heat pump equipment

The heat pump device uses a lead wire relay module with sealing mechanisms to prevent refrigerant leakage into the electrical box, addressing the risk of ignition from flammable refrigerants and enhancing safety.

JP7769979B2Active Publication Date: 2025-11-14PANASONIC INTELLECTUAL PROPERTY MANAGEMENT CO LTD
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Patent Information

Application Number
JP2022158739
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-09-30
Publication Date
2025-11-14
Estimated Expiration
2042-09-30

AI Technical Summary

Technical Problem

Refrigerant leakage from the refrigerant circuit in a heat pump device poses a risk of entering the electrical box, potentially leading to ignition due to the use of flammable refrigerants.

Method used

The heat pump device incorporates a lead wire relay module with fixing sleeves and insertion sleeves that seal and hold lead wires, along with a resin-made fixing frame and O-ring to enhance airtightness, preventing refrigerant ingress into the electrical box.

Benefits of technology

This configuration effectively prevents refrigerant from entering the electrical box, ensuring safety and reducing the risk of ignition, while maintaining efficient operation and assembly simplicity.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a heat pump device which inhibits a refrigerant from penetrating into an electrical equipment box.SOLUTION: A heat pump device according to the disclosure includes, in a housing, a machine room in which a compressor and an expansion device are disposed and a blower room in which a heat exchanger and a blower are disposed. The heat pump device uses a combustible refrigerant and includes an electrical equipment box. The electrical equipment box includes an electrical equipment box body and a lid member. A penetrating opening is formed at the electrical equipment box body. A lead wire relay module for drawing multiple lead wires is provided at the penetrating opening. The lead wire relay module includes multiple insertion openings into which lead wire blocks are inserted. Each lead wire block includes a fixed sleeve and an insertion sleeve which is disposed adhering to the fixed sleeve and holds the lead wire, sealing the lead wire.SELECTED DRAWING: Figure 9
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Description

[Technical Field]

[0001] The present invention relates to a heat pump device. [Background technology]

[0002] Patent Document 1 discloses a heat pump device that includes a refrigerant circuit that circulates a flammable refrigerant, a heat medium circuit that circulates a heat medium, a heat medium heat exchanger that exchanges heat between the refrigerant and the heat medium, an outdoor unit that houses the refrigerant circuit and the heat medium heat exchanger, and an indoor unit that houses a part of the heat medium circuit, wherein the outdoor unit has at least one of a pressure relief valve and an air vent valve that are provided in the heat medium circuit as a refrigerant release valve, and the refrigerant release valve is provided outside the housing of the outdoor unit. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] European Patent Application Publication No. 3312531 Summary of the Invention [Problem to be solved by the invention]

[0004] The present disclosure provides a heat pump device that can prevent refrigerant from leaking into an electrical box when refrigerant leaks from a refrigerant circuit. [Means for solving the problem]

[0005] The heat pump device of the present disclosure is a heat pump device that uses a flammable refrigerant and includes a machine chamber in a housing in which a compressor and an expansion device are disposed, and a blower chamber in which a heat exchanger and a blower are disposed, and includes an electrical box, the electrical box including an electrical box main body and a cover member, a through opening formed in the electrical box main body, a lead wire relay module that draws in multiple lead wires is provided in the through opening, the lead wire relay module has multiple insertion openings into which lead wire blocks are inserted, and the lead wire block includes a fixing sleeve and an insertion sleeve that is positioned in close contact with the fixing sleeve and seals and holds the lead wires. [Effects of the Invention]

[0006] According to the present disclosure, when refrigerant leaks from the refrigerant circuit, the refrigerant can be prevented from entering the interior of the electrical box. [Brief explanation of the drawings]

[0007] [Figure 1] FIG. 1 is a perspective view showing a heat pump device according to a first embodiment; [Figure 2] FIG. 1 is an exploded perspective view showing a heat pump device according to a first embodiment; [Figure 3] FIG. 1 is a front view showing a state in which a front panel of the heat pump device according to the first embodiment is removed. [Figure 4] Circuit diagram showing a refrigerant circuit according to the first embodiment [Figure 5] FIG. 1 is an exploded perspective view showing an electrical box according to a first embodiment; [Figure 6] FIG. 1 is a vertical cross-sectional view showing an electrical box according to a first embodiment of the present invention; [Figure 7] FIG. 1 is a plan view showing an electrical box according to a first embodiment; [Figure 8] FIG. 1 is a perspective view of a lead wire relay module according to a first embodiment; [Figure 9] FIG. 1 is an exploded perspective view of a lead wire relay module according to a first embodiment; [Figure 10] 1 is a cross-sectional view of a lead wire relay module according to a first embodiment of the present invention; [Figure 11] FIG. 1 is a perspective view of a lead wire relay module according to a first embodiment; DETAILED DESCRIPTION OF THE INVENTION

[0008] (Findings that formed the basis of this disclosure) At the time when the inventors arrived at the idea of ​​the present disclosure, there was a technique for preventing a flammable refrigerant from igniting in a heat pump device. The heat pump device includes a refrigerant circuit that circulates a flammable refrigerant, a heat medium circuit that circulates a heat medium, a heat medium heat exchanger that exchanges heat between the refrigerant and the heat medium, an outdoor unit that houses the refrigerant circuit and the heat medium heat exchanger, and an indoor unit that houses a part of the heat medium circuit. The outdoor unit has at least one of a pressure relief valve and an air vent valve provided in the heat medium circuit as a refrigerant release valve, and the refrigerant release valve is provided outside the housing of the outdoor unit. In the heat pump system, the outdoor unit is provided with a machinery chamber, which houses devices such as a compressor and a heat medium heat exchanger that constitute a refrigerant circuit, and an electrical equipment box that houses electrical equipment. The electrical equipment in the electrical equipment box is electrically connected to the various devices in the machinery chamber by lead wires. However, the inventors discovered a problem with this configuration in that if refrigerant leaks from the refrigerant circuit, the refrigerant will fill the machine compartment and there is a risk that the refrigerant will enter the electrical box through the part where the lead wires are pulled into the electrical box.In order to solve this problem, they came up with the subject matter of the present disclosure. Therefore, the present disclosure provides a heat pump device that can prevent refrigerant from leaking into an electrical box when refrigerant leaks from a refrigerant circuit.

[0009] Hereinafter, embodiments will be described in detail with reference to the drawings. However, unnecessary detailed description may be omitted. For example, detailed description of well-known matters or redundant description of substantially the same configuration may be omitted. This is to avoid unnecessary redundancy in the following description and to facilitate understanding by those skilled in the art. The accompanying drawings and the following description are provided to enable those skilled in the art to fully understand the present disclosure, and are not intended to limit the subject matter described in the claims.

[0010] (Embodiment 1) Hereinafter, the first embodiment will be described with reference to the drawings. [1-1.Configuration] [1-1-1. Configuration of heat pump device] Fig. 1 is a perspective view of the heat pump unit 1 according to embodiment 1. Fig. 2 is an exploded perspective view of the heat pump unit 1 according to embodiment 1. Fig. 3 is a front view showing the heat pump unit 1 according to embodiment 1 with a front panel 16 removed. The heat pump device 1 shown in FIG. 1 is an outdoor unit that can be used as a so-called heat pump hot water heater. 1 to 3, the heat pump device 1 includes a box-shaped housing 10. In this embodiment, each part of the housing 10 is formed from a steel plate.

[0011] A partition plate 11 extending in the vertical direction is provided inside the housing 10. The partition plate 11 divides the internal space of the housing 10 into a fan chamber 12 and a machine chamber 13. The housing 10 comprises a bottom plate 14 that forms the bottom surface of the housing 10, a pair of side panels 15 that cover the machine chamber 13 of the housing 10 from the front and back, a front panel 16 that covers the front of the blower chamber 12, and a top plate 17 that covers the top surface of the housing 10. The front panel 16 is provided with a ventilation section 18 formed in a mesh shape to allow air to pass through.

[0012] In the blower chamber 12, a heat exchanger 20 and a blower 21 are provided. The heat exchanger 20 of this embodiment extends almost to the full height of the housing 10, and is formed in an approximately L-shape when viewed from above so as to face the back surface 10A and side surface 10B of the housing 10. The heat exchanger 20 is, for example, a fin-tube type heat exchanger. For example, an axial flow fan equipped with a propeller-shaped impeller is used as the blower 21. The blower 21 is disposed so that the axial flow direction faces the ventilation section 18.

[0013] The interior of the machine room 13 accommodates various devices that form a refrigerant circuit, such as a compressor 22, a water heat exchanger (heat medium heat exchanger) 23, and an expansion device 24 (see Figure 4), as well as refrigerant piping 25 that connects these devices to each other. The water heat exchanger 23 is, for example, a plate heat exchanger. A cutout portion 26 is formed in the upper portion of the partition plate 11, and an electrical equipment box 30 is installed in this cutout portion 26.

[0014] [1-1-2. Refrigerant circuit configuration] FIG. 4 is a circuit diagram showing a refrigerant circuit according to the first embodiment. As shown in FIG. 4, the compressor 22, four-way valve 27, water heat exchanger 23, expansion device 24, and heat exchanger 20 are connected in a ring shape via a predetermined refrigerant pipe 25 to form a refrigerant circuit. A predetermined water supply pipe 28 is connected to the water heat exchanger 23, and heat exchange occurs in the water heat exchanger 23 with the refrigerant circulating in the refrigerant circuit. The refrigerant compressed by compressor 22 to a high temperature and high pressure flows as shown by the solid arrow in Fig. 4 and is sent to water heat exchanger 23, where it is cooled and condensed by heat exchange with water flowing through water supply pipe 28. The water receives heat from the refrigerant and becomes hot water, which is then supplied to, for example, user equipment (not shown). The refrigerant discharged from the water heat exchanger 23 is decompressed and evaporated in the expansion device 24, and is then heat exchanged in the heat exchanger 20 to become a gas refrigerant, which is then returned to the compressor 22 again.

[0015] 4, the refrigerant flows, exchanges heat with the outside air in heat exchanger 20, is decompressed in expansion device 24, and is then sent to water heat exchanger 23, thereby cooling the water flowing through water supply pipe 28. The chilled water is supplied to user equipment (not shown). In this embodiment, a flammable refrigerant is used as the refrigerant, which may be R32 or a mixed refrigerant containing 70 weight percent or more of R32, or propane or a mixed refrigerant containing propane. It should be noted that a non-flammable refrigerant may be used as the refrigerant instead of a flammable refrigerant.

[0016] [1-1-3. Configuration of the electrical box] Fig. 5 is an exploded perspective view showing the electrical box 30 of embodiment 1. Fig. 6 is a vertical cross-sectional view showing the electrical box 30 of embodiment 1. Fig. 7 is a plan view showing the electrical box 30 of embodiment 1. As shown in Fig. 2, the electrical box 30 is disposed above the fan chamber 12 and the machine chamber 13, straddling the machine chamber 13 and the fan chamber 12. The electrical box 30 is installed in the notch 26 at the top of the partition plate 11 and is supported by the partition plate 11. As shown in FIGS. 5 and 6 , the electrical box 30 includes a box-shaped sheet metal electrical box body 32 having an opening 31 at the top, and a resin lid member 33 formed in a generally rectangular flat plate shape that closes the opening 31. The electrical box body 32 is made of a material with high thermal conductivity, such as a metal material. The lid member 33 is attached to the electrical box body 32 via an O-ring 38.

[0017] In this embodiment, the entire electrical box body 32 is made of a metal material, but only the portion located in the blower chamber 12 may be made of a metal material.

[0018] 5 to 7, electrical box body 32 includes a rectangular fan side portion 32A located on the fan chamber 12 side and a substantially trapezoidal machine side portion 32B located on the machine chamber 13 side. Cover member 33 includes a rectangular fan side portion 33A located on the fan chamber 12 side and a substantially trapezoidal machine side portion 33B located on the machine chamber 13 side.

[0019] A control board 40 made of a printed circuit board is installed in the blower side portion 32A of the electrical box body 32.

[0020] Although not shown, electronic components such as semiconductor chips such as a CPU, transistors, capacitors, and resistors are mounted on the control board 40 to form an electric circuit. A heat sink 41 equipped with a plurality of fins is attached to the underside of the control board 40, and the control board 40 is installed so as to protrude downward from a bottom opening 35 provided in the bottom surface of the blower side section 32A. The heat sink 41 is disposed on the bottom surface of the blower side section 32A close to the machine side section 32B of the electrical box main body 32. In this embodiment, one end of the heat sink 41 is located at the boundary between the machine side section 32B and the blower side section 32A. In other words, it is located at the boundary separated by the partition plate 11. A sealant 42 is disposed around the periphery of the bottom opening 35, and the control board 40 is fixed in place with the bottom opening 35 closed via the sealant 42.

[0021] The machine-side section 32B of the electrical box body 32 is provided with a main power line relay section 50 located on the front side and a lead wire relay section 53 located on the back side. The main power line relay section 50 is provided with a terminal block 51 for connecting the main power line and a cable gland 52 for drawing in and sealing the main power line. The cable 45 drawn into the cable gland 52 is connected to a predetermined device such as the compressor 22. The lead wire relay section 53 is provided with a lead wire relay module 55 for drawing in the lead wire.

[0022] A terminal block 51 for connecting a cable (main power line) 45 is arranged in the main power line relay section (space) 50. The main power line relay section 50 in which the terminal block 51 is arranged is partitioned by a partition plate 154, and the main power line relay section 50 is sealed within the electrical box main body 32. The terminal block 51 is arranged on an obliquely formed partition plate 154A, and faces a window opening 152 formed in the side surface of the electrical box main body 32. A window cover 155 for sealing the main power line relay section 50 is screwed into the window opening 152 with a sealant (not shown) sandwiched therebetween.

[0023] A lid member 33 is fixed to the upper end of the electrical box main body 32 with fixing screws 37A to 37F via an O-ring 38. This makes the interior of the electrical box main body 32 a sealed space. More specifically, as shown in FIG. 5, a flange 32F formed by bending a metal plate is formed around the periphery of the upper end of the electrical box main body 32. As shown in FIG. 5, an O-ring groove 36 is formed around the periphery of the underside of the lid member 33, and an O-ring 38 is fitted into the O-ring groove 36, and the lid member 33 is fixed to the flange 32F with six fixing screws 37A to 37F. The O-ring 38 is made of foam rubber or chloroprene rubber.

[0024] The cover member 33 is fixed to the flange 32F of the machine side portion 32B of the electrical box main body 32 with four fixing screws 37A to 37D, and is fixed to the flange 32F of the blower side portion 32A of the electrical box main body 32 with two fixing screws 37E and 37F.

[0025] The electrical box body 32 is configured so that the volume occupied by the machine side portion 32B is smaller than the volume occupied by the blower side portion 32A, and the machine side portion 32B of the electrical box body 32 is formed into a trapezoidal shape by cutting the corners of the machine side portion 32B. As a result, the length of the seal between the electrical box body 32 and the cover member 33 in the machine side portion 32B of the electrical box body 32 (the length of the O-ring 38) is set short. Furthermore, the pitches P1 to P3 of the fixing screws 37A to 37D that fix the machine side portion 32B are set shorter than the pitches P4 to P6 of the fixing screws 37D to 37F that fix the fan side portion 32A. Because the machine side portion 32B has a short sealing length and the pitches P1 to P3 of the fixing screws 37A to 37D are set short, the sealing performance between the electrical box main body 32 and the lid member 33 in the machine side portion 32B can be improved.

[0026] The heat exchanger 20 is formed in an L-shape facing the rear surface 10A and the side surface 10B of the housing 10. As shown in Fig. 7, a shielding member 60 is provided between the header pipe of the heat exchanger 20 facing the rear surface 10A of the housing 10 and the machine side portion 32B of the electrical box main body 32. By providing the shielding member 60 near the seal portion of the machine side portion 32B near the header pipe, even if the refrigerant is ejected from the refrigerant circuit, the phenomenon of the refrigerant directly colliding with the vicinity of the seal portion is suppressed, and the mass transfer rate of the refrigerant permeating the O-ring 38 can be reduced.

[0027] As shown in Fig. 3, a ventilated space is formed between the underside of the top plate 17 of the housing 10 and the upper surface of the cover member 33. As shown in Fig. 2, a partition member 39 is provided on the upper surface of the cover member 33. The partition member 39 is arranged in a form that closes the space at the boundary between the fan side section 33A and the machine side section 33B. A plurality of openings (not shown) are formed at equal intervals in the partition member 39, and ventilation is possible between the machine chamber 13 and the fan chamber 12 through the openings.

[0028] During operation of the heat pump unit 1, the operation of the blower unit 21 creates a negative pressure inside the blower chamber 12. As a result, air from the machine chamber 13 flows through the multiple openings in the partition member 39 toward the blower chamber 12. This air flow cools the entire upper surface of the lid member 33.

[0029] [1-1-4. Lead Wire Relay Module Configuration] 5 to 7, a through opening 34a is formed in the bottom surface 34 of the electrical box 30 in the lead wire relay portion 53. The through opening 34a is a hole that communicates between the inside and outside of the electrical box 30 and is substantially rectangular in plan view. The through opening 34a is covered from above, i.e., from the inside of the electrical box 30, by a lead wire relay module 55.

[0030] FIG. 8 is a perspective view of the lead wire relay module 55. FIG. 9 is an exploded perspective view of the lead wire relay module. The lead wire relay module 55 is a module that pulls multiple lead wires connecting the control board 40 and various devices such as the compressor 22 into the interior of the electrical box. The lead wire relay module 55 has a fixing frame 70 fixed to the bottom surface 34 of the electrical box and lead wire blocks 100a, 100b inserted into the fixing frame 70. The lead wire blocks 100a, 100b have insertion sleeves 80a, 80b that fit closely to the lead wires and fixing sleeves 90a, 90b that fit closely to the insertion sleeves 80a, 80b. The lead wire relay module 55 seals and holds the lead wires by fitting the lead wires closely to the insertion sleeves 80a, 80b, thereby preventing refrigerant from entering the interior of the electrical box 30.

[0031] The fixed frame 70 is a frame made of resin and has a generally rectangular shape with one corner cut off in a plan view. The fixed frame 70 has a frame portion 71 and a flange portion 73. The frame portion 71 is provided at the center of the fixed frame 70 and is the portion into which the lead wire blocks 100a, 100b are inserted. The frame portion 71 stands upward and has an outer frame portion 71a that is a rectangular cylindrical portion in a plan view and a plate-like partition plate portion 71b that divides the outer frame portion 71a into two portions, front and rear. Two insertion openings Sa, Sb that penetrate the fixed frame 70 from top to bottom are formed in the area surrounded by the outer frame portion 71a and the partition plate portion 71b. The upper ends of the insertion openings Sa, Sb open into the electrical box 30, and the lower ends communicate with the through opening 34a. In addition, the frame portion 71 has a rim 71d that protrudes approximately horizontally along the inner circumferential surface 71a1 and the lower end of the partition plate portion 71b.

[0032] The flange portion 73 is a plate-shaped portion that surrounds the frame portion 71, and has fixing holes 73a for screw fastening. The fixing frame 70 is fixed to the electrical box 30 by fastening the flange portion 73 to the bottom surface 34 of the electrical box with screws.

[0033] The insertion sleeves 80a, 80b are made of rubber and are disposed in the insertion openings Sa, Sb of the frame 71. The insertion sleeves 80a, 80b have main bodies 85a, 85b that extend in the front-rear direction and whose ends abut against the inner circumferential surface 71a1 of the frame 71. Furthermore, protrusions 81A, 81B and protrusions 81C, 81D that protrude in the left-right direction are formed at the center of the main bodies 85a, 85b in the front-rear direction. The protrusions 81A-81D are each substantially trapezoidal in plan view, and the protrusions 81A-81D have the same external shape. Holes 81A1-81D1 that penetrate the protrusions 81A-81D vertically are formed at the tips of the protrusions 81A-81D, respectively. The holes 81A1-81D1 are open at the tips of the protrusions 81A-81D, and lead wires are sandwiched from the open portions in the front and rear directions. The holes 81A1 to 81D1 are each set to have a cross-sectional shape that matches the shape of the lead wire to be sandwiched.

[0034] The fixing sleeves 90a, 90b are sleeves to be placed in the insertion openings Sa, Sb of the frame 71, and each includes a pair of sleeve bodies 91A, 91B and a pair of sleeve bodies 91C, 91D. The sleeve bodies 91A-91D are made of resin and have recesses 93A-93D into which the protrusions 81A-81D of the insertion sleeves 80a, 80b are fitted. The recesses 93A-93D penetrate the sleeve bodies 91A-91D from top to bottom and are recessed into the same shape corresponding to the protrusions 81A-81D, which are identical in shape. Therefore, each of the sleeve bodies 91A-91D can be fitted with any one of the protrusions 81A-81D. This allows for combinations other than those shown in FIG. 8, such as the protrusion 81A and the sleeve body 91B, and facilitates assembly. Grooves 95A to 95D that penetrate vertically through the sleeve bodies 91A to 91D are formed in the recesses 93A to 93D. The grooves 95A to 95D connect with the holes 81A1 to 81D1 when the projections 81A to 81D and the recesses 93A to 93D are fitted together.

[0035] 10 is a cross-sectional view of the lead wire relay module 55, showing a vertical cross section taken along the left-right direction of the insertion opening Sa. The inside of the insertion opening Sa will be described below with reference to FIG. 10, but the same applies to the insertion opening Sb. 10, the sleeve bodies 91A and 91B are inserted from above downward into the insertion opening Sa and are fixed to the fixed frame 70 while abutting against the edge 71d. Furthermore, the insertion sleeve 80a is inserted from above downward into the insertion opening Sa and is fixed to the fixed frame 70 by fitting the protrusions 81A and 81B into the recesses 93A and 93B of the sleeve bodies 91A and 91B.

[0036] The side surface (outer periphery) 87a of the insertion sleeve 80a has a tapered structure that narrows from top to bottom, i.e., in the insertion direction of the insertion sleeve 80a. Therefore, the cross-sectional area of ​​the insertion sleeve 80a decreases in the insertion direction of the insertion sleeve 80a. Furthermore, the side surfaces (outer peripheries) 92A and 92B of the sleeve bodies 91A and 91B have a tapered structure that slopes along the side surface 87a of the insertion sleeve 80a, and the recesses 93A and 93B narrow from top to bottom. Therefore, when the insertion sleeve 80a is pressed in the insertion direction, the side surface 87a is pressed inward by the side surfaces 92A and 92B. This compresses the insertion sleeve 80a horizontally, making it easier for the inner surfaces of the holes 81A1 and 81B1 to come into close contact with the lead wires. Furthermore, since a surface pressure is applied between the side surface 87a of the insertion sleeve 80a and the side surfaces 92A, 92B of the sleeve bodies 91A, 91B, the side surface 87a and the side surfaces 92A, 92B are brought into closer contact with each other.

[0037] 10 , the fixed frame 70 has a guide portion 76 that is inserted into the through opening 34a. The guide portion 76 is a cylindrical portion that protrudes downward and has approximately the same shape as the inner periphery of the through opening 34a in a plan view. The guide portion 76 is formed in a position that surrounds the frame portion 71 in a plan view. Therefore, when the guide portion 76 is inserted into the through opening 34a from above to below, the frame portion 71 is positioned so that it overlaps the through opening 34a in the vertical direction. This allows the insertion openings Sa and Sb in the frame portion 71 to communicate with the through opening 34a, making it possible to route lead wires inside and outside the electrical box 30.

[0038] FIG. 11 is a perspective view of the lead wire relay module 55, showing the lead wire relay module 55 as viewed from below. As shown in FIGS. 10 and 11 , an O-ring groove 77 recessed upward is formed on the outer side of the guide portion 76 at the lower end of the fixing frame 70. The inner circumferential side of the O-ring groove 77 is formed along the outer surface of the guide portion 76. A rubber O-ring 77a is disposed in the O-ring groove 77. The O-ring 77a is positioned so as to surround the through-opening 34a when the guide portion 76 is inserted from above to below into the through-opening 34a. Furthermore, when the fixing frame 70 is fixed to the bottom surface 34 of the electrical box, the O-ring 77a is compressed between the O-ring groove 77 and the bottom surface 34 of the electrical box, thereby closing the gap between the fixing frame 70 and the bottom surface 34 of the electrical box. This makes it difficult for refrigerant to enter the electrical box 30 through the gap between the fixing frame 70 and the bottom surface 34 of the electrical box.

[0039] Furthermore, the rubber used for the O-ring 77a is chloroprene rubber, which has particularly low permeability to propane contained in the refrigerant.

[0040] Furthermore, the chloroprene rubber used for O-ring 77a is foamed rubber. Therefore, when O-ring 77a is crushed, O-ring 77a easily deforms along O-ring groove 77 and bottom surface 34 of the electrical box, allowing it to fit tightly against O-ring groove 77 and bottom surface 34 of the electrical box. Furthermore, because O-ring 77a is made of foamed rubber, even if the cross-sectional area of ​​O-ring 77a is increased, it easily fits into O-ring groove 77 when crushed. Therefore, in this embodiment, the cross-section of O-ring 77a is set to a size that causes it to protrude downward from O-ring groove 77, thereby increasing the adhesion force.

[0041] Furthermore, the length of O-ring 77a is set shorter than the length of O-ring groove 77. Specifically, the length of the inner periphery of O-ring 77a when O-ring 77a is not stretched is shorter than the length of the inner periphery of O-ring groove 77. Therefore, when placed in O-ring groove 77, the inner periphery of O-ring 77a is in close contact with the side surface of the inner periphery of O-ring groove 77, making it less likely that a gap will form between O-ring 77a and O-ring groove 77.

[0042] [1-2. Operation] Next, the operation of the heat pump device 1 configured as above will be described. When the heat pump device 1 is driven, the compressor 22 and the blower device 21 are operated, and the axial flow fan also starts to operate. As a result, when hot water is used, the refrigerant compressed by compressor 22 to a high temperature and high pressure flows as shown by the solid arrow in Figure 4 and is sent to water heat exchanger 23, where it is cooled by heat exchange with water flowing through water supply pipe 28, and the water absorbs the heat of the refrigerant and becomes hot water, which is then supplied to a specified location. The refrigerant discharged from the water heat exchanger 23 is decompressed in the expansion device 24, undergoes heat exchange in the heat exchanger 20, and becomes a gas refrigerant, which is returned to the compressor 22 again.

[0043] When using chilled water, by switching the four-way valve 27, the refrigerant flows as shown by the dashed arrows in Figure 4, exchanges heat with the outside air in the heat exchanger 20, is decompressed in the expansion device 24, and is sent to the water heat exchanger 23, thereby cooling the water flowing through the water supply pipe 28. During these operations, the blower device 21 is operated, so that air flows toward the electrical box 30 located in the blower chamber 12 .

[0044] Furthermore, a space that allows ventilation is formed between the lower surface of the top plate 17 of the housing 10 and the upper surface of the cover member 33 of the electrical box 30, so that air also flows over the upper surface of the cover member 33. These air flows allow the entire surface of the electrical box 30 to be cooled by air, and the temperature rise of the electronic components housed inside the electrical box 30 can be suppressed.

[0045] Furthermore, the operation of the air blower 21 causes air to flow toward the heat sink 41. This allows the heat sink 41 to be cooled, and the control board 40 to be cooled.

[0046] [1-3. Effects, etc.] As described above, in this embodiment, the heat pump device 1 includes an electrical box 30, which includes an electrical box main body 32 and a cover member 33, the electrical box main body 32 includes a lead wire relay module 55 that draws in multiple lead wires into the through opening 34a, the lead wire relay module 55 includes multiple insertion openings Sa, Sb into which the lead wire blocks 100a, 100b are inserted, and the lead wire blocks 100a, 100b include fixing sleeves 90a, 90b and insertion sleeves 80a, 80b that are arranged in close contact with the fixing sleeves 90a, 90b and seal and hold the lead wires. This allows the lead wires to be drawn into the electrical box 30 while improving the airtightness of the electrical box 30. This prevents refrigerant from entering the electrical box 30. In this embodiment, each lead wire block 100a, 100b seals and holds multiple lead wires. This simplifies the assembly of the lead wire relay module 55.

[0047] In this embodiment, the fixing sleeves 90a, 90b are divided into a plurality of sleeve bodies 91A to 91D, and the insertion sleeves 80a, 80b are clamped and fastened by the plurality of sleeve bodies 91A to 91D. This improves the adhesion between the fixing sleeves 90a, 90b and the insertion sleeves 80a, 80b, and prevents the refrigerant from entering the electrical box 30. In this embodiment, the insertion sleeves 80a, 80b are clamped by pairs of sleeve bodies 91A, 91B and sleeve bodies 91C, 91D so as to sandwich them from both the left and right sides. This makes it easier to improve the adhesion between the fixing sleeves 90a, 90b and the insertion sleeves 80a, 80b.

[0048] In addition, in this embodiment, the fixing sleeves 90a, 90b and the insertion sleeves 80a, 80b have a tapered structure that brings the side surfaces 92A, 92B and the side surface 87a into close contact with each other as the insertion sleeves 80a, 80b are inserted into the fixing sleeves 90a, 90b. This allows the fixing sleeves 90a, 90b and the insertion sleeves 80a, 80b to come into closer contact with each other as the insertion sleeves 80a, 80b are inserted, thereby preventing the refrigerant from entering the electrical box 30. In addition, in this embodiment, as the insertion sleeve 80a is inserted further into the holes 81A1, 81B1 that come into close contact with the lead wires, the insertion sleeve 80a tends to come into close contact with the lead wires in the hole 81A1.

[0049] In addition, in this embodiment, the insertion openings Sa, Sb are formed in a fixed frame 70 made of resin, and the fixed frame 70 has an O-ring groove 77 into which an O-ring 77a is inserted, and the fixed frame 70 is fixed to the through opening 34a of the electrical box main body 32 with the O-ring 77a sandwiched between them. As a result, the gap between the fixed frame 70 and the electrical box main body 32 is blocked by the O-ring 77a, which prevents the refrigerant from entering the electrical box 30. In the present embodiment, the fixed frame 70 also has guide portions 76, which make it easy to position the fixed frame 70 relative to the through-opening 34a.

[0050] In this embodiment, the O-ring 77a is made of foam rubber. This makes it easier for the O-ring 77a to deform, and therefore the gap between the fixed frame 70 and the electrical box main body 32 is more easily blocked by the O-ring 77a. This makes it possible to prevent refrigerant from entering the electrical box 30. Furthermore, in this embodiment, the O-ring 77a is made of foam rubber, which is easily deformed, so even if the cross-sectional area of ​​the O-ring 77a is increased, the O-ring 77a can easily fit into the O-ring groove 77 when it is crushed by the electrical box main body 32. This makes it possible to use an O-ring 77a with a large cross-sectional area that protrudes from the O-ring groove 77, increasing the adhesion of the O-ring 77a.

[0051] In this embodiment, the O-ring 77a is made of chloroprene rubber. This makes it difficult for flammable refrigerants, such as propane gas, to pass through the O-ring, making it more difficult for the refrigerant to enter the electrical box.

[0052] In this embodiment, the length of the O-ring 77 a is set to be shorter than the length of the O-ring groove 77 . With this configuration, O-ring 77a is inserted in a stretched state into O-ring groove 77. This makes it easier for O-ring 77a to fit tightly into O-ring groove 77 without loosening, thereby preventing refrigerant from entering electrical box 30.

[0053] In this embodiment, the electrical box 30 is disposed above the machine room 13 and the blower room 12, straddling the machine room 13 and the blower room 12. This makes it easier for the electrical box 30 to be cooled by the air blown in the portion located in the blower room 12, and also allows the lead wires extending from each device in the machine room 13 to be drawn into the interior of the electrical box 30 via the lead wire relay module 55.

[0054] (Other embodiments) As described above, the first embodiment has been described as an example of the technology disclosed in the present application. However, the technology in the present disclosure is not limited to this, and can be applied to embodiments in which modifications, substitutions, additions, omissions, etc. are made. Furthermore, it is also possible to combine the components described in the first embodiment above to create new embodiments. Therefore, other embodiments will be exemplified below.

[0055] In the first embodiment described above, the heat pump device 1 is an outdoor unit that can be used for a so-called heat pump hot water heater. However, the present invention is not limited to this, and the heat pump device 1 can be applied to various devices that include a refrigerant circuit, such as a water heater or an air conditioner.

[0056] In the above-described embodiment, O-ring 77a is described as being made of foamed chloroprene rubber, but this is merely an example. For example, O-ring 77a may be made of rubber other than chloroprene rubber, and may not be foamed. However, when foamed chloroprene rubber is used as O-ring 77a, as in this embodiment, O-ring 77a tends to adhere tightly to O-ring groove 77 and electrical box body 32, and is less likely to allow propane to pass through.

[0057] In the embodiment described above, the fixed frame 70 has two insertion openings Sa and Sb, and the lead wire relay module 55 has two lead wire blocks 100a and 100b, but this is just an example. For example, the fixed frame 70 may have one or three or more insertion openings, and the lead wire relay module 55 may have one or three or more lead wire blocks.

[0058] In the above-described embodiment, the fixing sleeves 90a, 90b are each composed of two sleeve bodies 91A-91D, but this is merely an example. For example, the fixing sleeves 90a, 90b may each be composed of one sleeve body, or three or more sleeve bodies. However, if the fixing sleeves 90a, 90b are each composed of one sleeve body, it is difficult to sandwich the insertion sleeves 80a, 80b between the fixing sleeves 90a, 90b. Furthermore, if the fixing sleeves 90a, 90b are each composed of three or more sleeve bodies, the installation of the lead wire blocks 100a, 100b becomes more complicated than in the above-described embodiment.

[0059] It should be noted that the above-described embodiments are intended to illustrate the technology of the present disclosure, and various modifications, substitutions, additions, omissions, etc. may be made within the scope of the claims or their equivalents.

[0060] (Addendum) (Technology 1) A heat pump device using a flammable refrigerant, the heat pump device having a housing including a machine chamber in which a compressor and an expansion device are disposed, and a blower chamber in which a heat exchanger and a blower are disposed, the heat pump device further comprising an electrical box, the electrical box including an electrical box main body and a cover member, the electrical box main body having a through opening formed therein, a lead wire relay module for drawing in a plurality of lead wires provided in the through opening, the lead wire relay module having a plurality of insertion openings into which lead wire blocks are inserted, the lead wire block including a fixing sleeve and an insertion sleeve disposed in close contact with the fixing sleeve and sealingly holding the lead wires. This configuration allows the lead wires to be drawn into the electrical box while improving the airtightness of the electrical box, thereby preventing the refrigerant from entering the electrical box.

[0061] (Technology 2) The heat pump device according to Technology 1, characterized in that the fixing sleeve is divided into a plurality of sleeve bodies, and the insertion sleeve is clamped and fastened by the plurality of sleeve bodies. This configuration allows the sleeve body and the insertion sleeve to be tightly attached to each other from multiple directions, improving the tightness of the attachment sleeve and the insertion sleeve, and preventing the refrigerant from entering the electrical box.

[0062] (Technology 3) The heat pump device according to Technology 1 or 2, characterized in that the fixing sleeve and the insertion sleeve have a tapered structure that brings their outer peripheries into close contact as the insertion sleeve is inserted into the fixing sleeve. With this configuration, the fixing sleeve and the insertion sleeve come into closer contact with each other as the insertion sleeve is inserted, thereby making it possible to prevent the refrigerant from entering the electrical box.

[0063] (Technology 4) The heat pump device according to any one of Technologies 1 to 3, characterized in that the insertion opening is formed in a fixing frame made of resin, the fixing frame has an O-ring groove into which an O-ring is inserted, and the fixing frame is fixed to the through opening of the electrical box body with the O-ring sandwiched between them. With this configuration, the gap between the fixing frame and the electrical box body is sealed by the O-ring, thereby preventing the refrigerant from entering the electrical box.

[0064] (Technology 5) The heat pump device according to Technology 4, wherein the O-ring is made of foam rubber. This configuration allows the O-ring to deform easily, so that the gap between the fixing frame and the electrical box body is easily closed by the O-ring, thereby preventing the refrigerant from entering the electrical box.

[0065] (Technology 6) The heat pump device according to Technology 4 or 5, characterized in that the O-ring is made of chloroprene rubber. This configuration makes it difficult for a flammable refrigerant, such as propane gas, to permeate the O-ring, making it more difficult for the refrigerant to infiltrate into the electrical box.

[0066] (Technology 7) The heat pump device according to any one of Technologies 4 to 6, characterized in that the length of the O-ring is set shorter than the length of the O-ring groove. With this configuration, the O-ring is inserted into the O-ring groove in a stretched state, which makes it easier for the O-ring to fit tightly into the O-ring groove without loosening, preventing refrigerant from entering the electrical box.

[0067] (Technology 8) The heat pump device according to any one of Technologies 1 to 7, wherein the electrical box is arranged above the machine room and the blower room, straddling the machine room and the blower room. With this configuration, the electrical box is easily cooled by the air in the portion located in the blower room, and the lead wires extending from each device in the machine room can be drawn into the interior of the electrical box via the lead wire relay module. [Industrial Applicability]

[0068] The present disclosure is suitably applicable to heat pump devices that use flammable refrigerants. [Explanation of symbols]

[0069] 1. Heat pump equipment 10. Cabinet 11 Divider 12 Blower room 13 Machine room 14 Bottom plate 15 Side Panel 16 Front Panel 17 Top plate 18 Ventilation section 20 Heat exchanger 21 Blower 22 Compressor 23 Water heat exchanger 24 Expansion Device 25 Refrigerant piping 26 Notch 27 Four-way valve 28 Water supply piping 30 Electrical box 31 Aperture 32 Electrical box body 33 Lid member 34 Bottom of electrical box 34a Through opening 35 Bottom opening 36 O-ring groove 38 O-ring 39 Partition material 40 Control board 41 Heat sink 42 Sealing material 45 Cable 50 Power line relay section 51 Terminal block 52 Cable gland 53 Lead wire relay section 55 Lead wire relay module 60 Shielding member 70 fixed frames 71 Frame 73 Flange 76 Guide part 77 O-ring groove 77a O-ring 80a Insertion Sleeve 80b Insertion sleeve 87a Side (outer periphery) 90a fixing sleeve 90b fixing sleeve 91A Sleeve body 91B Sleeve body 91C Sleeve body 91D sleeve body 92A Side (periphery) 92B Side (outer periphery) 100a lead wire block 100b lead wire block 152 Window Opening 154 Partition 155 Window cover Sa insertion opening Sb insertion opening

Claims

1. A heat pump device using a flammable refrigerant, the heat pump device comprising: a machine chamber in which a compressor and an expansion device are disposed; and a blower chamber in which a heat exchanger and a blower are disposed, the machine chamber being housed within a housing; Equipped with an electrical box, The electrical box includes an electrical box body and a cover member, A through opening is formed in the electrical box body, a lead wire relay module for drawing in a plurality of lead wires is provided in the through opening; the lead wire relay module has a plurality of insertion openings into which the lead wire blocks are inserted; The lead wire block includes a fixing sleeve and an insertion sleeve that is disposed in close contact with the fixing sleeve and seals and holds the lead wire. A heat pump device characterized by:

2. The fixing sleeve is divided into a plurality of sleeve bodies, and the insertion sleeve is clamped and fastened by the plurality of sleeve bodies. The heat pump device according to claim 1 .

3. the fixing sleeve and the insertion sleeve have a tapered structure that brings their outer peripheries into close contact with each other as the insertion sleeve is inserted into the fixing sleeve; The heat pump device according to claim 1 or 2.

4. The insertion opening is formed in a fixed frame made of resin, the fixing frame has an O-ring groove into which an O-ring is inserted, and the fixing frame is fixed to the through-opening of the electrical box body with the O-ring sandwiched between them. The heat pump device according to claim 1 .

5. The O-ring is made of foam rubber. The heat pump device according to claim 4 .

6. The O-ring is made of chloroprene rubber. The heat pump device according to claim 4 .

7. The length of the O-ring is set shorter than the length of the O-ring groove. The heat pump device according to any one of claims 4 to 6.

8. The electrical equipment box is disposed above the machine room and the blower room, straddling the machine room and the blower room. The heat pump device according to claim 1 or 2.

Citation Information

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