COMPRESSOR MODULE
20220307500 · 2022-09-29
Inventors
- Toni Spies (Köln, DE)
- Philipp Kozalla (Frenchen, DE)
- Roman Heckt (Aachen, DE)
- Thomas Klotten (Köln, DE)
- Jörn Fröhling (Köln, DE)
- Torsten Gehm (Köln, DE)
- Stephan Köster (Langerwehe, DE)
- Felix Girmscheid (Köln, DE)
Cpc classification
F25B40/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2400/07
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2600/021
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60H1/3223
PERFORMING OPERATIONS; TRANSPORTING
F25B5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2400/071
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2309/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2700/21152
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2700/2115
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2700/1931
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2270/185
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/0215
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C29/047
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2700/21171
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C29/026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60H1/3227
PERFORMING OPERATIONS; TRANSPORTING
F25B31/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2270/195
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B49/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2400/054
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2700/2113
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C29/0092
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2240/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04C18/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C29/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B31/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A compressor module for a refrigerant circuit of a motor vehicle air-conditioning system, exhibiting a modular multi-part housing with a low-pressure refrigerant inlet, a high-pressure refrigerant outlet and a compressor, characterized in that an inner heat exchanger of the refrigerant circuit is produced such that it is integrated into the compressor module, wherein the housing of the compressor module fully encloses the inner heat exchanger.
Claims
1-28. (canceled)
29. A compressor module for a refrigerant circuit of a motor vehicle air-conditioning system, comprising: a modular multi-part housing with a low-pressure refrigerant inlet, a high-pressure refrigerant outlet; and a compressor wherein an inner heat exchanger of the refrigerant circuit is produced such that it is integrated into the compressor module, and wherein the housing of the compressor module fully encloses the inner heat exchanger.
30. The compressor module according to claim 29, wherein at least one refrigerant sensor is produced such that it is integrated into the housing of the compressor module.
31. The compressor module according to claim 29, wherein a refrigerant collector of the refrigerant circuit is produced such that it is integrated into the housing of the compressor module.
32. The compressor module according to claim 31, wherein another heat exchanger of the refrigerant circuit is produced such that it is integrated into the housing of the compressor module.
33. The compressor module according to claim 32, wherein the heat exchanger is produced as a chiller and that an expansion element, positioned upstream of the chiller, is produced such that it is integrated into the housing of the compressor module.
34. The compressor module according to claim 33, wherein the housing of the compressor module is produced from disc-type housing parts.
35. The compressor module according to claim 29, wherein the housing of the compressor module is produced from an inverter housing, a motor housing, a central housing, and a high-pressure housing, wherein a refrigerant is routed from the low-pressure refrigerant inlet, via the inverter housing, the motor housing, and the central housing to the high-pressure housing, and wherein the inner heat exchanger is arranged in the central housing.
36. The compressor module according to claim 31, wherein the housing of the compressor module is produced from a housing for the refrigerant collector, a housing for the inner heat exchanger, a motor housing, a central housing, and a high-pressure housing, wherein the refrigerant is routed from the low-pressure refrigerant inlet, via the refrigerant collector, the inner heat exchanger, the motor housing, and the central housing to the high-pressure housing and that the inner heat exchanger is arranged between the refrigerant collector and the motor housing.
37. The compressor module according to claim 33, wherein the housing of the compressor module is produced from a housing for the chiller and the expansion element, a housing for the refrigerant collector, a housing for the inner heat exchanger, a motor housing, a central housing and a high-pressure housing, wherein the refrigerant is routed from the low-pressure refrigerant inlet, via the expansion element, the chiller, the refrigerant collector, the inner heat exchanger, the motor housing, and the central housing to the high-pressure housing, and wherein the inner heat exchanger is arranged between the refrigerant collector and the motor housing.
38. The compressor module according to claim 29 wherein the housing of the compressor module is produced from an inverter housing, a motor housing, a housing for the inner heat exchanger, a central housing, and a high-pressure housing, wherein a refrigerant is routed from the low-pressure refrigerant inlet, via the motor housing and the central housing to the high-pressure housing, and wherein the inner heat exchanger is arranged in the central housing and between the motor housing and the high-pressure housing.
39. The compressor module according to claim 29, wherein the housing of the compressor module is produced from an inverter housing, a housing for the inner heat exchanger, a motor housing, a central housing, and a high-pressure housing, wherein a refrigerant is routed from the low-pressure refrigerant inlet, via the inverter housing, the housing for the inner heat exchanger, the motor housing, and the central housing to the high-pressure housing, and wherein the inner heat exchanger is arranged between the inverter housing and the motor housing.
40. The compressor module according to claim 29, wherein the housing of the compressor module is produced from an inverter housing, a motor housing, a central housing, and a high-pressure housing, wherein a refrigerant is routed from the low-pressure refrigerant inlet, via the inverter housing, the inner heat exchanger, the motor housing, and the central housing to the high-pressure housing or via the inverter housing, the motor housing, the inner heat exchanger, and the high-pressure housing or via the inverter housing and, in parallel, via the inner heat exchanger and the motor housing and subsequently via the central housing to the high-pressure housing, and wherein the inner heat exchanger is arranged in the motor housing and between the inverter housing and the central housing.
41. The compressor module according to claim 29, wherein the housing of the compressor module is produced from a housing for a refrigerant collector, a housing for the inner heat exchanger, a motor housing, a central housing, and a high-pressure housing, wherein a refrigerant is routed from the low-pressure refrigerant inlet, via the housing for the refrigerant collector, the housing for the inner heat exchanger, the motor housing, and the central housing to the high-pressure housing, and wherein the inner heat exchanger is arranged between the refrigerant collector and the motor housing.
42. The compressor module according to claim 29, wherein the housing of the compressor module is produced from a housing for a refrigerant collector, a housing for the inner heat exchanger, an inverter housing, a motor housing, a central housing, and a high-pressure housing, wherein a refrigerant is routed from the low-pressure refrigerant inlet, via the housing for the refrigerant collector, the housing for the inner heat exchanger, the inverter housing, the motor housing, and the central housing to the high-pressure housing and that the inner heat exchanger is arranged between the refrigerant collector and the inverter housing.
43. The compressor module according to claim 29, wherein the housing of the compressor module is produced from a housing for a refrigerant collector, a motor housing, a housing for the inner heat exchanger, a central housing, and a high-pressure housing, wherein a refrigerant is routed from the low-pressure refrigerant inlet, via the housing for the refrigerant collector, the motor housing, the inner heat exchanger, and the central housing to the high-pressure housing, and wherein the inner heat exchanger is arranged between the motor housing and the central housing.
44. The compressor module according to claim 29, wherein the housing of the compressor module is produced from a housing for a refrigerant collector, a motor housing, a central housing, and a high-pressure housing, wherein a refrigerant is routed from the low-pressure refrigerant inlet, via the refrigerant collector, the inner heat exchanger, the motor housing, and the central housing to the high-pressure housing or via the refrigerant collector, the motor housing, the inner heat exchanger, and the high-pressure housing or via the refrigerant collector and, in parallel, via the inner heat exchanger and the motor housing and subsequently via the central housing to the high-pressure housing, and wherein the inner heat exchanger is arranged in the motor housing and between the refrigerant collector and the central housing.
45. The compressor module according to claim 29, wherein the housing of the compressor module is produced from a housing for a chiller and an expansion element, a housing for a refrigerant collector, a housing for the inner heat exchanger, an inverter housing, a motor housing, a central housing, and a high-pressure housing, wherein the refrigerant is routed from the low-pressure refrigerant inlet, via the expansion element, the chiller, the refrigerant collector, the inner heat exchanger, the inverter housing, the motor housing, and the central housing to the high-pressure housing, and wherein the inner heat exchanger is arranged between the refrigerant collector and the inverter housing.
46. The compressor module according to claim 29, wherein the housing of the compressor module is produced from a housing for a chiller and an expansion element, a housing for a refrigerant collector, a motor housing, a housing for the inner heat exchanger, a central housing, and a high-pressure housing, wherein the refrigerant is routed from the low-pressure refrigerant inlet, via the expansion element, the chiller, the refrigerant collector, the motor housing, the inner heat exchanger, and the central housing to the high-pressure housing, and wherein the inner heat exchanger is arranged between the motor housing and the central housing.
47. The compressor module according to claim 29, wherein the housing of the compressor module is produced from a housing for a chiller and an expansion element, a housing for a refrigerant collector, a motor housing, a central housing, and a high-pressure housing, wherein a refrigerant is routed from the low-pressure refrigerant inlet, via the expansion element, the chiller, the refrigerant collector, the inner heat exchanger, the motor housing, and the central housing to the high-pressure housing or via the expansion element, the chiller, the refrigerant collector, the motor housing, the inner heat exchanger, and the high-pressure housing or via the expansion element, the chiller, the refrigerant collector, and, in parallel, via the inner heat exchanger and the motor housing and subsequently via the central housing to the high-pressure housing and that the inner heat exchanger is arranged in the motor housing and between the refrigerant collector and the central housing.
48. The compressor module according to claim 29, wherein the inner heat exchanger is produced as a cylindrical coiled tube that is arranged coaxially to a shaft of the compressor.
49. The compressor module according to claim 48, wherein the inner heat exchanger is housed partially by the motor housing and partially by a central housing in an axial direction and enclosed in a radial direction by the motor housing and by the central housing.
50. The compressor module according to claim 29, wherein the inner heat exchanger is arranged coaxially between an outer guide housing and an inner guide housing in a radial direction.
51. The compressor module according to claim 29, wherein a refrigerant collector is arranged in a central housing and a housing cover that limits one end of the housing axially, and wherein the refrigerant collector exhibits a liquid separator, a cup-shaped separating element, and a gas intake pipe for the inner heat exchanger to capture refrigerant liquid from a refrigerant gas stream.
52. The compressor module according to claim 29, wherein the inner heat exchanger is arranged coaxially between an inner guide housing and a cylindrical section of a housing cover in a radial direction, wherein a disc-type partition element is arranged in an axial direction as a limit towards a refrigerant collector.
53. The compressor module according to claim 29, wherein the inner heat exchanger is arranged coaxially between an outer guide housing and an inner guide housing in a radial direction, wherein the outer guide housing exhibits a disc-type partition element in an axial direction as a limit towards the refrigerant collector.
54. The compressor module according to claim 53, wherein the inner guide housing is produced in such a way that it can hold a filter material and exhibits a filter.
55. The compressor module according to claim 29, wherein the compressor is produced as an electric compressor.
56. The compressor module according to claim 29, wherein the compressor is produced as a scroll compressor.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0044] Further details, features and benefits of embodiments of the invention result from the following description of embodiment examples with reference to the accompanying drawings. These display the following:
[0045]
[0046]
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[0049]
[0050]
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DETAILED DESCRIPTION OF AN EMBODIMENT
[0064]
[0065]
[0066] According to the embodiment as per
[0067] In the embodiment shown as a scroll compressor, the operating elements of the compressor are produced as a fixed and orbiting scroll. In addition to this, refrigerant sensors 40 are integrated into the housing.
[0068] The high-pressure refrigerant outlet 43 is arranged radially on the high-pressure housing 27. The inner heat exchanger 1 is positioned in the central housing 22, and the refrigerant on the low-pressure side flows from the refrigerant inlet 42 at low pressure, via the inverter housing 23 as well as the electric motor in the motor housing 20, via the inner heat exchanger 1 of the central housing 22 to the high-pressure housing 27, where the refrigerant vapor is compressed, and then ultimately exits the compressor module 33 via the refrigerant outlet 43 at high pressure. The flow of refrigerant through the components listed takes place from the inlet to the outlet with these components connected in series and is marked by an arrow.
[0069]
[0070]
[0071]
[0072]
[0073] This in particular leads to reduced leakage and a less complex electrical circuit, meaning that no special sensor housings are required, which in turn significantly reduces costs. In addition to the compressor signals, signal transmission is also possible, as already described, via the corresponding networks already in place for compressor control. This results in improved inverter and electric motor efficiency thanks to the lower temperatures inside the compressor module 33 as a result of the suction gas cooling.
[0074] The flow of refrigerant starts with refrigerant at high pressure at the expansion element 39. The expanded, low-pressure refrigerant is then routed via the chiller 38 and via the refrigerant collector 15, the inner heat exchanger 1 and the electric motor in the motor housing 20 to the scroll compressor unit in the high-pressure housing 27 and then to the refrigerant outlet 43 at high pressure.
[0075]
[0076] In this embodiment, the refrigerant circuit can be used for a multi-evaporator system. The refrigerant flows in the direction of the arrow on the low-pressure side via the inverter in the inverter housing 23, the electric motor in the motor housing 20 and the inner heat exchanger 1 in the central housing 22 to the high-pressure housing 27 and to the outlet for the refrigerant.
[0077]
[0078]
[0079] Alternatively, the refrigerant on the low-pressure side can flow from the low-pressure refrigerant inlet 42, via the inverter in the inverter housing 23 to the inner heat exchanger 1 and then to the electric motor in the motor housing 20, via the central housing to the high-pressure housing 27. In another alternative, the refrigerant can flow at low pressure from the refrigerant inlet 42, at low pressure via the inverter in the inverter housing 23 and then in parallel via the inner heat exchanger 1 and the electric motor in the motor housing 20 to the high-pressure housing 27.
[0080]
[0081] On the low-pressure side, the refrigerant flows from the refrigerant collector 15, via the inner heat exchanger 1, the inverter housing 23, as well as the electric motor in the motor housing 20 and the central housing 22, to the high-pressure housing 27.
[0082]
[0083]
[0084]
[0085] The compressor module 33 from
[0086]
[0087] In one version, the inner heat exchanger 1 and then the electric motor in the motor housing 20 are flown through after the refrigerant collector 15, followed by the scroll compressor unit. In another alternative, the electric motor and the inner heat exchanger 1 are flown through in parallel, before the refrigerant is routed to the high-pressure housing 27 with the scroll compressor unit.
[0088]
[0089] On the path from the refrigerant inlet 42 to the refrigerant outlet 43, the refrigerant gas passes the coiled tube 13 with the refrigerant of the inner heat exchanger 1 at high pressure and absorbs heat from this.
[0090] The electronic components of the electrical refrigerant compressor, which is produced as a scroll compressor, are arranged in the inverter housing 23. The motor housing 20, into which the inverter housing 23 transitions, is positioned immediately downstream of the inverter housing 23 in the axial direction. The shaft 4a of the compressor is mounted in the motor bearings 4 in the motor housing 20.
[0091] The rotor 25 of the electric compressor's electric motor is arranged around the shaft 4a, while the stator 24 is coaxially spaced radially from this. In the motor housing 20, the shaft 4a is held in the motor bearing 4 at one end, while on the other side the main bearing 31 is arranged in the central housing 22. The shaft 4a moves the orbiting scroll 29, which is mounted in the bearing 30 of the orbiting scroll. The fixed scroll 28 is attached in the high-pressure housing 27. The central housing 22 is arranged between the motor housing 20 and the high-pressure housing 27. It houses the main bearing 31, the bearing 30 of the orbiting scroll and the counterweight 26. The flow path of the gaseous refrigerant runs from the refrigerant inlet 42 at low pressure, through the components of the motor to its cooling, over the coiled tube 13 of the inner heat exchanger 1 and is ultimately routed between the scrolls 28 and 29, where the compression of the refrigerant takes place. The compressed refrigerant then exits the housing 27, and thereby also the compressor module 33, at high pressure via the refrigerant outlet 43.
[0092]
[0093] The housing cover 18 and the central housing 19 enclose the section of the refrigerant collector 15 in which the liquid refrigerant is separated and collected from the refrigerant vapor stream at low pressure. A cup-shaped separating element 16 is produced in the refrigerant collector 15, into which the gas intake pipe 17 of the inner heat exchanger 1 projects. The liquid separator 14 outwardly spans the separating element 16 like a funnel, wherein the refrigerant vapor, potentially exhibiting refrigerant liquid in the form of droplets, is routed via the refrigerant inlet 42 at low pressure and the liquid separator 14 into the refrigerant collector 15. The refrigerant liquid that sticks then drips down at the walls of the liquid separator 14 and is collected on the base in the refrigerant collector 15. The refrigerant vapor is then routed via the gas intake pipe 17 into the inner heat exchanger 1 and flows over the coiled tube 13. The warm refrigerant that flows in the coiled tube 13 at high pressure is cooled by the cold refrigerant gas flowing over the coiled tube 13 in the inner heat exchanger 1. The high-pressure refrigerant flows from the inlet 8 into the inner heat exchanger 1 and, after passing over the coiled tube 13, exits the compressor module 33 at the outlet 7.
[0094] The coiled tube 13 is secured at the outlet 7 from the compressor module 33 with a seal 10, and a corresponding seal 9 is also provided at the inlet 8.
[0095] The inner heat exchanger 1 is formed and outwardly limited by an outer guide housing 2 and an inner guide housing 3, wherein the inner guide housing 3 in the shown embodiment is produced as a hollow cylinder in the axial direction and exhibits a base 32. The base 32, as the axial limitation, and the hollow cylindrical wall, as the radial limitation, together create a pot-shaped design for the inner guide housing 3.
[0096] The outer guide housing 2 is designed in a similar way with a hollow cylindrical wall and also has a base 44, which in turn results in a pot-shaped design. These two pot-shaped housings are arranged coaxially to the shaft 4a in the motor housing 20 and house the coiled tube 13 between the cylindrical walls that extend in the axial direction. The refrigerant gas, coming from the gas intake pipe 17, flows into the intermediate space between the pot-shaped outer guide housing 2 and the pot-shaped inner guide housing 3, and subsequently flows over the coiled tube 13 in the axial direction, thereby transferring heat, before the refrigerant vapor is then routed inside the inner guide housing 3. A filter material 21 is arranged here and potentially binds the moisture in the refrigerant vapor. The inner guide housing 3 is inserted into the outer guide housing 2 and the base 32 is in contact with the base 44. The two bases 32 and 44 of the outer guide housing 2 and the inner guide housing 3 are mechanically connected to one another with a screw 11. After flowing through the inner guide housing 3 of the inner heat exchanger 1, the refrigerant gas is routed via the suction pressure channel 6 to the compressor.
[0097] In the depiction shown as per
[0098] The system is supplemented by a filter 5, which is typically fitted in the refrigerant circuit as a 100% particulate filter. The filter 5 can be placed in multiple positions, for example between the inner heat exchanger 1 and the motor housing 20, in the compressor inlet section or other positions in which the refrigerant flows through the components in a limited installation space.
[0099]
[0100] The inner heat exchanger 1, on the other hand, is designed as a coiled tube 13 that is arranged between a cylindrical section of the housing cover 18 and an inner guide housing 3 of the inner heat exchanger 1. To limit the space for the filter material 21, a disc-shaped partition element 45 is produced as a limiting plate. This exhibits corresponding mounting fixtures for the inner guide housing 3. The base 32 of the inner guide housing 3 is fixed in place in the housing cover 18 with a screw 11. One special characteristic of this design lies in the fact that the coiled tube 13 is routed from the inner heat exchanger 18 in the radial direction to the housing cover for the inlet 8 and outlet 7. The ends of the coiled tube 13 are sealed using seals 9 and 10. The low-pressure refrigerant inlet 42 is also located on the housing cover 18. The suction pressure channel 6 routes the refrigerant gas to the compressor, which is only implied by the shaft 4a and the motor bearing 4. The base 44 is then reduced to simply being a bracket for the gas intake pipe 17.
[0101] A housing seal 12 is arranged between the housing cover 18 and the motor housing 20. A filter 5 supplements the system to protect the components from particulates.
[0102]
[0103] The inner heat exchanger 1 is designed with a cylindrical outer guide housing 2 with a base 44 and a cylindrical inner guide housing 3 with a base 32, as well as a coiled tube 13, arranged between the cylindrical sections, for the high-pressure refrigerant. In this embodiment, the base 32 of the pot-shaped inner guide housing 3 is arranged opposite the base 44 of the outer guide housing 2. The filter material is arranged in the intermediate space and shown schematically. A housing seal 12 is produced between the housing cover 18 and the motor housing 20. The suction pressure channel 6 to the compressor is designed similarly to the depiction shown in
[0104] However, a filter 5 is present to protect the components of the refrigerant circuit from particulates.
[0105] The present invention relates to a compressor module for a refrigerant circuit of a motor vehicle air-conditioning system. The compressor module implements an integrated design of various components and functionalities of a refrigerant circuit within a modular component.