IP Library › Granted Patent US 12,540,620
Granted Patent B2
US 12,540,620 · App. 18/509,892 · Granted Feb 3, 2026

Electric scroll compressor

Inventors: Abian Bautista Rodriguez (La Laguna, ES); David Ayza Parra (Banicassim, ES); Francisco Moya Torres (Valencia, ES); Justo Lapiedra Castano (Valencia, ES)
Assignee: MAHLE INTERNATIONAL GMBH
F04C23/008F04B35/04F04C18/0215F04C29/047F04C2240/403F04C2240/808
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Quick Facts
Patent No.
US 12,540,620
App. No.
18/509,892
Granted
Feb 3, 2026
Kind
B2
Abstract

An electric compressor includes a housing, refrigerant inlet port, a refrigerant outlet port, an inverter section, a motor section, a compression device and a front cover. The housing defines an intake volume and a discharge volume. The refrigerant inlet port is coupled to the housing and is configured to introduce the refrigerant to the intake volume. The compression device is a compression device configured to compress the refrigerant. The refrigerant outlet port is coupled to the housing and is configured to allow compressed refrigerant to exit the electric compressor from the discharge volume.

Claims (47)

1 . An electric compressor configured to compress a refrigerant, comprising:

a housing defining an intake volume and a discharge volume, the housing having a generally cylindrical shape and having a central axis, the housing including an inverter housing;

an inverter module mounted to the inverter housing and adapted to convert direct current electrical power to alternating current electrical power;

a motor mounted inside the housing;

a compression device, coupled to the motor, for receiving the refrigerant from the intake volume and compressing the refrigerant as the motor is rotated; and,

an inverter protective layer affixed to the inverter housing and enclosing the inverter module, wherein each component of the inverter module being enclosed within, and contacted by and surrounded by, the inverter protective layer, the inverter protective layer being formed using an overmolding process after the inverter module has been mounted to the inverter housing, the inverter protective layer forming, at least partly, an outer surface of the electric compressor.

2 . The electric compressor, as set forth in claim 1 , further including an embedded inverter liner fully enclosed, and affixed within, the inverter protective layer, the embedded inverter liner configured to provide electro-magnetic shielding.

3 . The electric compressor, as set forth in claim 2 , wherein the housing includes a center housing, the inverter housing being fastened to the center housing by a plurality of fasteners.

4 . The electric compressor, as set forth in claim 1 , wherein the inverter module includes an inverter circuit and a printed circuit board, the inverter circuit includes a power transistor mounted to the printed circuit board.

5 . The electric compressor, as set forth in claim 4 , wherein the power transistor is connected to the inverter housing, the inverter housing forming a heatsink for the power transistor.

6 . The electric compressor, as set forth in claim 5 , the inverter housing including at least one slot for receiving the power transistor.

7 . The electric compressor, as set forth in claim 1 , wherein the inverter module includes an inverter circuit and a printed circuit board, the inverter circuit includes a plurality of power transistors mounted to the printed circuit board.

8 . The electric compressor, as set forth in claim 7 , wherein the plurality of power transistors are connected to the inverter housing, the inverter housing forming a heatsink for the plurality of power transistors.

9 . The electric compressor, as set forth in claim 8 , the inverter housing including a plurality of slots, each slot configured to receive a respective one of the power transistors.

10 . The electric compressor, as set forth in claim 7 , the inverter housing including a first drive shaft supporting member, wherein the plurality of power transistors are positioned an equal distance from a center of the first drive shaft supporting member.

11 . The electric compressor, as set forth in claim 10 , wherein the plurality of power transistors are organized in three groups of power transistors of at least one power transistor, the groups of power transistors being spaced 120° about the center of the first drive shaft supporting member.

12 . An electric compressor configured to compress a refrigerant, comprising:

a housing defining an intake volume and a discharge volume, the housing having a generally cylindrical shape and having a central axis, the housing including an inverter housing;

a refrigerant inlet port coupled to the housing and configured to introduce the refrigerant to the intake volume;

a refrigerant outlet port coupled to the housing and configured to allow compressed refrigerant to exit the electric compressor from the discharge volume;

an inverter module mounted to the inverter housing and adapted to convert direct current electrical power to alternating current electrical power;

a motor mounted inside the housing;

a drive shaft coupled to the motor;

a compression device coupled to the drive shaft, for receiving the refrigerant from the intake volume and compressing the refrigerant as the drive shaft is rotated by the motor; and,

an inverter protective layer affixed to the inverter housing and enclosing the inverter module, wherein each component of the inverter module being enclosed within, and contacted by and surrounded by, the inverter protective layer, the inverter protective layer being formed using an overmolding process after the inverter module has been mounted to the inverter housing, the inverter protective layer forming, at least partly, an outer surface of the electric compressor.

13 . The electric compressor, as set forth in claim 12 , further including an embedded inverter liner fully enclosed, and affixed within, the inverter protective layer, the embedded inverter liner configured to provide electro-magnetic shielding.

14 . The electric compressor, as set forth in claim 13 , wherein the housing includes a center housing, the inverter housing being fastened to the center housing by a plurality of fasteners.

15 . The electric compressor, as set forth in claim 12 , wherein the inverter module includes an inverter circuit and a printed circuit board, the inverter circuit includes a power transistor mounted to the printed circuit board.

16 . The electric compressor, as set forth in claim 15 , wherein the power transistor is connected to the inverter housing, the inverter housing forming a heatsink for the power transistor.

17 . The electric compressor, as set forth in claim 16 , the inverter housing including at least one slot for receiving the power transistor.

18 . The electric compressor, as set forth in claim 12 , wherein the inverter module includes an inverter circuit and a printed circuit board, the inverter circuit includes a plurality of power transistors mounted to the printed circuit board.

19 . The electric compressor, as set forth in claim 18 , wherein the plurality of power transistors are connected to the inverter housing, the inverter housing forming a heatsink for the plurality of power transistors.

20 . The electric compressor, as set forth in claim 19 , the inverter housing including a plurality of slots, each slot configured to receive a respective one of the power transistors.

21 . The electric compressor, as set forth in claim 18 , the inverter housing including a first drive shaft supporting member, wherein the plurality of power transistors are positioned an equal distance from a center of the first drive shaft supporting member.

22 . The electric compressor, as set forth in claim 10 , wherein the plurality of power transistors are organized in three groups of power transistors of at least one power transistor, the groups of power transistors being spaced 120° about the center of the first drive shaft supporting member.

23 . An electric compressor configured to compress a refrigerant, comprising:

a housing defining an intake volume and a discharge volume, the housing having a generally cylindrical shape and having a central axis, the housing including a center housing and an inverter housing;

an inverter module mounted to the inverter housing and adapted to convert direct current electrical power to alternating current electrical power, the inverter module including an inverter circuit and a printed circuit board, the inverter circuit including a plurality of power transistors mounted to the printed circuit board, the plurality of power transistors being connected to the inverter housing, the inverter housing including a plurality of slots, each slot configured to receive a respective one of the power transistor, the inverter housing forming a heatsink for the plurality of power transistors;

a motor mounted inside the housing;

a compression device, coupled to the motor, for receiving the refrigerant from the intake volume and compressing the refrigerant as the motor is rotated; and, an inverter protective layer affixed to the inverter housing and enclosing the inverter module therein, wherein each component of the inverter module being enclosed within, and contacted by and surrounded by, the inverter protective layer, the inverter protective layer being formed using an overmolding process after the inverter module has been mounted to the inverter housing, the inverter protective layer forming, at least partly, an outer surface of the electric compressor.

24 . The electric compressor, as set forth in claim 23 , the inverter housing including a first drive shaft supporting member, wherein the plurality of power transistors are positioned an equal distance from a center of the first drive shaft supporting member.

25 . The electric compressor, as set forth in claim 23 , wherein the plurality of power transistors are organized in three groups of power transistors of at least one power transistor, the groups of power transistors being spaced 120° about the center of the first drive shaft supporting member.

26 . A method associated with an electric compressor configured to compress a refrigerant, the electric compressor including a housing, a motor, and a compression device, the housing defining an intake volume and a discharge volume, the housing having a generally cylindrical shape and having a central axis, the housing including an inverter housing, the inverter module adapted to convert direct current electrical power to alternating current electrical power, the motor being mounted inside the housing, the compression device being coupled to the motor for receiving the refrigerant from the intake volume and compressing the refrigerant as the motor is rotated, the method including the steps of:

assembling the invertor module;

mounting the inverter module to the inverter housing to form an inverter assembly;

forming an inverter protective layer around the inverter assembly, wherein each component of the inverter module being enclosed within, and contacted by and surrounded by, the inverter protective layer being formed using an overmolding process after the inverter module has been mounted to the inverter housing, the inverter protective layer forming, at least partly, an outer surface of the electric compressor.

27 . The method, as set forth in claim 26 , wherein the step of forming the inverter protective layer, including the step of placing the inverter assembly within a mold, wherein the inverter protective layer is formed using an overmolding process.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 15, 2023
From: BAUTISTA RODRIGUEZ, ABIAN; MOYA TORRES, FRANCISCO; AYZA PARRA, DAVID; LAPIEDRA CASTANO, JUSTO
To: MAHLE INTERNATIONAL GMBH
Reel/Frame 065572/0520 →
Continuity (1)
Related Publication 20250154942A1 · May 15, 2025
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