Electric compressor

By arranging power switching elements with insulating sheets and convex or recessed surfaces, the electric compressor addresses the challenge of handling higher voltages without enlarging, ensuring compactness and ease of installation.

JP2026055502APending Publication Date: 2026-03-31SANDEN CORP
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-09-18
Publication Date
2026-03-31

AI Technical Summary

Technical Problem

Conventional inverter-integrated electric compressors face challenges in handling higher voltages without increasing their size, leading to space constraints in vehicle engine rooms.

Method used

The electric compressor design includes power switching elements arranged on a heat dissipation surface with insulating sheets, featuring convex or recessed portions that increase the creepage distance between elements, allowing for higher voltages without enlarging the compressor.

Benefits of technology

This configuration enables the electric compressor to handle higher voltages without increasing its size, maintaining compactness and facilitating easier installation in vehicle engine rooms.

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Abstract

To provide an electric compressor that can handle higher voltages without increasing its size. [Solution] The electric compressor 1 includes an electric motor 2, a rotating shaft 3 that rotates with respect to the electric motor 2, a compression mechanism 4 driven by the rotating shaft 3, an inverter 6 that drives the electric motor 2, a housing 5 that houses the electric motor 2, the rotating shaft 3, and the compression mechanism 4, and an inverter housing 7 that is integrally provided with the housing 5 and houses the inverter 6. The inverter 6 includes a plurality of power switching elements 21 arranged in a line on a flat heat dissipation surface 7a provided inside the inverter housing 7, with an insulating sheet 11 interposed between them. Furthermore, at least a portion of the heat dissipation surface 7a located between the plurality of power switching elements 21 is formed as a convex portion 7b that extends in a direction perpendicular to the arrangement direction of the plurality of power switching elements 21.
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Description

Technical Field

[0001] The present invention relates to an inverter-integrated electric compressor.

Background Art

[0002] An inverter-integrated electric compressor has a bridge circuit composed of a plurality of power switching elements such as IGBTs (Insulated Gate Bipolar Transistors) that drive an electric motor. As described in Japanese Patent Application Laid-Open No. 2011-82344 (Patent Document 1), the plurality of power switching elements constituting the bridge circuit are arranged side by side on a flat heat dissipation surface provided inside the housing with an insulating sheet interposed therebetween. Here, a part of a die pad to which a semiconductor chip (die) is fixed is exposed on the back surface of the power switching element that contacts the insulating sheet, and is configured to dissipate the heat generated by the semiconductor chip.

Prior Art Documents

Patent Documents

[0003]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0004] By the way, when increasing the voltage to improve the efficiency of the electric compressor, it is necessary to increase the creepage distance between the die pads exposed on the back surfaces of two adjacent power switching elements arranged adjacent to each other. In the conventional configuration in which a plurality of power switching elements are arranged side by side on a flat heat dissipation surface, the distance between the power switching elements must be increased with the increase in voltage, and the electric compressor also becomes larger as the inverter becomes larger. When the electric compressor becomes larger, it may become difficult to mount the electric compressor in the engine room of the vehicle due to space problems.

[0005] Therefore, the present invention aims to provide an electric compressor that can handle high voltage without increasing its size. [Means for solving the problem]

[0006] The electric compressor comprises an electric motor, a rotating shaft rotated by the electric motor, a compression mechanism driven by the rotating shaft, an inverter that drives the electric motor, a housing that houses the electric motor, the rotating shaft, and the compression mechanism, and an inverter housing integrated with the housing that houses the inverter. The inverter includes a plurality of power switching elements arranged in a line on a flat heat dissipation surface provided inside the inverter housing, with insulating sheets interposed between them. Furthermore, at least a portion of the heat dissipation surface located between the plurality of power switching elements is formed as a convex portion extending in a direction perpendicular to the arrangement direction of the plurality of power switching elements. [Effects of the Invention]

[0007] According to the present invention, an electric compressor can handle higher voltages without increasing its size. [Brief explanation of the drawing]

[0008] [Figure 1] This is a longitudinal cross-sectional view showing an example of an inverter-integrated electric compressor. [Figure 2] This is a perspective view showing the main parts of a first embodiment of an electric compressor that increases the creepage distance between power switching elements. [Figure 3] This is a cross-sectional view showing the main part of a first embodiment of an electric compressor that increases the creepage distance between power switching elements. [Figure 4] This diagram explains why the creepage distance increases in the first embodiment. [Figure 5] This is a cross-sectional view of a main part showing a modified example of the first embodiment. [Figure 6] This is a perspective view showing the main parts of a second embodiment of an electric compressor that increases the creepage distance between power switching elements. [Figure 7]This is a cross-sectional view showing the main part of a second embodiment of an electric compressor that increases the creepage distance between power switching elements. [Figure 8] This diagram explains why the creepage distance increases in the second embodiment. [Figure 9] This is a cross-sectional view showing an example of the arrangement of the recess and insulating sheet in the second embodiment. [Figure 10] This is a cross-sectional view showing another arrangement example of the recess and insulating sheet in the second embodiment. [Modes for carrying out the invention]

[0009] The embodiments for carrying out the present invention will be described in detail below with reference to the attached drawings. The embodiments described below are merely examples and should not be interpreted as being limited to those configurations.

[0010] Figure 1 shows an example of an inverter-integrated electric compressor 1 to which the present invention can be applied. The electric compressor 1 is incorporated, for example, into the refrigerant circuit (not shown) of an air conditioning system mounted on a vehicle, and is configured to compress and discharge the refrigerant.

[0011] The electric compressor 1 includes an electric motor 2, a rotating shaft 3 that rotates with respect to the electric motor 2, a compression mechanism 4 driven by the rotating shaft 3, a housing 5, an inverter 6 that drives the electric motor 2, an inverter housing 7, and a cover member 8.

[0012] The electric motor 2 is, for example, a three-phase brushless motor such as a brushless DC motor, and is driven by power supplied from the inverter 6. The rotating shaft 3 is rotatably supported in the housing 5 by bearings (not shown) and is rotated by the electric motor 2. The compression mechanism 4 can be a well-known compression mechanism such as a reciprocating compression mechanism, a swash plate compression mechanism, a screw type compression mechanism, a scroll type compression mechanism, or a slide vane type compression mechanism. The housing 5 has a cylindrical cross-section and houses the electric motor 2, the rotating shaft 3, and the compression mechanism 4. The electric motor 2, the rotating shaft 3, and the compression mechanism 4 are arranged concentrically inside the housing 5.

[0013] The inverter 6 includes an inverter circuit section 20 for driving the electric motor 2 and a well-known noise filter circuit section 30 for reducing electromagnetic noise. The inverter housing section 7 is provided integrally with the housing 5 and houses the inverter 6 inside. Specifically, the inverter housing section 7 is provided on the electric motor 2 side of the housing 5. The inverter housing section 7 has a larger projected area than the housing 5. The inverter housing section 7 is formed by a bottom wall 71 and a peripheral wall 73 rising from the periphery of the bottom wall 71, and has an opening 75 facing the bottom wall 71. With the inverter circuit section 20 and the noise filter circuit section 30 constituting the inverter 6 housed in the inverter housing section 7, the opening 75 of the inverter housing section 7 is closed by a cover member 8. The cover member 8 is fixed to the peripheral wall 73 of the inverter housing section 7 (which is also part of the housing 5) by bolts (not shown), with a well-known sealing member interposed between them.

[0014] An HV connector (high-voltage connector) 9 is attached to the bottom wall 71 of the inverter housing 7 for supplying DC power from an onboard battery (not shown) to the inverter circuit section 20 of the inverter 6. In addition, a portion of the bottom wall 71 of the inverter housing 7 forms a partition wall 77 that separates the inside of the housing 5 from the inside of the inverter housing 7.

[0015] The housing 5 is formed with an inlet 5a for allowing the refrigerant to flow into the interior of the housing 5 and an outlet 5b for allowing the refrigerant to flow out of the housing 5. The inlet 5a is configured to allow the refrigerant to flow between the partition wall 77 inside the housing 5 and the electric motor 2. The refrigerant flowing into the interior of the housing 5 from the inlet 5a passes through the electric motor 2 and reaches the compression mechanism 4, where it is compressed by the compression mechanism 4. Then, the refrigerant compressed by the compression mechanism 4 flows out to the outside through the outlet 5b.

[0016] The refrigerant flowing into the interior of the housing 5 from the inlet 5a is low-temperature gaseous refrigerant that has passed through the expansion valve and the evaporator in the refrigerant circuit of the air-conditioning equipment mounted on the vehicle. Therefore, the partition wall 77 and the electric motor 2 can be cooled by the refrigerant flowing into the interior of the housing 5 from the inlet 5a.

[0017] The inverter circuit section 20 of the inverter 6 converts the DC power supplied from the in-vehicle battery via the HV connector 9 into three-phase AC power, and is configured to supply the three-phase AC power to the stator coil 2a of the electric motor 2 via the power supply line 10 extending through the partition wall 77. For this reason, the inverter circuit section 20 has six power switching elements 21 and an inverter control board 25 on which a control circuit 23 for controlling the six power switching elements 21 is mounted.

[0018] The six power switching elements 21 can be divided into three upper-stage power switching elements 21a connected to the positive electrode of the in-vehicle battery and three lower-stage power switching elements 21b connected to the negative electrode of the in-vehicle battery. The three upper-stage power switching elements 21a turn ON or OFF according to the drive signal from the control circuit 23 mounted on the inverter control board 25, and control the energization from the in-vehicle battery to the U-phase coil, V-phase coil, and W-phase coil of the electric motor 2. Also, the three lower-stage power switching elements 21b turn ON or OFF according to the drive signal from the control circuit 23 mounted on the inverter control board 25, and control the energization from the U-phase coil, V-phase coil, and W-phase coil of the electric motor 2 to the in-vehicle battery. Here, as shown in FIG. 2, the three upper-stage power switching elements 21a and the three lower-stage power switching elements 21b are arranged in parallel with a predetermined interval therebetween. In the following description, when there is no need to distinguish between the upper-stage power switching elements 21a and the lower-stage power switching elements 21b, they will simply be referred to as power switching elements 21.

[0019] The three upper-stage power switching elements 21a and the three lower-stage power switching elements 21b are arranged in parallel with a predetermined interval therebetween, with an insulating sheet 11 interposed between them and facing the flat heat dissipation surface 7a formed on the surface of the partition wall 77 facing the inverter housing portion 7. Here, each power switching element 21 is arranged such that the die pad DP (details will be described later) exposed on its back surface directly contacts the insulating sheet 11. Also, the three upper-stage power switching elements 21a and the three lower-stage power switching elements 21b are each fixed in a state of being pressed against the insulating sheet 11 by an arm member 12. The arm member 12 is fixed to an arm mounting portion 14 provided inside the inverter housing portion 7 by a bolt 13.

[0020] The inverter control board 25 has multiple mounting holes formed on its surface and is fixed to multiple board mounting sections 15 (see Figure 2) provided inside the inverter housing 7 by multiple bolts (not shown). The inverter control board 25 is positioned near the cover member 8, that is, spaced apart from the six power switching elements 21. Therefore, each of the six power switching elements 21 has multiple pins extending toward the inverter control board 25, or more precisely, multiple pins extending through the inverter control board 25. These pins are soldered to the inverter control board 25, thereby electrically connecting the six power switching elements 21 and the inverter control board 25.

[0021] The noise filter circuit 30 is positioned between the inverter circuit 20 and the HV connector 9. The noise filter circuit 30 is fixed to a filter mounting section 17 located inside the inverter housing 7 by multiple bolts 16 (only one is shown in Figure 1). The upper surface of the noise filter circuit 30 is in contact with the inner surface of the cover member 8 via a heat dissipation sheet 18, and the lower surface is in contact with the bottom surface of the inverter housing 7 via a heat dissipation sheet 19. As a result, the amount of heat transferred from the noise filter circuit 30 to the cover member 8 and the inverter housing 7 increases, ensuring proper cooling.

[0022] By the way, if the DC power supplied to the inverter circuit section 20 of the inverter 6 via the HV connector 9 is increased in voltage for the purpose of improving the efficiency of the electric compressor 1, it becomes necessary to increase the creepage distance between the die pads DP exposed on the back surface of two adjacent power switching elements 21. In this case, if the power switching elements 21 are arranged side by side on the flat heat dissipation surface 7a provided in the inverter housing section 7, the spacing between adjacent power switching elements 21 must be increased, and the electric compressor 1 will also become larger as the inverter 6 becomes larger. Therefore, in this embodiment, by adopting the configuration described below, the electric compressor 1 can be made to accommodate higher voltage without increasing its size.

[0023] <First Embodiment> Figures 2 and 3 show a first embodiment of the electric compressor 1 that can handle higher voltages without increasing its size. The following description assumes the general electric compressor 1 described above, and mainly describes features that differ from it (the same applies hereafter).

[0024] In the inverter 6, as described above, a plurality of power switching elements 21 (six power switching elements 21 in this embodiment) are arranged in a row on a flat heat dissipation surface 7a provided inside the inverter housing 7, with an insulating sheet 11 interposed between them. Each power switching element 21 has a roughly rectangular parallelepiped shape, and a plurality of pins are provided on one side in the longitudinal direction (the same applies hereinafter). In addition, a portion of the die pad DP is exposed on the back surface (i.e., the side facing the insulating sheet 11) of each power switching element 21, and the front surface (back surface) of the die pad DP is in contact with the insulating sheet 11.

[0025] Furthermore, at least a portion of the heat dissipation surface 7a located between the multiple power switching elements 21 is formed as a convex portion 7b extending in a direction perpendicular to the arrangement direction of the multiple power switching elements 21. That is, at least a portion of the heat dissipation surface 7a located between two adjacent power switching elements 21 is formed as a convex portion 7b extending in the arrangement direction of the upper power switching element 21a and the lower power switching element 21b. It is desirable that the convex portion 7b is formed over a range that faces at least the side surface of the power switching element 21 in its extending direction. The height of the convex portion 7b can be appropriately determined, for example, according to the DC voltage supplied to the inverter circuit section 20 of the inverter 6. Furthermore, the cross-sectional shape of the convex portion 7b is not limited to a substantially rectangular shape with chamfered corners as shown in Figures 2 and 3, but can be any shape such as a triangular shape, a semicircular shape, or a semielliptical shape.

[0026] In this electric compressor 1, at least a portion of the heat dissipation surface 7a located between two adjacent power switching elements 21 is formed as a protrusion 7b extending in a direction perpendicular to the arrangement direction of the power switching elements 21. Therefore, as shown in Figure 4, the insulating sheet 11 placed on the heat dissipation surface 7a is also lifted upward (away from the heat dissipation surface 7a) by the protrusion 7b. Consequently, the creepage distance A between the die pads DP of the two adjacent power switching elements 21 is increased by bypassing the protrusion 7b, as shown in the figure, compared to an electric compressor 1 without the protrusion 7b. Since the creepage distance A is increased without changing the arrangement distance between the two adjacent power switching elements 21, it is possible to handle higher voltages without increasing the size of the electric compressor 1.

[0027] Here, it is desirable that the insulating sheet 11 adheres closely to the entire outer surface of the protrusion 7b. In this way, the creepage distance A can be maximized compared to a configuration in which there is a gap between the insulating sheet 11 and the heat dissipation surface 7a and its protrusion 7b.

[0028] Furthermore, since the protrusion 7b is formed over an area that faces at least the sides of two adjacent power switching elements 21, it does not affect the insulation performance between the die pads DP of adjacent power switching elements 21.

[0029] Furthermore, the protrusion 7b may be configured to contact at least a portion of the side surface of the power switching element 21, as shown in Figure 5. In the illustrated example, the entire heat dissipation surface 7a located between two substantially rectangular power switching elements 21 is formed on the protrusion 7b, and both sides of the protrusion 7b are in contact with the side surfaces of the power switching elements 21. However, the protrusion 7b may be configured so that only one side of the protrusion 7b is in contact with the side surface of the power switching element 21. In this way, the heat generated by the power switching element 21 is transferred from its side surface to the heat dissipation surface 7a via the insulating sheet 11, thereby improving the heat dissipation performance of the power switching element 21. Also, because the side surface of the power switching element 21 is in contact with the protrusion 7b, the positioning of the power switching element 21 relative to the inverter housing 7 can be performed.

[0030] <Second Embodiment> Figures 6 and 7 show a second embodiment of the electric compressor 1 that can handle higher voltages without increasing its size.

[0031] In the inverter 6, similar to the first embodiment, a plurality of power switching elements 21 are arranged in a row on a flat heat dissipation surface 7a provided inside the inverter housing 7, with an insulating sheet 11 interposed between them. Furthermore, a portion of the die pad DP is exposed on the back surface of each power switching element 21, and the surface of the die pad DP is in contact with the insulating sheet 11.

[0032] Furthermore, at least a portion of the heat dissipation surface 7a located between the multiple power switching elements 21 is formed as a recess 7c having a V-shaped cross-section that extends in a direction perpendicular to the arrangement direction of the multiple power switching elements 21. That is, at least a portion of the heat dissipation surface 7a located between two adjacent power switching elements 21 is formed as a recess 7c that extends in the arrangement direction of the upper power switching element 21a and the lower power switching element 21b. It is desirable that the recess 7c is formed over a range that at least faces the side surface of the power switching element 21 in its extending direction. In addition, the cross-sectional shape (width and depth) of the recess 7c can be appropriately determined, for example, according to the DC voltage supplied to the inverter circuit section 20 of the inverter 6.

[0033] In this electric compressor 1, at least a portion of the heat dissipation surface 7a located between two adjacent power switching elements 21 is formed as a recess 7c extending in a direction perpendicular to the arrangement direction of the power switching elements 21. As a result, as shown in Figure 8, a portion of the insulating sheet 11 placed on the heat dissipation surface 7a fits into the recess 7c. Consequently, the creepage distance B between the die pads DP of the two adjacent power switching elements 21 is larger than that of an electric compressor 1 without a recess 7c, by bypassing the surface of the insulating sheet 11, of which at least a portion fits into the recess 7c, as shown in the figure. Since the creepage distance B is increased without changing the spacing between the two adjacent power switching elements 21, it is possible to handle higher voltages without increasing the size of the electric compressor 1.

[0034] The cross-sectional shape of the recess 7c is not limited to the V-shape shown in Figures 6 and 7, but can be any shape such as a rectangle, trapezoid, U-shape, semicircle, or semi-ellipse. When the recess 7c has a rectangular cross-sectional shape, it is desirable that the insulating sheet 11 adheres tightly to the entire inner surface of the recess 7c, as shown in Figure 9. However, as shown in Figure 10, the insulating sheet 11 may not adhere tightly to the entire inner surface of the recess 7c, and a part of it may be fitted into the recess 7c.

[0035] Here, if the insulating sheet 11 is in close contact with the entire inner surface of the rectangular recess 7c, the creepage distance B can be maximized compared to a configuration in which there is a gap between the insulating sheet 11 and the inner surface of the recess 7c. The same applies when the recess 7c has a different cross-sectional shape.

[0036] Furthermore, since the recess 7c is formed over an area that faces at least the sides of two adjacent power switching elements 21, it does not affect the insulation performance between the die pads DP of adjacent power switching elements 21.

[0037] Furthermore, those skilled in the art will readily understand that, provided that there are no technical inconsistencies, new embodiments can be created by omitting parts of the various embodiments described above, combining parts of them, or replacing parts of them with well-known technologies. Therefore, it should be noted that embodiments created in this way are included within the scope of the present invention. [Explanation of Symbols]

[0038] 1...Electric compressor, 2...Electric motor, 3...Rotating shaft, 4...Compression mechanism, 5...Housing, 6...Inverter, 7...Inverter housing, 7a...Heat dissipation surface, 7b...Protrusion, 11...Insulating sheet, 21...Power switching element

Claims

1. An electric compressor comprising: an electric motor; a rotating shaft that rotates by the electric motor; a compression mechanism driven by the rotating shaft; an inverter that drives the electric motor; a housing that houses the electric motor, the rotating shaft, and the compression mechanism; and an inverter housing section integrally provided with the housing and housing the inverter, The inverter includes a plurality of power switching elements arranged side by side on a flat heat dissipation surface provided inside the inverter housing, with an insulating sheet interposed between them. At least a portion of the heat dissipation surface located between the plurality of power switching elements is formed on a protrusion extending in a direction perpendicular to the arrangement direction of the plurality of power switching elements. Electric compressor.

2. The protrusion contacts at least a portion of the side surface of the power switching element. The electric compressor according to claim 1.

3. The protrusion is formed over an area that faces at least the side surface of the power switching element. The electric compressor according to claim 1.

4. The insulating sheet adheres closely to the entire outer surface of the protrusion. The electric compressor according to claim 1.

Citation Information

Patent Citations

  • Method for locking electronic component and electronic apparatus

    JP2011082344A