 26, 2018 · national
DE 102019107520.3 · Mar 25, 2019 · national
Continuity (1)
Related Publication 20190331121A1 · Oct 31, 2019
Cited By (3)
US 12,305,646 US 12,500,468 US 12,729,686