Electric compressor
By mold-sealing electronic components with thermosetting resin and using a vibration-damping member, the electric compressor addresses vibration resistance and noise issues while preserving component mounting area.
Patent Information
- Application Number
- JP2022025419
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-02-22
- Publication Date
- 2025-09-24
- Estimated Expiration
- 2042-02-22
AI Technical Summary
Existing electric compressors face challenges in ensuring vibration resistance of the inverter circuit board while maintaining a sufficient mounting area for electronic components and reducing noise caused by cover member vibration, particularly due to increased EMC measures that decrease the rigidity of the cover member and separation of fastening points.
The solution involves mold-sealing certain electronic components with a thermosetting insulating resin and fixing them on the circuit board, and using a vibration-damping member between these components and the cover member to reduce vibrations and noise.
This approach ensures vibration resistance of the inverter circuit board, maintains the mounting area for electronic components, and effectively reduces noise caused by cover member vibrations.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to an electric compressor having an integrated inverter. [Background technology]
[0002] Many electric compressors used to compress refrigerant in vehicle air conditioners have an integrated inverter that converts DC power from an on-board battery or the like into AC power and controls the power supply to the electric motor that drives the compression mechanism. This type of electric compressor includes a housing that houses the electric motor and the compression mechanism, and an inverter accommodating section that is integral with the housing and houses the inverter. The inverter accommodating section also includes an accommodating section main body having an opening and a cover member that closes the opening of the accommodating section main body, and the cover member is configured so that its peripheral edge is fastened to the accommodating section main body with bolts or the like.
[0003] Here, vibrations generated by the compression mechanism or the like are transmitted to the cover member via the housing and the accommodating unit main body, causing the cover member to vibrate and generate noise. In this regard, Patent Document 1 describes that vibration of the cover member can be suppressed and noise caused by the vibration of the cover member can be reduced by arranging a vibration-damping member between the heads of the bolts that secure the circuit board that constitutes the inverter and the cover member. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Japanese Patent Publication No. 2020-56376 Summary of the Invention [Problem to be solved by the invention]
[0005] With the recent trend toward electrification of automobiles, there is a greater demand than ever for lightweight, quieter, and more electromagnetically compatible (EMC) electric compressors. In particular, EMC measures have led to larger inverter noise filters and increased volume in the inverter housing. This has resulted in a relative decrease in the rigidity of the cover member and separation of the fastening points (fixing points) between the cover member and the housing body, making the cover member more susceptible to vibration. Conventional technologies may not be able to adequately reduce noise caused by cover member vibration.
[0006] In response to this, it is possible to increase the rigidity of the cover member by increasing the number of fastening points (fixing points) toward the center of the cover member. However, since an inverter includes a circuit board on which various electronic components such as noise filters are mounted, increasing the number of fastening points (fixing points) toward the center of the cover member reduces the mounting area of the electronic components on the circuit board, which is undesirable because it places restrictions on mounting the electronic components on the circuit board.
[0007] Furthermore, some of the electronic components mounted on the inverter circuit board may need to be reinforced (vibration-resistant reinforcement) to ensure the circuit board's vibration resistance.
[0008] Therefore, an object of the present invention is to provide an electric compressor that can ensure the vibration resistance of the inverter circuit board, suppress a reduction in the mounting area of electronic components on the inverter circuit board, and reduce noise caused by vibration of the cover member of the inverter accommodating section. [Means for solving the problem]
[0009] According to one aspect of the present invention, there is provided an electric compressor including: a housing that accommodates an electric motor and a compression mechanism driven by the electric motor; an inverter that drives the electric motor, the inverter including a circuit board on which electronic components are mounted; an inverter accommodating section that accommodates the inverter, the inverter accommodating section including a accommodating section main body having an opening, a board fixing section that protrudes from an inner bottom surface of the accommodating section main body facing the opening and to which the circuit board is fixed, and a cover member that closes the opening of the accommodating section main body; and a vibration-damping member that suppresses vibration of the cover member. Predetermined electronic components among the electronic components are mold-sealed with a thermosetting insulating resin and fixedly disposed on a surface of the circuit board facing the cover member, and the vibration-damping member is disposed between the mold-sealed predetermined electronic components and the cover member. [Effects of the Invention]
[0010] According to the present invention, it is possible to provide an electric compressor that can ensure the vibration resistance of the inverter circuit board, suppress a reduction in the mounting area of electronic components on the inverter circuit board, and reduce noise caused by vibration of the cover member of the inverter accommodating section. [Brief explanation of the drawings]
[0011] [Figure 1] 1 is a schematic vertical cross-sectional view of an electric compressor according to a first embodiment. [Figure 2] 2 is a view of the electric compressor according to the first embodiment with the cover member for the inverter accommodating portion removed, as viewed from the inverter accommodating portion side. FIG. [Figure 3] 2 is a diagram illustrating an example of a circuit configuration of an inverter of the electric compressor according to the first embodiment. FIG. [Figure 4] FIG. 1 is a diagram illustrating the inside of an inverter accommodating section. [Figure 5] FIG. 2 is a diagram illustrating a power switching element. [Figure 6] FIG. 2 is a diagram showing a switching element module. [Figure 7]10 is a diagram showing an installation state of a switching element module (power switching element) in an inverter accommodating section. FIG. [Figure 8] FIG. 2 is a diagram showing a circuit board of an inverter. [Figure 9] FIG. 2 is a diagram showing a circuit board of an inverter. [Figure 10] FIG. 2 is a diagram showing a circuit board of an inverter. [Figure 11] FIG. 10 is a diagram showing a state in which the circuit board of the inverter is placed on the board fixing portion; [Figure 12] 3 is a diagram showing an inverter accommodating section (accommodating section main body, cover member), vibration-isolating members, and an inverter circuit board. FIG. [Figure 13] FIG. 6 is a schematic vertical cross-sectional view of an electric compressor according to a second embodiment. [Figure 14] FIG. 10 is a schematic vertical cross-sectional view of an electric compressor according to a third embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0012] Hereinafter, an embodiment of the present invention will be described with reference to the accompanying drawings.
[0013] [First embodiment] 1 is a schematic longitudinal sectional view of an electric compressor 1 according to a first embodiment. The electric compressor 1 according to the embodiment is a so-called inverter-integrated electric compressor that has an integrated inverter. The electric compressor 1 may be mounted on a vehicle, for example, to form part of a refrigerant circuit of a vehicle air conditioner, and configured to compress and discharge refrigerant.
[0014] Referring to FIG. 1, the electric compressor 1 includes an electric motor 2, a compression mechanism 3 driven by the electric motor to compress a refrigerant, a housing 4 that accommodates the electric motor 2 and the compression mechanism 3, an inverter 5 that drives the electric motor 2, and an inverter accommodating section 6 that accommodates the inverter 5.
[0015] The electric motor 2 is, for example, a three-phase synchronous motor (brushless DC motor). The compression mechanism 3 is, for example, a scroll compression mechanism. The electric motor 2 and the compression mechanism 3 are arranged in series in the axial direction of the output shaft 2a of the electric motor 2 inside a housing 4. The output shaft 2a of the electric motor 2 is connected to the compression mechanism 3 (the orbiting scroll in the case of a scroll compression mechanism).
[0016] The inverter 5 includes various electronic components (described later) and a circuit board 7 on which the various electronic components are mounted. In other words, in this embodiment, the inverter 5 is configured by mounting the various electronic components on the circuit board 7.
[0017] The inverter accommodating portion 6 is provided integrally with the housing 4. The inverter accommodating portion 6 is disposed on one end side of the housing 4 in the axial direction, specifically, on the opposite side of the electric motor 2 from the compression mechanism 3. In this embodiment, the inverter accommodating portion 6 includes an accommodating portion main body 61 formed integrally with the housing 4, and a cover member 62 that is removable from the accommodating portion main body 61.
[0018] The accommodating section main body 61 has a bottom wall 611 and a peripheral wall 612 that rises from the periphery of the bottom wall 611 and defines an opening that faces the bottom wall 611. The cover member 62 is attached to the accommodating section main body 61 to close the opening. A part of the bottom wall 611 of the accommodating section main body 61 (which is also the bottom wall of the inverter accommodating section 6) forms a partition wall 8 that separates the interior of the housing 4 from the interior of the inverter accommodating section 6. The power supply line 9 from the inverter 5 to the electric motor 2 extends through the partition wall 8 (the bottom wall 611 of the accommodating section main body 61) in an airtight and liquidtight manner.
[0019] Fig. 2 is a view of the electric compressor 1 viewed from the inverter accommodating section 6 side with the cover member 62 of the inverter accommodating section 6 removed. As shown in Fig. 2, the circuit board 7 that constitutes the inverter 5 is attached inside the inverter accommodating section 6 (accommodating section main body 61) with a plurality of first fixing bolts 11 (fixing members).
[0020] Returning to FIG. 1, a refrigerant inlet 4a is formed in a portion of the housing 4 on the partition wall 8 side, allowing refrigerant from the outside to flow into the housing 4. The refrigerant that has flowed into the housing 4 flows inside the housing 4 (through the gap in the electric motor 2) and reaches the compression mechanism 3. The compression mechanism 3 is driven by the electric motor 2 to compress and discharge the refrigerant.
[0021] The refrigerant flowing into the housing 4 is, for example, a refrigerant that has passed through an expansion valve and an evaporator in the refrigerant circuit of the vehicle air conditioning system, and is a low-temperature, low-pressure refrigerant. Therefore, the partition wall 8 and the electric motor 2 can be cooled by the refrigerant flowing into the housing 4 from the refrigerant inlet 4a. The refrigerant flowing inside the housing 4 is compressed by the compression mechanism 3, and becomes a high-temperature, high-pressure refrigerant, which is then discharged from the compression mechanism 3. The (high-temperature, high-pressure) refrigerant discharged from the compression mechanism 3 then flows out from the refrigerant outlet 4b formed in the housing 4.
[0022] Here, a brief description will be given of the inverter 5. Fig. 3 is a diagram showing an example of the circuit configuration of the inverter 5. In this embodiment, the inverter 5 is configured to convert DC power from an external power supply (for example, an in-vehicle battery) VB into three-phase AC power and supply it to the electric motor 2.
[0023] 3, the inverter 5 includes a smoothing capacitor 51, a switching unit 52, a control circuit 53, and a noise filter 54. As described above, these components are mounted on the circuit board 7 to form the inverter 5.
[0024] Smoothing capacitor 51 is connected between the power supply line of external power supply VB and the ground line, and smoothes the DC voltage from external power supply VB.
[0025] The switching unit 52 includes six power switching elements Q1 to Q6 and six diodes D1 to D6. Although not particularly limited, the power switching elements Q1 to Q6 may be IGBTs (insulated gate bipolar transistors). The switching unit 52 is configured to control (PMW control) the power switching elements Q1 to Q6, thereby converting the DC voltage from the external power supply VB, which has been smoothed by the smoothing capacitor 51, into a three-phase AC voltage and supplying it to the electric motor 2.
[0026] To further explain switching unit 52, switching unit 52 has a U-phase arm, a V-phase arm, and a W-phase arm that are provided in parallel with one another between the power supply line of external power supply VB and the ground line.
[0027] The U-phase arm has two power switching elements Q1 and Q2 connected in series, with diodes D1 and D2 connected in anti-parallel to each of the power switching elements Q1 and Q2. The V-phase arm has two power switching elements Q3 and Q4 connected in series, with diodes D3 and D4 connected in anti-parallel to each of the power switching elements Q3 and Q4. The W-phase arm has two power switching elements Q5 and Q6 connected in series, with diodes D5 and D6 connected in anti-parallel to each of the power switching elements Q5 and Q6.
[0028] Furthermore, the midpoints of the U-, V-, and W-phase arms are connected at one end to the other end of the star-connected U-, V-, and W-phase coils of the electric motor 2. That is, the midpoints of power switching elements Q1 and Q2 of the U-phase arm are connected to the U-phase coil, the midpoints of power switching elements Q3 and Q4 of the V-phase arm are connected to the V-phase coil, and the midpoints of power switching elements Q5 and Q6 of the W-phase arm are connected to the W-phase coil.
[0029] By controlling the ratio between the ON period of the power switching element on the power line side of each phase arm and the ON period of the power switching element on the ground line side, i.e., by PWM controlling the multiple power switching elements Q1 to Q6, the switching unit 52 can convert the DC power from the external power source VB smoothed by the smoothing capacitor 51 into three-phase AC power and supply it to the electric motor 2, thereby driving the electric motor 2.
[0030] The control circuit 53 controls (PWM control) the power switching elements Q1 to Q6 to drive the electric motor 2 and thus the compression mechanism 3 based on a control signal from outside (for example, the control device of the above-mentioned vehicle air conditioner).
[0031] The noise filter 54 includes a capacitor, a coil (inductor), etc. Although not particularly limited, in this embodiment, the noise filter 54 is provided between the smoothing capacitor 51 and the switching unit 52, and mainly suppresses ripple noise and EMI / EMC noise caused by the operation of the power switching elements Q1 to Q6.
[0032] Next, a description will be given of the accommodation structure of the inverter 5 in this embodiment. As described above, in this embodiment, the inverter 5 is accommodated in the inverter accommodation portion 6.
[0033] [Inverter housing section 6] 4 is a diagram showing the interior of the inverter accommodating section 6 (without the inverter 5). As described above, the inverter accommodating section 6 includes an accommodating section main body 61 and a cover member 62. In this embodiment, the inverter accommodating section 6 also includes an installation section 63 on which the power switching elements Q1 to Q6 are installed, and a board fixing section 64 on which the circuit board 7 constituting the inverter 5 is fixed.
[0034] The installation section 63 is provided on the inner bottom surface 61a of the accommodating section main body 61, i.e., on the surface of the partition wall 8 on the inverter accommodating section 6 side. The inner bottom surface 61a of the accommodating section main body 61 faces the opening of the accommodating section main body 61.
[0035] Although only one is shown in FIG. 4, the installation portion 63 is formed with bolt holes 631, the same number as the number of power switching elements Q1 to Q6 (i.e., six), into which second fixing bolts 12 (see FIG. 5) serving as fixing members for fixing each of the power switching elements Q1 to Q6 are screwed.
[0036] The board fixing portion 64 is provided to protrude from the inner bottom surface 61a of the accommodating body 61 (towards the opening of the accommodating body 61) and is configured to support the circuit board 7 at a position farther from the inner bottom surface 61a of the accommodating body 61 than the installation portion 63. That is, within the inverter accommodating portion 6, the circuit board 7 is disposed at a position closer to the cover member 62 than the power switching elements Q1 to Q6. In this embodiment, the board fixing portion 64 includes a plurality of protrusions 641 each protruding from the inner bottom surface of the accommodating body 61, and a bolt hole is formed on the upper surface of each of the plurality of protrusions 641 into which a first fixing bolt 11 (see FIGS. 1 and 2) serving as a fixing member is screwed.
[0037] [Power switching elements Q1 to Q6 and switching element module] 5 is a diagram showing power switching elements. In this embodiment, each of the power switching elements Q1 to Q6 has an insertion hole (hereinafter referred to as a "first insertion hole") 21 through which a second fixing bolt 12 for fixing the element is inserted. The first insertion hole 21 penetrates from the top surface to the bottom surface of the power switching element.
[0038] Each of the power switching elements Q1 to Q6 has three terminals 22. In this embodiment, the three terminals 22 extend laterally from one side surface of the power switching element and are bent midway so that their tips point upward.
[0039] In this embodiment, the power switching elements Q1 to Q6 are hardened, ie, integrated, with a first insulating resin IR1 having a thermosetting property such as epoxy resin, to form a switching element module 30, as shown in FIG.
[0040] In this embodiment, as shown in FIG. 7, the switching element module 30 is fixed to the installation portion 63 by the same number of second fixing bolts 12 as the number of power switching elements Q1 to Q6.
[0041] [Circuit board 7] The circuit board 7 will be described with reference to Fig. 1 and Fig. 8 to Fig. 11. In this embodiment, the circuit board 7 is attached and fixed to the board fixing portion 64 after the switching element module 30 is installed (fixed) on the installation portion 63.
[0042] In this embodiment, electronic components other than power switching elements Q1 to Q6 that constitute the inverter 5 are pre-mounted on the circuit board 7. Specifically, in this embodiment, within the inverter accommodating section 6, a smoothing capacitor 51, diodes D1 to D6, a control circuit 53, a filter capacitor 54a that constitutes the noise filter 54, and a filter coil 54b that constitutes the noise filter 54 are pre-mounted on a surface 7a of the circuit board 7 that faces the cover member 62 (hereinafter referred to as the "cover member-side surface"). However, the diodes D1 to D6 are omitted from FIGS. 8 to 11.
[0043] The circuit board 7 is also formed with terminal holes 71 into which the terminals 22 of the power switching elements Q1 to Q6 are connected (inserted). The circuit board 7 is further formed with a plurality of insertion holes (hereinafter referred to as "second insertion holes") 72, each of which can receive a first fixing bolt 11. The second insertion holes 72 are arranged to correspond to the protrusions 641 that form the board fixing portion 64.
[0044] In this embodiment, among the other electronic components mounted on the circuit board 7, Prescribed electronic components In other words, electronic components that are susceptible to the effects of vibration are provided with vibration-proof reinforcement. Although not particularly limited, in this embodiment, the predetermined electronic components that are relatively tall (easily susceptible to the effects of vibration) are the smoothing capacitor 51, the filter capacitor 54a, and the filter coil 54b.
[0045] 1, 8, and 9, the predetermined electronic components (smoothing capacitor 51, filter capacitor 54a, and filter coil 54b) are molded and sealed with a thermosetting second insulating resin IR2 inside filter case 55, and are integrated with filter case 55. In this state (i.e., together with filter case 55), they are fixedly disposed on surface 7a of circuit board 7 facing the cover member. The second insulating resin IR2 may be the same type of resin as or a different type from the first insulating resin IR1.
[0046] To further explain the vibration-proof reinforcement for the predetermined electronic components, the predetermined electronic components (smoothing capacitor 51, filter capacitor 54a, and filter coil 54b) are attached by soldering to the surface 7a of the circuit board 7 on the cover member side.
[0047] The filter case 55 is made of, for example, a metal material. As shown in FIG. 10 , the filter case 55 is formed in a box shape with one side open, and is large enough to accommodate the predetermined electronic components attached to the cover member side surface 7a of the circuit board 7. At least a portion of the outer bottom surface 55a of the filter case 55 is formed as a flat surface. The filter case 55 also has a plurality of insertion holes (hereinafter referred to as "third insertion holes") 551 around the opening, through which the first fixing bolts 11 can be inserted. The plurality of third insertion holes 551 are arranged to correspond to some of the second insertion holes 72 of the circuit board 7.
[0048] The circuit board 7 on which the predetermined electronic components are mounted is combined with a filter case 55 filled with an appropriate amount of a thermosetting second insulating resin IR2. Specifically, as shown in FIG. 10 , the circuit board 7 and the filter case 55 are combined with each other such that the circuit board 7 is on top and the filter case 55 (filled with the second insulating resin IR2) is on the bottom, and the predetermined electronic components are inserted into the filter case 55 through the opening of the filter case 55. At this time, each third insertion hole 551 of the filter case 55 is aligned with the corresponding second insertion hole 72 of the circuit board 7. As a result, the predetermined electronic components soldered to the surface 7a of the circuit board 7 facing the cover member are mold-sealed with the second insulating resin IR2 inside the filter case 55 and are integrated with the filter case 55.
[0049] 11, the circuit board 7 is placed on the board fixing portion 64 (i.e., the upper surfaces of the plurality of protrusions 641) of the inverter accommodating portion 6, with the surface 7a on the cover member side facing upward. At this time, the plurality of second insertion holes 72 of the circuit board 7 are positioned over bolt holes formed in the upper surfaces of the plurality of protrusions 641. Furthermore, the terminals 22 of each of the power switching elements Q1 to Q6 in the switching element module 30 installed in the installation portion 63 are inserted into the terminal holes 71 of the circuit board 7, and the tips of the terminals 22 protrude from the surface 7a of the circuit board 7 on the cover member side.
[0050] The circuit board 7 placed on the board fixing portion 64 (the upper surface of the plurality of protrusions 641) is fixed to the board fixing portion 64 by a plurality of first fixing bolts 11. Specifically, the plurality of first fixing bolts 11 inserted through the plurality of second insertion holes 72 are screwed into bolt holes formed on the upper surface of the plurality of protrusions 641, thereby fixing the circuit board 7 to the board fixing portion 64. At this time, the filter case 55 is fastened together with the circuit board 7 to the board fixing portion 64 by some of the first fixing bolts 11 (see FIG. 2). As a result, the filter case 55 is disposed in a state in which it is firmly fixed on the surface 7a of the circuit board 7 facing the cover member. The outer bottom surface 55a of the filter case 55 forms the tip surface of the filter case 55 fixedly disposed on the surface 7a of the circuit board 7 facing the cover member.
[0051] Furthermore, the tip ends of the terminals 22 of the power switches Q1 to Q6 are soldered to the circuit board 7, thereby electrically connecting the power switches Q1 to Q6 to the circuit board 7. In other words, the power switches Q1 to Q6 are mounted on the surface of the circuit board 7 opposite to the surface 7a on the cover member side (the surface on the inner bottom surface 61a side of the accommodating portion main body 61).
[0052] Although detailed description is omitted, the power supply line 9 (or its terminal portion) is also inserted into an insertion hole formed in the circuit board 7, with its tip portion protruding from the surface 7a of the circuit board 7 facing the cover member, and is electrically connected to the circuit board 7 by a connecting member or the like (not shown). When the circuit board 7 is placed on the board fixing portion 64, it is electrically connected to the external power source VB via the connector 13.
[0053] [Cover member 62] 12 is a diagram showing the inverter accommodating section 6 (accommodating section main body 61, cover member 62), vibration-isolating member 70, and circuit board 7. In this embodiment, the cover member 62 is attached to the accommodating section main body 61 via fastening bolts (not shown) or the like after the circuit board 7 is fixed to the board fixing section 64 and the above-mentioned electrical connections are made. In this way, the inverter 5 is accommodated in the inverter accommodating section 6.
[0054] In this embodiment, the cover member 62 has a bulging portion 62a that bulges in a direction away from the housing main body 61 relative to other portions of the cover member 62, in other words, in a direction away from the circuit board 7 fixed to the board fixing portion 64. The bulging portion 62a is provided at a position corresponding to the filter case 55 on the surface 7a of the circuit board 7 facing the cover member, and is configured to be able to house the tip side portion of the filter case 55 inside. The inner surface of the bulging portion 62a is flat.
[0055] When the cover member 62 is attached to the housing main body 61, the vibration-isolating member 70 is disposed between the tip surface (outer bottom surface 55a) of the filter case 55 on the circuit board 7 and the inner surface of the bulging portion 62a of the cover member 62. The vibration-isolating member 70 is provided mainly to reduce (including absorb) vibrations of the cover member 62. The vibration-isolating member 70 can be formed from a flexible material, preferably a material that is flexible and has heat-dissipating properties. Although not particularly limited, the vibration-isolating member 70 can be, for example, a sheet-like heat-dissipating / vibration-isolating material whose main component is silicone resin.
[0056] When the cover member 62 is attached to the housing main body 61, the vibration-proof member 70 is sandwiched between the tip surface (outer bottom surface 55a) of the filter case 55 and the inner surface of the bulge portion 62a of the cover member 62 and compressed to an appropriate amount.
[0057] The electric compressor 1 according to this embodiment provides the following advantages.
[0058] Of the electronic components mounted on the circuit board 7 of the inverter 5, certain electronic components (smoothing capacitor 51, filter capacitor 54a, and filter coil 54b) are molded and sealed with a second thermosetting insulating resin IR2 and fixed on the cover member-side surface 7a of the circuit board 7. More specifically, the certain electronic components are molded and sealed with the second thermosetting insulating resin IR2 inside the filter case 55 and integrated with the filter case 55. The filter case 55 is then fastened together with the circuit board 7 to the board fixing portion 64, whereby the certain electronic components are fixed together with the filter case 55 on the cover member-side surface 7a of the circuit board 7. Therefore, the certain electronic components are firmly fixed in an integrated state, ensuring the vibration resistance of the certain electronic components and, ultimately, the circuit board 7.
[0059] Furthermore, a vibration-damping member 70 that reduces vibration of the cover member 62 is disposed between the molded-sealed predetermined electronic components and the cover member 62. More specifically, it is sandwiched between the front end surface of the filter case 55 and the inner surface of the bulge portion 62a of the cover member 62 that houses the front end portion of the filter case 55. That is, in this embodiment, the vibration-damping member 70 is disposed in the space above the area on the circuit board 7 where the predetermined electronic components are mounted. Therefore, the vibration of the cover member 62 can be reduced by the vibration-damping member 70 while suppressing a reduction in the mounting area of the electronic components on the circuit board 7. Therefore, noise caused by vibration of the cover member 62 can also be reduced.
[0060] In particular, the cover member 62 has a bulge portion 62a, which increases the rigidity of the cover member 62 and also makes it possible to use a thicker (more compressible) vibration-damping member 70, thereby further reducing the vibration of the cover member 62 and the resulting noise.
[0061] In the above-described embodiment, the filter case 55 is fastened together with the circuit board 7 to the board fastening portion 64. However, this is not limited to this. The filter case 55 only needs to be fixed on the cover member side surface 7a of the circuit board 7, and may be fixed on the cover member side surface 7a of the circuit board 7 by being fixed to a portion of the housing main body 61 other than the board fastening portion 64, or may be fixed directly to the circuit board 7.
[0062] Furthermore, in the above-described embodiment, the cover member 62 has a bulging portion 62a. However, the cover member 62 does not necessarily have to have a bulging portion 62a. In this case, the vibration-damping member 70 can be configured to be sandwiched between the (flat) tip surface of the filter case 55 and the (flat) inner surface (flat surface) of the cover member 62 and compressed to an appropriate amount.
[0063] [Second embodiment] Figure 13 is a schematic vertical cross-sectional view of an electric compressor 10 according to a second embodiment. The following mainly describes the configuration of the electric compressor 10 according to the second embodiment that differs from the electric compressor 1 according to the first embodiment, and a description of the configuration that is common to the electric compressor 1 according to the first embodiment will be omitted. Furthermore, the same reference numerals will be used for components that are common to the electric compressor 1 according to the first embodiment (Figure 1), and a description thereof will be omitted.
[0064] The main difference between the electric compressor 1 according to the first embodiment (FIG. 1) and the electric compressor 10 according to the second embodiment (FIG. 13) is that the electric compressor 10 according to the second embodiment does not use a filter case 55.
[0065] In the electric compressor 10 according to the second embodiment, the predetermined electronic components (smoothing capacitor 51, filter capacitor 54a, and filter coil 54b) are also fixedly disposed on the cover member side surface 7a of the circuit board 7, in a state in which they are molded and sealed with the second insulating resin IR2. However, in the electric compressor 10 according to the second embodiment, a filter case 55 is not used, and the predetermined electronic components are attached by soldering to the cover member side surface 7a of the circuit board 7, and then molded and sealed with the thermosetting second insulating resin IR2 on the cover member side surface 7a of the circuit board 7, thereby being integrated with the circuit board 7.
[0066] In this case, preferably, the entire specified electronic component is covered with the thermosetting second insulating resin IR2 on the cover member side surface 7a of the circuit board 7, and the tip of the thermosetting second insulating resin IR2, in other words, the tip of the specified electronic component molded and sealed with the thermosetting second insulating resin IR2, is formed at least partially as a flat surface.
[0067] The vibration-damping member 70 is configured to be sandwiched between the mold-sealed predetermined electronic component and the cover member 62 and compressed to an appropriate amount. More specifically, the cover member 62 has a bulging portion 62a that bulges out in a direction away from the circuit board 7 fixed to the board fixing portion 64 relative to other portions of the cover member 62. The bulging portion 62a is configured to be able to accommodate therein a tip portion of the mold-sealed predetermined electronic component. The inner surface of the bulging portion 62a is flat. The vibration-damping member 70 is sandwiched between the tip portion of the mold-sealed predetermined electronic component and the inner surface of the bulging portion 62a of the cover member 62 and compressed to an appropriate amount.
[0068] The electric compressor 10 according to the second embodiment also provides the same effects as the electric compressor 1 according to the first embodiment. That is, the vibration resistance of the circuit board 7 can be ensured, and the reduction in the mounting area of electronic components on the circuit board 7 can be suppressed while reducing noise caused by vibration of the cover member 62. Note that, in the electric compressor 10 according to the second embodiment, the cover member 62 does not necessarily have to have the bulge portion 62a.
[0069] [Third embodiment] Fig. 14 is a schematic vertical cross-sectional view of an electric compressor 100 according to a third embodiment. The following mainly describes the configuration of the electric compressor 100 according to the third embodiment that differs from the electric compressor 10 according to the second embodiment, and a description of the configuration common to the electric compressor 1 (Fig. 1) according to the first embodiment and the electric compressor 10 according to the second embodiment will be omitted. Furthermore, the same reference numerals will be used for the components common to the electric compressor 1 (Fig. 1) according to the first embodiment and the electric compressor 10 according to the second embodiment, and a description thereof will be omitted.
[0070] The main difference between the electric compressor 10 according to the second embodiment (FIG. 13) and the electric compressor 100 according to the third embodiment (FIG. 14) is that in the electric compressor 100 according to the third embodiment, of the specified electronic components (smoothing capacitor 51, filter capacitor 54a, and filter coil 54b), the smoothing capacitor 51 and the filter capacitor 54a, which are taller, are not molded and sealed.
[0071] In electric compressor 100 according to the third embodiment, mold sealing of smoothing capacitor 51 and filter capacitor 54a, which are among the predetermined electronic components, is omitted. Vibration-damping member 70 is configured to reduce vibration of cover member 62 and also reduce vibration of smoothing capacitor 51 and filter capacitor 54a, which are among the predetermined electronic components. That is, in electric compressor 100 according to the third embodiment, vibration-damping member 70 is configured to be sandwiched between smoothing capacitor 51 and cover member 62 and compressed by an appropriate amount, and to be sandwiched between filter capacitor 54a and cover member 62 and compressed by an appropriate amount.
[0072] More specifically, the cover member 62 has a bulging portion 62a that bulges out in a direction away from the circuit board 7 fixed to the board fixing portion 64 relative to other portions of the cover member 62. The bulging portion 62a is configured to be able to accommodate the tip end portion of the smoothing capacitor 51 and the tip end portion of the filter capacitor 54a therein. The vibration-isolating member 70 is configured to be sandwiched between the tip end of the smoothing capacitor 51 and the inner surface of the bulging portion 62a of the cover member 62 and compressed to an appropriate amount, and to be sandwiched between the tip end of the filter capacitor 54a and the inner surface of the bulging portion 62a of the cover member 62 and compressed to an appropriate amount. Here, the shape of the vibration-isolating member 70 is determined in consideration of, for example, the shape of the tip end of the smoothing capacitor 51, the distance between the tip end of the smoothing capacitor 51 and the inner surface of the bulging portion 62a of the cover member 62, the shape of the tip end of the filter capacitor 54a, and the distance between the tip end of the filter capacitor 54a and the inner surface of the bulging portion 62a of the cover member 62.
[0073] In the electric compressor 100 according to the third embodiment, the vibration resistance of the specified electronic components, and therefore the circuit board 7, can also be ensured, and the noise caused by the vibration of the cover member 62 can be reduced while suppressing a reduction in the mounting area of the electronic components on the circuit board 7.
[0074] The above describes the embodiments of the present invention and their modifications. However, the present invention is not limited to the above-described embodiments and modifications, and it goes without saying that further modifications are possible based on the technical concept of the present invention. [Explanation of symbols]
[0075] 1, 10, 100... electric compressor, 2... electric motor, 3... compression mechanism, 4... housing, 5... inverter, 6... inverter accommodating section, 7... circuit board, 7a... cover member side surface, 30... switching element module, 51... smoothing capacitor, 54... noise filter, 54a... filter capacitor, 55... filter case (case member), 61... accommodating section main body, 62... cover member, 62a... bulge portion, 64... board fixing section, 70... vibration-proof member, IR1... thermosetting first insulating resin, IR2... thermosetting second insulating resin (thermosetting resin), Q1 to Q6... power switching elements
Claims
1. a housing that accommodates an electric motor and a compression mechanism driven by the electric motor; an inverter for driving the electric motor, the inverter including a circuit board on which electronic components are mounted; an inverter accommodating section that accommodates the inverter, the inverter accommodating section including: an accommodating section main body having an opening; a board fixing section that is provided to protrude from an inner bottom surface of the accommodating section main body facing the opening and to which the circuit board is fixed; and a cover member that closes the opening of the accommodating section main body; a vibration-isolating member that reduces vibration of the cover member; Including, predetermined electronic components among the electronic components are fixedly disposed on a surface of the circuit board facing the cover member in a state of being molded and sealed with a thermosetting resin, the vibration-isolating member is disposed between the mold-sealed predetermined electronic component and the cover member; Electric compressor.
2. the predetermined electronic component is mold-sealed with the thermosetting resin within the case member to be integrated with the case member, and is fixedly disposed together with the case member on a surface of the circuit board facing the cover member, The electric compressor according to claim 1 , wherein the vibration-isolating member is sandwiched between the case member and the cover member.
3. The electric compressor according to claim 2 , wherein the case member is fastened together with the circuit board to the board fixing portion.
4. the cover member has a bulging portion that bulges out in a direction away from the circuit board relative to other portions of the cover member and accommodates a tip end side of the case member therein; the vibration-proof member is sandwiched between the tip end surface of the case member and the inner surface of the bulging portion of the cover member; The electric compressor according to claim 2 or 3.
5. the predetermined electronic component is integrated with the circuit board by the thermosetting resin, 2. The electric compressor according to claim 1, wherein the vibration-isolating member is sandwiched between the predetermined electronic component that is mold-sealed and the cover member.
6. the cover member has a bulging portion that bulges out in a direction away from the circuit board more than other portions of the cover member, and the bulging portion accommodates a tip end side of the mold-sealed predetermined electronic component therein; the vibration-isolating member is sandwiched between a tip end of the mold-sealed predetermined electronic component and an inner surface of the bulging portion of the cover member; The electric compressor according to claim 5 .
7. a housing that accommodates an electric motor and a compression mechanism driven by the electric motor; an inverter for driving the electric motor, the inverter including a circuit board on which electronic components are mounted; an inverter accommodating section that accommodates the inverter, the inverter accommodating section including: an accommodating section main body having an opening; a board fixing section that is provided to protrude from an inner bottom surface of the accommodating section main body facing the opening and to which the circuit board is fixed; and a cover member that closes the opening of the accommodating section main body; a vibration-isolating member that reduces vibration of the cover member; Including, predetermined electronic components among the electronic components are arranged on a surface of the circuit board facing the cover member, the vibration-isolating member is sandwiched between the predetermined electronic component and the cover member; Electric compressor.
8. the cover member has a bulging portion that bulges out in a direction away from the circuit board more than other portions of the cover member, and the bulging portion accommodates a tip side of the predetermined electronic component therein; the vibration-isolating member is sandwiched between the tip end of the predetermined electronic component and the inner surface of the bulging portion of the cover member; The electric compressor according to claim 7.
9. 9. The electric compressor according to claim 1, wherein the predetermined electronic component includes at least one of a smoothing capacitor that smoothes a DC voltage from a DC power supply, a filter capacitor that constitutes a noise filter, and a filter coil that constitutes the noise filter.
Citation Information
Patent Citations
Inverter integrated electric compressor
JP2011163231A
Motor compressor
JP2019143607A
Electric compressor
JP2020056376A