Harness heat dissipation structure
The harness heat dissipation structure addresses inefficiencies in wire harness heat dissipation by using a pressing member to press flat wire portions against a thick vehicle body portion, enhancing thermal conduction and reducing temperature rise and costs.
Patent Information
- Application Number
- JP2023213084
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-12-18
- Publication Date
- 2025-10-15
- Estimated Expiration
- 2043-12-18
AI Technical Summary
Existing wire harnesses in vehicles face inefficiencies in heat dissipation due to the limited heat capacity of vehicle bodies, which are typically made of iron or steel plates, leading to insufficient thermal conduction from the wires to the vehicle body.
A harness heat dissipation structure that includes a wire harness with flat portions and a pressing member that presses the wire against a thick portion of the vehicle body, utilizing a heat-conducting member and a heat dissipation sheet to enhance thermal conduction and increase the heat capacity of the vehicle body.
The structure efficiently dissipates heat generated in the wire harness, reducing temperature rise and component size, weight, and manufacturing costs while improving heat dissipation performance.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a harness heat dissipation structure. [Background technology]
[0002] Wire harnesses used in vehicles such as electric vehicles and plug-in hybrid vehicles include electric wires that electrically connect a high-voltage battery to an inverter or other electrical equipment (see, for example, Patent Document 1). The wire harness described in Patent Document 1 includes a plurality of electric wires, a pair of connectors attached to both ends of the electric wires, a plurality of exterior members into which the plurality of electric wires are inserted one by one, and a plurality of clamps. Each exterior member protects the electric wires from, for example, flying objects or water droplets. The plurality of exterior members are fixed to the vehicle body or the like by clamps. With this configuration, heat generated in the electric wires can be transferred to the vehicle body, which has a large surface area, through the exterior members and the clamps. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Publication No. 2020-21556 Summary of the Invention [Problem to be solved by the invention]
[0004] As vehicles become more electrified, larger currents flow through wire harnesses, and as this current increases, measures are needed to deal with Joule heat generated in the wires of the wire harness. When a wire harness is fixed to a vehicle body for the purpose of heat dissipation, as in Patent Document 1, the vehicle body is generally made of iron or steel plate, and therefore has a relatively small heat capacity, so heat dissipation by thermal conduction from the wires of the wire harness to the vehicle body may not be sufficient.
[0005] The present invention has been made in view of the problems inherent in the conventional art, and an object of the present invention is to provide a harness heat dissipation structure that can efficiently dissipate heat generated in the electric wires of a wire harness. [Means for solving the problem]
[0006] A harness heat dissipation structure according to an embodiment of the present invention includes a wire harness arranged in a vehicle body, and a pressing member that presses the wire harness against the vehicle body, wherein the wire harness includes electric wires having conductive conductor cores and insulating coverings that cover the conductor cores, the electric wires having flat portions that have a flat cross-sectional shape in a direction perpendicular to the wiring direction of the wire harness, and the vehicle body has thick portions that are thicker than surrounding portions at locations where the pressing member is attached and where the flat portions of the electric wires in the wire harness are pressed by the pressing member. [Effects of the Invention]
[0007] According to the present invention, it is possible to provide a harness heat dissipation structure that can efficiently dissipate heat generated in the electric wires of the wire harness. [Brief explanation of the drawings]
[0008] [Figure 1] 1 is a diagram showing a schematic configuration of high-voltage wiring of an electric vehicle to which the present embodiment is applied; [Figure 2] 1 is a schematic perspective view showing an example of a harness heat dissipation structure according to an embodiment of the present invention; [Figure 3] 1 is a schematic cross-sectional view showing an example of a harness heat dissipation structure according to an embodiment of the present invention. [Figure 4] FIG. 1 is a schematic perspective view showing an example of an electric wire of a wire harness. [Figure 5] FIG. 5 is a cross-sectional view taken along line AA in FIG. [Figure 6] FIG. 5 is a cross-sectional view taken along line BB in FIG. [Figure 7] FIG. 10 is a schematic cross-sectional view showing a harness heat dissipation structure according to another embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0009] The harness heat dissipation structure according to the present embodiment will be described in detail below with reference to the drawings. Note that the dimensional proportions in the drawings are exaggerated for the sake of convenience and may differ from the actual proportions.
[0010] The harness heat dissipation structure 1 according to this embodiment can be applied to high-voltage wiring of an electric vehicle as shown in FIG.
[0011] As shown in Fig. 1, a vehicle 100 has an inverter 101 and a motor 103 disposed as load units, for example, on the front side in the vehicle longitudinal direction. The inverter 101 is electrically connected to a high-voltage battery 107 via a front high-voltage wiring 105, and converts DC power supplied from the high-voltage battery 107 via the front high-voltage wiring 105 into AC power. The inverter 101 also supplies the converted AC power to the motor 103. The motor 103 is driven by the power supplied from the inverter 101, and rotates front wheels 109 via a drive shaft or the like of the vehicle 100.
[0012] Vehicle 100 also has a charging port 111 disposed, for example, on the rear side in the vehicle longitudinal direction. Charging port 111 has a charging inlet to which an external charging device (not shown) serving as a charger is connected. Charging port 111 is electrically connected to high-voltage battery 107 via rear high-voltage wiring 113, and supplies power from the external charging device via rear high-voltage wiring 113 to high-voltage battery 107.
[0013] As shown in FIGS. 2 and 3, the harness heat dissipation structure 1 according to this embodiment includes a wire harness 3 and a pressing member 5.
[0014] The wire harness 3 is routed in a body panel 115 (see FIG. 1) that constitutes a part of the body of the vehicle 100. The wire harness 3 includes an electric wire 10 having a conductive conductor core wire 11 and an insulating coating 13 that covers the conductor core wire 11, and the conductor core wire 11 of the electric wire 10 is made of a metal material such as copper or aluminum. The wire harness 3 has a plurality of electric wires 10 (two in this embodiment), but is not limited thereto, and the wire harness 3 may have a single electric wire 10.
[0015] 4 to 6 , the electric wire 10 has a flat portion 15 having a flat cross section in a direction perpendicular to the wiring direction of the wire harness 3. In this embodiment, the portion of the electric wire 10 other than the flat portion 15 is formed as a circular portion 17 having a circular cross section in a direction perpendicular to the wiring direction of the wire harness 3. That is, in this embodiment, the flat portion 15 is partially formed by flattening a portion of the wire harness 3 that is pressed against a thick portion 117 of a body panel 115 (described later). However, the present invention is not limited to this, and the flat portion 15 may be formed entirely on the wire harness 3, for example, as in a flat cable.
[0016] 2 and 3, in this embodiment, the electric wire 10 is disposed so that its upper and lower surfaces are substantially parallel to the upper surface of the body panel 115. Therefore, the upper surface of the electric wire 10 faces an upper surface portion 21 of the pressing member 5, which will be described later, and the lower surface of the electric wire 10 faces a thick portion 117 of the body panel 115.
[0017] The pressing member 5 is used to press the wire harness 3 against the body panel 115. The pressing member 5 may be made of a synthetic resin material or a metal material. In this embodiment, the pressing member 5 has an upper surface portion 21 extending in a direction intersecting the routing direction of the wire harness 3, and a pair of side surface portions 23, 23 extending from both ends of the upper surface portion 21 in the extending direction toward the thick portion 117 of the body panel 115. The pressing member 5 further has a pair of flange portions 25, 25 extending in directions away from each other from the lower end of the side surface portion 23 and joined to the thick portion 117 using a joining member such as a bolt 7, and is formed into a hat-shaped cross section.
[0018] The flat portion 15 of the electric wire 10 pressed against the body panel 115 is arranged in a space surrounded by the upper surface portion 21 of the pressing member 5, the pair of side surfaces 23, 23, and the thick portion 117 of the body panel 115.
[0019] A heat-conducting member 40 having thermal conductivity is disposed around the flat portion 15 of the electric wire 10 to fill the periphery of the flat portion 15 and efficiently transfer heat generated in the flat portion 15 to the thick portion 117 of the body panel 115. The heat-conducting member 40 is formed of, for example, thermal paste or a heat-conducting resin.
[0020] Further, a metal plate 41 is arranged in the pressing member 5 to accommodate and hold the flat portion 15 of the electric wire 10 covered with the heat conducting member 40 in the aforementioned space in the pressing member 5.
[0021] Furthermore, a heat dissipation sheet 30 serving as a heat dissipation member having thermal conductivity is disposed between the flat portion 15 of the electric wire 10 and the thick portion 117 of the body panel 115 in order to efficiently transfer heat generated in the flat portion 15 of the electric wire 10 to the thick portion 117 of the body panel 115. This heat dissipation sheet 30 is also called a thermally conductive sheet, and is disposed in close contact with the metal plate 41 and the thick portion 117 of the body panel 115.
[0022] The wire harness 3 and the pressing member 5 are disposed on the interior side of the body panel 115 (above the floor).
[0023] The body panel 115 has a thick portion 117 formed thicker than the surrounding portion at a location where the pressing member 5 is attached and where the flat portion 15 of the electric wires 10 in the wire harness 3 is pressed by the pressing member 5. A general portion 119 that is thinner than the thick portion 117 is formed around the thick portion 117 in the body panel 115. The thick portion 117 is formed so as to protrude into the passenger compartment of the body panel 115. A metal plate that forms part of the thick portion 117 may be attached by welding or the like to the body panel 115 made of an iron plate or steel plate. When the body panel 115 is produced by casting, the thick portion 117 may be molded integrally with the body panel 115 during casting. That is, the thick portion 117 may be formed integrally with the body panel 115, or may be formed separately from the body panel 115 and attached to the body panel 115.
[0024] As described above, the harness heat dissipation structure 1 according to this embodiment includes the wire harness 3 arranged in the body (body panel 115) of the vehicle 100, and the pressing member 5 that presses the wire harness 3 against the vehicle body (body panel 115). The wire harness 3 includes an electric wire 10 having a conductive conductor core wire 11 and a covering insulator 13 that covers the conductor core wire 11, and the electric wire 10 has a flat portion 15 that has a flat cross section in a direction perpendicular to the wiring direction of the wire harness 3. The vehicle body (body panel 115) has a thick portion 117 that is thicker than the surrounding area at a location where the pressing member 5 is attached and where the flat portion 15 of the electric wire 10 in the wire harness 3 is pressed by the pressing member 5.
[0025] By using the pressing member 5 to press the electric wire 10 against the body panel 115, Joule heat generated in the electric wire 10 can be transferred to the body panel 115 and dissipated, thereby suppressing a temperature rise in the wire harness 3. This makes it possible to avoid increasing the size of the components (particularly the conductor core wire 11) that constitute the wire harness 3 in order to suppress heat generation in the wire harness 3, thereby making it possible to reduce the weight of the wire harness 3 and the manufacturing cost.
[0026] The electric wire 10 has a flat portion 15, and by pressing the flat portion 15 against the body panel 115 using the pressing member 5, it is possible to increase the surface area in contact with the body panel 115 compared to a typical electric wire having a circular cross section. Furthermore, by pressing the flat portion 15 against the body panel 115 using the pressing member 5, it is possible to sufficiently transfer heat generated in the electric wire 10 to the body panel 115, and it is possible to suppress a temperature rise in the wire harness 3.
[0027] Furthermore, by forming the thick portion 117 at the portion of the body panel 115 where the electric wire 10 is pressed by the pressing member 5, it is possible to increase the heat capacity of the body panel 115, thereby suppressing or delaying the temperature rise time of the wire harness 3. This makes it possible to avoid increasing the size of the components (particularly the conductor core wires 11) that constitute the wire harness 3 in order to suppress heat generation in the wire harness 3, and it is possible to reduce the weight of the wire harness 3 and the manufacturing cost.
[0028] As described above, according to this embodiment, it is possible to provide the harness heat dissipation structure 1 that can efficiently dissipate the heat generated in the electric wires 10 of the wire harness 3.
[0029] In the harness heat dissipation structure 1, a heat dissipation member (heat dissipation sheet 30) having thermal conductivity may be disposed between the flat portion 15 of the electric wire 10 and the thick portion 117 of the vehicle body (body panel 115).
[0030] By placing the heat dissipation sheet 30 on the part of the electric wire 10 facing the body panel 115, the gap between the electric wire 10 and the body panel 115 can be filled, and heat can be efficiently transferred from the electric wire 10 to the body panel 115.
[0031] In the harness heat dissipation structure 1, a heat-conducting member 40 having thermal conductivity may be arranged on the outer periphery of the flat portion 15 of the electric wire 10.
[0032] By filling the area around the flat portion 15 of the electric wire 10 with the heat conducting member 40, heat can be efficiently conducted from the electric wire 10 to the body panel 115.
[0033] In the harness heat dissipation structure 1, the pressing member 5 may have an upper surface portion 21 extending in a direction intersecting the routing direction of the wire harness 3, and a pair of side surfaces 23, 23 extending from both ends of the upper surface portion 21 in the extending direction toward a thick portion 117 of the vehicle body (body panel 115). The pressing member 5 may further have a pair of flanges 25, 25 extending in directions away from each other from the lower end of the side surface portion 23 and coupled to the thick portion 117, and may be formed with a hat-shaped cross section. The flat portion 15 of the electric wire 10 pressed against the vehicle body (body panel 115) may be disposed in a space surrounded by the upper surface portion 21 of the pressing member 5, the pair of side surfaces 23, 23, and the thick portion 117 of the vehicle body (body panel 115).
[0034] By pressing the electric wire 10 against the body panel 115 using a pressing member 5 formed with a hat-shaped cross section, the heat generated in the electric wire 10 can be sufficiently transferred to the body panel 115, thereby improving the heat dissipation performance of the harness heat dissipation structure 1.
[0035] [Other embodiments] A harness heat dissipation structure 1A according to another embodiment will be described below with reference to Fig. 7. Components that are substantially the same as those in the harness heat dissipation structure 1 described above are given the same reference numerals, and descriptions thereof will be omitted.
[0036] As shown in FIG. 7 , in the harness heat dissipation structure 1A, a plurality of heat dissipation fins 121 are formed on the outer side of the vehicle cabin (underfloor side) of the body panel 115 where the thick-walled portion 117 is formed. The attachment direction and shape of the heat dissipation fins 121 can be appropriately set so that air heated by heat conduction from the electric wires 10 does not stagnate between the plurality of heat dissipation fins 121. The metal material constituting the heat dissipation fins 121 may be attached by welding or the like to the body panel 115 made of an iron plate or steel plate. When the body panel 115 is produced by casting, the heat dissipation fins 121 may be molded integrally with the body panel 115 during casting. That is, the heat dissipation fins 121 may be formed integrally with the body panel 115, or may be formed separately from the body panel 115 and attached to the body panel 115.
[0037] In this way, in the harness heat dissipation structure 1A, the wire harness 3 and the pressing member 5 may be arranged on the passenger compartment side (above the floor) of the vehicle body (body panel 115). A heat dissipation fin 121 may be formed on the passenger compartment side (under the floor) of the vehicle body (body panel 115) at a location where the thick-walled portion 117 is formed.
[0038] By forming heat dissipation fins 121 on the back side of the mounting surface of the body panel 115 to which the electric wires 10 are attached, and increasing the area (surface area) of the body panel 115 that comes into contact with the outside air, it is possible to further improve the heat dissipation performance of the harness heat dissipation structure 1.
[0039] Although the present embodiment has been described above, the present embodiment is not limited to this, and various modifications are possible within the scope of the gist of the present embodiment. [Explanation of symbols]
[0040] 1. Harness heat dissipation structure 3 Wire harness 5 Pressing member 10 Electric wire 11 Conductor core wire 13 Coated insulation 15 Flat part 21 Top part 23 Side part 25 flange 30 Heat dissipation sheet 40 Thermal Conduction Material 100 vehicles 115 body panels 117 Thick wall part 121 Heat dissipation fin
Claims
1. a wire harness arranged in a vehicle body; a pressing member that presses the wire harness against the vehicle body, The wire harness includes an electric wire having a conductive conductor core wire and an insulating coating covering the conductor core wire, the electric wire has a circular portion having a circular cross section in a direction perpendicular to the wiring direction of the wire harness, and the electric wire is partially formed with a flat portion having a flat cross section in a direction perpendicular to the wiring direction of the wire harness, The vehicle body has a thick portion formed to be thicker than a surrounding portion at a location where the pressing member is attached and where the flat portion of the electric wire in the wire harness is pressed by the pressing member. Harness heat dissipation structure.
2. The harness heat dissipation structure according to claim 1 , further comprising a heat-conductive heat dissipation member disposed between the flat portion of the electric wire and the thick portion of the vehicle body.
3. the wire harness and the pressing member are disposed on the interior side of the vehicle body, a heat dissipation fin is formed on the outer side of the vehicle cabin at a location where the thick-walled portion is formed in the vehicle body; The harness heat dissipation structure according to claim 1 or 2.
4. The harness heat dissipation structure according to claim 1 or 2, wherein a heat-conducting member having thermal conductivity is disposed on an outer periphery of the flat portion of the electric wire.
5. The pressing member is an upper surface portion extending along a direction intersecting a wiring direction of the wire harness; a pair of side surfaces extending from both ends of the upper surface portion in an extension direction toward the thick portion of the vehicle body; a pair of flange portions extending from lower ends of the side surfaces in directions away from each other and connected to the thick-walled portion; and the flange portions are formed in a hat-shaped cross section; the flat portion of the electric wire pressed against the vehicle body is disposed in a space surrounded by an upper surface portion of the pressing member, the pair of side surfaces, and the thick portion of the vehicle body. The harness heat dissipation structure according to claim 1 or 2.
Citation Information
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