The present disclosure relates to a wire harness unit.
Conventionally, wire harnesses installed in vehicles such as hybrid cars and electric cars electrically connect a plurality of electrical devices to each other. Also, in electric cars, vehicles and ground facilities are connected to each other by a wire harness, and a power storage device installed in the vehicle is charged by the ground facility. As a result of a voltage supplied through the wire harness being high, the amount of heat generated by the wire harness is increased. For this reason, configurations for cooling wire harnesses have been proposed.
For example, JP 2019-115253A discloses a wire harness provided with a coated wire, an inner tube that covers the coated wire, and an outer tube that covers the inner tube with a predetermined space therebetween, in which a circulation path for a coolant is formed between the inner tube and the outer tube. The circulation path is formed by inner and outer tubes that are separate from the coated wire, and the coated wire is disposed radially inward of the circulation path.
Incidentally, in the wire harness disclosed in JP 2019-115253A, the circulation path (a path along which the coolant flows) is disposed outside the coated wire, and thus the coolant is far from the central portion of the coated wire, which is the heat source. Accordingly, there is room for improvement in terms of cooling efficiency of the coated wire.
An exemplary aspect of the disclosure provides a wire harness unit capable of improving cooling efficiency.
A wire harness unit that is an aspect of the present disclosure includes a plurality of conductive paths for conducting electricity between in-vehicle devices; and a cooling tube through which a coolant is able to flow for cooling the plurality of conductive paths, wherein: the plurality of conductive paths include a first conductive path and a second conductive path parallel with the first conductive path, the first conductive path includes a first tubular conductor that is conductive and hollow, the second conductive path includes a second tubular conductor that is conductive and hollow, each of the first tubular conductor and the second tubular conductor includes a first end and a second end that is on an opposite side to the first end, the cooling tube is more flexible than the first tubular conductor and the second tubular conductor, and is separate from the first tubular conductor and the second tubular conductor, and the cooling tube includes a turnback that links the first end of the first tubular conductor and the first end of the second tubular conductor, an inlet connected to the second end of the first tubular conductor, and an outlet connected to the second end of the second tubular conductor.
According to a wire harness unit that is an aspect of the present disclosure, cooling efficiency can be improved.
First, aspects of the present disclosure will be listed and described.
[1] A wire harness unit according to the present includes a plurality of conductive paths for conducting electricity between in-vehicle devices, and a cooling portion for cooling the plurality of conductive paths, the plurality of conductive paths include a first conductive path and a second conductive path that is parallel with the first conductive path, the first conductive path includes a first tubular conductor that is conductive and hollow, the second conductive path includes a second tubular conductor that is conductive and hollow, each of the first tubular conductor and the second tubular conductor includes a first end portion and a second end portion that is on the opposite side to the first end portion, the cooling portion is more flexible than the first tubular conductor and the second tubular conductor, allows a coolant to flow therein, and includes a cooling tube that is separate from the first tubular conductor and the second tubular conductor, and the cooling tube includes a turnback tube that links the first end portion of the first tubular conductor and the first end portion of the second tubular conductor, an inlet tube connected to the second end portion of the first tubular conductor, and an outlet tube connected to the second end portion of the second tubular conductor.
According to this configuration, the coolant can flow inside the first tubular conductor and the second tubular conductor and inside the cooling tube. For this reason, the first tubular conductor and the second tubular conductor can be cooled from the inside, thereby making it possible to improve cooling efficiency. Moreover, since the cooling tube includes the turnback tube that links the first end portion of the first tubular conductor and the first end portion of the second tubular conductor, it is possible to reduce the number of inlets and outlets for the coolant, specifically the number of inlet tubes and outlet tubes, and simplify the structure for connection to a pump, for example, compared with a case where the cooling tube does not include the turnback tube. In addition, for example, it is possible to reduce the number of inlet tubes and outlet tubes and the number of components compared with a case where the cooling tube does not include the turnback tube.
[2] It is preferable that the number of conductive paths included in the plurality of conductive paths is an even number.
According to this configuration, since the number of conductive paths included in the plurality of conductive paths is an even number, the inlet and the outlet for the coolant, specifically the inlet tube and the outlet tube, can be easily positioned close to each other. That is to say, a situation is avoided where the positions of the inlet tube and the outlet tube for the coolant are spaced far apart from each other when, for example, the number of conductive paths is three, which is an odd number, and the cooling tube includes two turnback tubes, and the outlet tube is connected to the second end portion of the second tubular conductor via a third tubular conductor of a third conductive path. Thus, it is possible to easily set the positions of the inlet and the outlet for the coolant close to each other, and to reduce a routing space and the like for connection to a pump, for example.
[3] It is preferable that the wire harness unit further includes an exterior member for covering the conductive paths, the exterior member includes a tubular exterior member and a grommet that is connected to an end portion of the tubular exterior member, and the turnback tube is disposed inside the grommet.
According to this configuration, since the turnback tube is disposed inside the grommet, it is possible to easily house the turnback tube, for example. Even in a case where, for example, the turnback tube is configured such that it cannot be sharply bent, and a large space is required, such a case can be easily addressed without increasing the entire size of the tubular exterior member. Moreover, for example, if the grommet is shaped such that the size thereof increases toward a member that is connected to the grommet, the turnback tube can be easily housed in a large space.
[4] It is preferable that the wire harness unit further includes protective layers that respectively cover inner circumferential surfaces of the first tubular conductor and the second tubular conductor.
According to this configuration, since the protective layers that respectively cover the inner circumferential surfaces of the first tubular conductor and the second tubular conductor are provided, the protective layers make it possible to prevent a coolant that is supplied to the inside of the first tubular conductor and the second tubular conductor from coming into direct contact with the inner circumferential surfaces of the first tubular conductor and the second tubular conductor.
[5] It is preferable that the first conductive path and the second conductive path each include a flexible conductor and a terminal, the flexible conductor includes a first end portion that is electrically connected to the first tubular conductor or the second tubular conductor, and a second end portion that is electrically connected to the terminal, and the flexible conductor is more flexible than the first tubular conductor and the second tubular conductor.
According to this configuration, due to end portions of the first tubular conductor and the second tubular conductor being connected to the flexible conductors, dimensional tolerance of the conductive paths can be absorbed. Further, this configuration is a counter measure against swinging generated while a vehicle is travelling.
[6] It is preferable that each of the first tubular conductor and the second tubular conductor is longer than the flexible conductor.
According to this configuration, since each of the first tubular conductor and the second tubular conductor is longer than the flexible conductor, the sections where heat exchange takes place between the coolant and the first tubular conductor and the second tubular conductor are long, and the first tubular conductor and the second tubular conductor can be further cooled.
[7] It is preferable that the wire harness unit further includes an electromagnetic shield member for covering at least a portion of the cooling tube, the first tubular conductor, and the second tubular conductor, the electromagnetic shield member is a braided member formed by braiding metal strands, and the cooling tube extends through the braided member.
According to this configuration, both the shielding properties for suppressing electromagnetic noise radiation from the conductive paths and an improvement in the ease of assembly of the cooling portion can be achieved.
[8] It is preferable that the wire harness unit further includes an exterior member for covering the conductive paths, and the exterior member includes a tubular exterior member and a grommet connected to an end portion of the tubular exterior member, and the cooling tube extends through the grommet.
According to this configuration, since the cooling tube extends through the grommet and is led out to the outside, a decrease in the water blocking properties of the wire harness unit can be suppressed.
Specific examples of a wire harness unit according to the present disclosure will be described below with reference to the drawings. Note that, in the drawings, parts of the configurations may be shown in an exaggerated or simplified manner for convenience of description. Moreover, dimensional ratios of various portions may be different from actual dimensional ratios. “Parallel” and “orthogonal” in the present specification include not only being exactly parallel and orthogonal but also approximately parallel and orthogonal within a range in which the operation and effects of the present embodiment can be achieved. The present disclosure is not limited to the embodiments disclosed herein, but is defined by the claims, and intended to include all modifications within the meaning and the scope equivalent thereof.
A wire harness unit 10 shown in
As shown in
As shown in
The first tubular conductor 21 is conductive and has a hollow structure. The first tubular conductor 21 is made of metal, for example, and has high shape retaining properties. In other words, the first tubular conductor 21 can retain its shape. The material for the first tubular conductor 21 is a metal material such as a copper-based material or an aluminum-based material. The first tubular conductor 21 is formed in a shape conforming to a routing path of the wire harness unit 10 shown in
The insulating coating 22a covers the entirety of an outer circumferential surface 21c of the first tubular conductor 21 in the circumferential direction, for example. The insulating coating 22a is constituted by an insulating material such as a synthetic resin. Examples of the material for the insulating coating 22a include silicone resin, a synthetic resin whose main component is a polyolefin resin such as cross-linked polyethylene or cross-linked polypropylene, and the like. A single kind of material, or two or more kinds of materials can be used in combination as appropriate, for the insulating coating 22a. The insulating coating 22a can be formed by performing extrusion molding (extrusion coating) on the first tubular conductor 21, for example.
The protective layer 22b covers an inner circumferential surface 21d of the first tubular conductor 21 over the entire circumference thereof in the circumferential direction. The protective layer 22b is a coating film made of a rigid resin, rubber, enamel, or the like. The protective layer 22b prevents a coolant 73 that is supplied to the inside of the first tubular conductor 21 from coming into direct contact with the inner circumferential surface 21d of the first tubular conductor 21.
As shown in
As shown in
The flexible conductors 23 and 24 are conductors that are more flexible than the first tubular conductor 21. The flexible conductors 23 and 24 of the present embodiment are formed in a tubular shape. The flexible conductors 23 and 24 are braided wires formed by braiding conductive wire strands into a tubular shape. The material for the wire strands is a metal material such as a copper-based material car an aluminum-based material.
As shown in
The first tubular conductor 21 is disposed inside the tubular first end portion 24a of the flexible conductor 24, and the second end portion 21b of the first tubular conductor 21 extends through the flexible conductor 24, and is disposed outside the flexible conductor 24. A fastening band 27b is attached to the outer side of the flexible conductor 24. The flexible conductor 24 is crimped to the outer circumferential surface of the first tubular conductor 21 using the fastening band 27b. The first end portion 24a of the flexible conductor 24 is electrically connected to the outer circumferential surface of the first tubular conductor 21 by the fastening band 27b. Note that the flexible conductor 24 and the first tubular conductor 21 may be connected to each other through welding such as ultrasonic welding.
The terminal 25 is held by the connector 71 shown in
In addition, the second conductive path 30 includes a second tubular conductor 31, an insulating coating 32a, a protective layer 32b, flexible conductors 23 and 24, and terminals 25 and 26. As shown in
As shown in
As shown in
Specifically, one end of the turnback tube 41 is connected to the first end portion 21a of the first tubular conductor 21, and the other end is connected to the first end portion 31a of the second tubular conductor 31. The first end portion 21a of the first tubular conductor 21 is disposed inside the one end portion of the turnback tube 41. A fastening band 28a is attached to the outer circumference side of the one end portion of the turnback tube 41. The one end portion of the turnback tube 41 is crimped to the outer circumferential surface of the first tubular conductor 21 using the fastening band 28a. The first end portion 31a of the second tubular conductor 31 is disposed inside the other end portion of the turnback tube 41. A fastening band 28b is attached to the outer circumference side of the other end portion of the turnback tube 41. The other end portion of the turnback tube 41 is crimped to the outer circumferential surface of the second tubular conductor 31 using the fastening band 28b. In the present embodiment the turnback tube 41 is crimped on the end portion side of the first tubular conductor 21 and the second tubular conductor 31 relative to the above-described flexible conductors 23.
The inlet tube 42 is connected to the second end portion 21b of the first tubular conductor 21. The second end portion 21b of the first tubular conductor 21 is disposed inside an end portion of the inlet tube 42. A fastening band 29a is attached to the outer circumference side of the end portion of the inlet tube 42. The end portion of the inlet tube 42 is crimped to the outer circumferential surface of the first tubular conductor 21 using the fastening band 29a. In the present embodiment, the inlet tube 42 is crimped on the end portion side of the first tubular conductor 21 relative to the above-described flexible conductor 24.
The outlet tube 43 is connected to the second end portion 31b of the second tubular conductor 31. The second end portion 31b of the second tubular conductor 31 is disposed inside the end portion of the outlet tube 43. A fastening band 29b is attached to the outer circumference side of an end portion of the outlet tube 43. The end portion of the outlet tube 43 is crimped to the outer circumferential surface of the second tubular conductor 31 using the fastening band 29b. In the present embodiment, the outlet tube 43 is crimped on the end portion side of the second tubular conductor 31 relative to the above-described flexible conductor 24.
The coolant 73 is supplied to the inside of the first tubular conductor 21 via the inlet tube 42, and the coolant 73 is supplied to the second tubular conductor 31 via the turnback tube 41. The coolant 73 may be a liquid such as water and an antifreeze solution, or a fluid such as a gas, or an air-liquid two-phase flow in which a gas and a liquid are mixed. The coolant 73 is supplied by a pump (not shown), The coolant 73 supplied to the inside of the second tubular conductor 31 is discharged via the outlet tube 43. In this manner, the cooling tube 40, specifically the inlet tube 42, the turnback tube 41, and the outlet tube 43, form a part of a circulation path through which the coolant 73 is circulated. The circulation path includes the above-described pump and a heat dissipating portion, for example. The pump pressurizes and feeds the coolant 73 into the first tubular conductor 21 and the second tubular conductor 31. The coolant 73 performs heat-exchange with the first tubular conductor 21 and the second tubular conductor 31.
The coolant 73, of which the temperature has risen as a result of heat exchange, is fed from the outlet tube 43 to the heat dissipating portion. The heat dissipating portion cools the coolant 73 by dissipating heat from the coolant 73, of which the temperature has risen as a result of heat exchange to the outside. The cooled coolant 73 is pressurized and fed again to the first tubular conductor 21 via the inlet tube 42 by the pump. The cooling tube 40 constitutes a cooling portion for cooling the first tubular conductor 21 and the second tubular conductor 31 using the coolant 73 circulated in this manner.
As shown in
The exterior member 60 covers the conductive paths 11. The above-described cooling tube 40 is connected to the two end portions of the first tubular conductor 21 and the second tubular conductor 31 of the conductive paths 11. Accordingly, the exterior member 60 covers the conductive paths 11 and at least a portion of the cooling tube 40.
The exterior member 60 includes a tubular exterior member 61 (exterior tube), and grommets 62 and 63 respectively connected to a first end portion 61a and a second end portion 61b of the tubular exterior member 61.
The tubular exterior member 61 covers portions of the outer circumferences of the first tubular conductor 21 and the second tubular conductor 31 in the lengthwise direction, for example. The tubular exterior member 61 is formed in a tubular shape in which the two ends thereof in the lengthwise direction of the first tubular conductor 21 and the second tubular conductor 31 are open, for example. The tubular exterior member 61 surrounds the entirety of the outer circumferences of the first tubular conductor 21 and the second tubular conductor 31 in the circumferential direction, for example. The tubular exterior member 61 of the present embodiment is formed in a cylindrical shape. The tubular exterior member 61 has a bellows structure in which, for example, annular protruding portions and annular recessed portions are alternately arranged along the axis direction (lengthwise direction) thereof in which the central axial line of the tubular exterior member 61 extends. Examples of the material for the tubular exterior member 61 include a conductive resin material and a non-conductive resin material. Examples of the resin material include a synthetic resin such as polyolefin, polyimide, polyester, and ABS resin. The tubular exterior member 61 of the present embodiment is a corrugated tube made of a synthetic resin.
The grommet 62 is formed in a substantially tubular shape. The grommet 62 is made of rubber, for example. The grommet 62 spans between the connector 71 and the tubular exterior member 61. The grommet 62 is fastened and fixed to the outer surface of the connector 71 by a fastening band 64a so as to be in close contact therewith. Also, the grommet 62 is fastened and fixed to the outer side of the first end portion 61a of the tubular exterior member 61 by a fastening band 64b so as to be in close contact therewith. As shown in
The grommet 63 is formed in a substantially tubular shape. The grommet 63 is made of rubber, for example. The grommet 63 spans between the connector 72 and the tubular exterior member 61. The grommet 63 is fastened and fixed to the outer surface of the connector 72 by a fastening band 65a so as to be in close contact therewith. Also, the grommet 63 is fastened and fixed to the outer side of the second end portion 61b of the tubular exterior member 61 by a fastening band 65b so as to be in dose contact therewith. Through holes 63a extending through the grommet 63 are formed in the grommet 63. The through holes 63a bring the inside and the outside of the grommet 63 into communication.
In the present embodiment, the two through holes 63a are formed in the grommet 63, and the inlet tube 42 is inserted into one through hole 63a, and the outlet tube 43 is inserted into the other through hole 63a. The through holes 63a are formed so as to be in close contact with the outer circumferential surface of the inlet tube 42 or the outlet tube 43 that is inserted thereinto. The inlet tube 42 and the outlet tube 43 extend through the electromagnetic shield member 50, and are led from the through holes 63a of the grommet 63 to the outside of the grommet 63.
Next, operation of the wire harness unit 10 of the present embodiment will be described.
The wire harness unit 10 includes the conductive paths 11 that conduct electricity between the in-vehicle devices M1 and M2, and the cooling tube 40 constituting the cooling portion that cools the conductive paths 11. The conductive paths 11 respectively include the first tubular conductor 21 and the second tubular conductor 31 that are conductive and hollow. The cooling tube 40 is more flexible than the first tubular conductor 21 and the second tubular conductor 31, and is separate from the first tubular conductor 21 and the second tubular conductor 31. The coolant 73 can flow inside the first tubular conductor 21, the second tubular conductor 31, and the cooling tube 40. The cooling tube 40 includes the turnback tube 41 that links the first end portion 21a of the first tubular conductor 21 and the first end portion 31a of the second tubular conductor 31, the inlet tube 42 connected to the second end portion 21b of the first tubular conductor 21, and the outlet tube 43 connected to the second end portion 31b of the second tubular conductor 31.
The coolant 73 flows inside the first tubular conductor 21 and the second tubular conductor 31 via the cooling tube 40. At this time, the coolant 73 flows through the inlet tube 42, the first tubular conductor 21, the turnback tube 41, the second tubular conductor 31, and the outlet tube 43, in the stated order. The first tubular conductor 21 and the second tubular conductor 31 are cooled through heat exchange with the flowing coolant 73. In this manner, the first tubular conductor 21 and the second tubular conductor 31 can be cooled from the inside.
Compared to a braided wire formed by twisting together a plurality of metal strands having the same cross sectional area and a single core wire having a solid structure, the first tubular conductor 21 and the second tubular conductor 31 have a larger outer circumference. In other words, the first tubular conductor 21 and the second tubular conductor 31 have a larger area on the outer circumferential side compared to a braided wire and a single core wire. Accordingly, since heat can be dissipated outward from a larger area, heat dissipation properties can be improved.
The wire harness unit 10 includes the protective layers 22b and 32b that respectively cover the inner circumferential surfaces 21d and 31d of the first tubular conductor 21 and the second tubular conductor 31, over the entire circumferences thereof in the circumferential direction. The protective layers 22b and 32b make it possible to prevent the coolant 73 that is supplied to the inside of the first tubular conductor 21 and the second tubular conductor 31, from coming into direct contact with the inner circumferential surfaces 21d and 31d of the first tubular conductor 21 and the second tubular conductor 31, respectively.
The conductive paths 11 include the flexible conductors 23 and 24 respectively connected to the first tubular conductor 21 and the second tubular conductor 31. The flexible conductors 23 and 24 are more flexible than the first tubular conductor 21 and the second tubular conductor 31. Accordingly, dimensional tolerance of the conductive paths 11 can be absorbed. Also, when the vehicle V vibrates, positional deviation between the parts connected to two ends of the flexible conductors 23 and 24 due to the vibration can be absorbed. In the present embodiment, for example, positional deviation between the first tubular conductor 21 and the connectors 71 and 72, that is, between the first tubular conductor 21 and the in-vehicle devices M1 and M2 can be absorbed. Accordingly, loads applied to the connectors 71 and 72 and the terminals 25 and 26 can be reduced.
Also, as shown in
The electromagnetic shield member 50 covers the two conductive paths 11. The electromagnetic shield member 50 is a braided member formed by braiding metal strands into a tubular shape. For this reason, radiation of the electromagnetic noise originating from the conductive paths 11 to the outside can be suppressed. Also, for this reason, the cooling tube 40, specifically the inlet tube 42 and the outlet tube 43, can be led out from the electromagnetic shield member 50 at intermediate positions of the electromagnetic shield member 50. Thus, the inlet tube 42 and the outlet tube 43 can be easily led to the outside of the wire harness unit 10, and constituent members for circulating the coolant 73 can be easily connected to the first tubular conductor 21 and the second tubular conductor 31.
The wire harness unit 10 includes the exterior member 60 for covering at least a portion of the cooling tube 40 and the conductive paths 11. The exterior member 60 includes a tubular exterior member 61, and grommets 62 and 63 respectively connected to a first end portion 61a and a second end portion 61b of the tubular exterior member 61. The cooling tube 40, specifically the inlet tube 42 and the outlet tube 43 extend through the grommet 63. In this manner, since the inlet tube 42 and the outlet tube 43 extend through the grommet 63, and are led to the outside of the wire harness unit 10, degradation of the water blocking properties of the wire harness unit 10 can be suppressed.
As described above, according to the present embodiment, the following effects are achieved.
(1) The coolant 73 can flow inside the first tubular conductor 21 and the second tubular conductor 31, and inside the cooling tube 40. For this reason, the first tubular conductor 21 and the second tubular conductor 31 can be cooled from the inside, making it possible to improve the cooling efficiency. Moreover, the cooling tube 40 includes the turnback tube 41 that links the first end portion 21a of the first tubular conductor 21 and the first end portion 31a of the second tubular conductor 31, and thus, for example, compared with a case where the cooling tube 40 does not include the turnback tube 41, it is possible to reduce the number of inlets and outlets for the coolant 73, specifically, the number of inlet tubes 42 and outlet tubes 43. Thus, a connection structure for connection between the cooling tube 40 and the pump can be simplified. In addition, for example, compared with a case where the cooling tube 40 does not include the turnback tube 41, it is possible to reduce the number of inlet tubes 42 and outlet tubes 43 and the number of components.
(2) The plurality of conductive paths 11 include the first conductive path 20 and the second conductive path 30. The number of conductive paths included in the plurality of conductive paths 11 is an even number, and thus the inlet and the outlet for the coolant 73, specifically, the inlet tube 42 and the outlet tube 43 can be naturally positioned on the second end portion 21b side of the first tubular conductor 21, and the inlet and the outlet for the coolant can be easily positioned close to each other. That is to say, a situation is avoided where the positions of the inlet tube 42 and the outlet tube 43 for the coolant 73 are spaced far apart from each other when, for example, the number of conductive paths 11 is three, which is an odd number, the cooling tube 40 includes two turnback tubes 41, and the outlet tube 43 is connected to a first end portion of a third tubular conductor of a third conductive path. Thus, for example, it is possible to easily set the positions of the inlet tube 42 and the outlet tube 43 close to each other, and to reduce a routing space and the like for connection to a pump, for example.
(3) The turnback tube 41 is disposed inside the grommet 62, and thus, for example, the turnback tube 41 can be easily housed. Even in a case where, for example, the turnback tube 41 is configured such that it cannot be sharply bent, and a large space is required, such a case can be easily addressed without increasing the entire size of the tubular exterior member 61. Moreover, for example, if the grommet 62 is shaped such that the size thereof increases toward a member that is connected thereto, the turnback tube 41 can be easily housed in a large space.
(4) The protective layers 22b and 32b that cover the inner circumferential surfaces of the first tubular conductor 21 and the second tubular conductor 31 are provided, and thus the protective layer 22b and 32b make it possible to prevent the coolant 73 that is supplied to the inside of the first tubular conductor 21 and the second tubular conductor 31 from coming in to direct contact with the inner circumferential surfaces of the first tubular conductor 21 and the second tubular conductor 31.
(5) As a result of the flexible conductors 23 and 24 being connected to the end portions of the first tubular conductor 21 and the second tubular conductor 31, dimensional tolerance of the conductive paths 11 can be absorbed. Further, this configuration is a counter measure against swinging that occurs while a vehicle is travelling.
(6) The first tubular conductor 21 and the second tubular conductor 31 are longer than the flexible conductors 23 and 24, and thus sections in which heat exchange takes place between the coolant 73 and the first tubular conductor 21 and the second tubular conductor 31 are long, making it possible to further cool the first tubular conductor 21 and the second tubular conductor 31.
(7) The electromagnetic shield member 50 is a braided member formed by braiding metal strands into a tubular shape, and the cooling tube 40, specifically the inlet tube 42 and the outlet tube 43, extend through the braided member, and thus both the shielding properties for suppressing radiation of electromagnetic noise originating from the conductive paths 11 to the outside and an improvement in the ease of assembly of the cooling portion can be achieved.
(8) Since the cooling tube 40, specifically the inlet tube 42 and the outlet tube 43, extend through the grommet 63 so as to be led to the outside, degradation of the water blocking properties of the wire harness unit 10 can be suppressed.
The present embodiment can be modified and implemented as follows. The present embodiment and the variations below may be implemented in combination with each other as long as no technical contradictions arise.
As shown in
In the above embodiment, the number of conductive paths included in the plurality of conductive paths 11 is an even number, but there is no limitation thereto, and the number of conductive paths may be an odd number of three or more, or may be an even number of four or more. A configuration may be adopted in which, for example, the number of conductive paths 11 is three, and the cooling tube 40 includes two turnback tubes 41. Moreover, a configuration may also be adopted in which, for example, the number of conductive paths 11 is four, for example, and the cooling tube 40 includes three turnback tubes 41.
Number | Date | Country | Kind |
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2020-142641 | Aug 2020 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2021/028871 | 8/4/2021 | WO |