Cable routing structure
The wiring structure uses a protector, rotating member, and a spiral spring to conceal electric wires, addressing the visibility issue in sliding door wiring by ensuring they are not visible from the vehicle body side, enhancing aesthetic appeal.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-09-04
- Publication Date
- 2026-03-16
AI Technical Summary
Existing wiring structures for sliding doors do not effectively conceal electric wires, making them visually recognizable, especially when the rotating member rotates, affecting the appearance.
A wiring structure that includes a protector, a rotating member, and a shielding member with a spiral spring that unwinds or winds onto a rotating shaft to close the opening between the protector and the rotating member, concealing the electric wires.
The wiring structure effectively hides the electric wires within the protector, improving the appearance by minimizing visibility from the vehicle body side, even when the sliding door is in various positions.
Smart Images

Figure 2026047489000001_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to a wiring structure.
Background Art
[0002] Conventionally, there is a wiring structure for a sliding door. Patent Document 1 discloses a power supply device including a rotating member and a support member that rotatably supports the rotating member. The rotating member includes an outer peripheral portion, a harness lead-out portion disposed on the outer peripheral portion, and a finishing wall provided along the outer peripheral portion from the harness lead-out portion. The rotation center of the rotating member is eccentrically disposed with respect to the outer peripheral portion. The support member has an opening that positions the harness lead-out portion rotatably, and the finishing wall closes the opening when the rotating member rotates in one direction.
Prior Art Documents
Patent Documents
[0003]
Patent Document 1
Summary of the Invention
Problems to be Solved by the Invention
[0004] Regarding a configuration for making the electric wire difficult to be visually recognized, there is still room for consideration. For example, since the above-mentioned finishing wall rotates together with the rotating member, it is necessary to design the entire power supply device in consideration of the rotation locus of the finishing wall. Regarding a configuration in which the electric wire is covered by a member different from the rotating member, room for consideration remains.
[0005] An object of the present invention is to provide a wiring structure in which the electric wire inside the protector is difficult to be visually recognized.
Means for Solving the Problems
[0006] The wiring structure of the present invention comprises: an electric wire routed between the vehicle body and the sliding door; a protector positioned on the sliding door and having an entrance portion facing the vehicle body and an exit portion through which the electric wire is pulled out toward the sliding door; a cylindrical rotating member positioned at the entrance portion and rotatably supported by the protector, through which the electric wire is inserted; and a shielding member that closes an opening that occurs between the protector and the rotating member as the rotating member rotates, wherein the shielding member is one of the protector and the rotating member. The shielding member comprises a rotating shaft rotatably supported by a rotating member and a spiral spring, wherein the spiral spring has a first end which is the center in the spiral direction and a second end which is the end opposite to the first end, and the first end is held by the rotating shaft, and the second end of the spiral spring is held by the other of the protector and the rotating member, and the shielding member follows the rotation of the rotating member by unwinding the spiral spring from the rotating shaft or winding the spiral spring onto the rotating shaft while closing the opening. [Effects of the Invention]
[0007] In the wiring structure according to the present invention, the shielding member extends a spiral spring from the rotating shaft in accordance with the rotation of the rotating member, or winds the spiral spring onto the rotating shaft, thereby closing the opening. The wiring structure according to the present invention has the effect of making the electric wires inside the protector difficult to see. [Brief explanation of the drawing]
[0008] [Figure 1] Figure 1 is a plan view of the cable routing structure according to the embodiment. [Figure 2] Figure 2 is a plan view of the cable routing structure according to the embodiment. [Figure 3] Figure 3 is a perspective view of the cable routing structure according to the embodiment. [Figure 4] Figure 4 is a plan view showing the inside of the protector according to the embodiment. [Figure 5] Figure 5 is an exploded perspective view of the protector according to this embodiment. [Figure 6] Figure 6 is an exploded perspective view of the rotating member according to the embodiment. [Figure 7] Figure 7 is a perspective view of the shielding member according to the embodiment. [Figure 8] Figure 8 is a perspective view of the cable routing structure according to the embodiment. [Figure 9] Figure 9 is a plan view showing the inside of the protector according to the embodiment. [Figure 10] Figure 10 is a plan view showing the inside of the protector according to the embodiment. [Figure 11] Figure 11 is a side view of the cable routing structure according to the embodiment. [Modes for carrying out the invention]
[0009] The cable routing structure according to an embodiment of the present invention will be described in detail below with reference to the drawings. However, this embodiment does not limit the present invention. Furthermore, the components in the following embodiments include those that are easily conceivable by those skilled in the art or that are substantially identical.
[0010] [Embodiment] Embodiments will be described with reference to Figures 1 to 11. This embodiment relates to a cable routing structure. Figures 1 and 2 are plan views of the cable routing structure according to the embodiment, Figure 3 is a perspective view of the cable routing structure according to the embodiment, Figure 4 is a plan view showing the interior of the protector according to the embodiment, Figure 5 is an exploded perspective view of the protector according to the embodiment, Figure 6 is an exploded perspective view of the rotating member according to the embodiment, Figure 7 is a perspective view of the shielding member according to the embodiment, Figure 8 is a perspective view of the cable routing structure according to the embodiment, Figures 9 and 10 are plan views showing the interior of the protector according to the embodiment, and Figure 11 is a side view of the cable routing structure according to the embodiment.
[0011] As shown in Figures 1 to 3, the wiring structure 1 of this embodiment is a wiring structure for a sliding door and includes a protector 2, a rotating member 3, a shielding member 4, and an electric wire W. As shown in Figures 1 and 2, the electric wire W connects the vehicle body 110 and the sliding door 120 of the vehicle 100. The electric wire W is connected to a power source such as a battery and a control unit such as an ECU in the vehicle body 110.
[0012] The sliding door 120 slides along a first direction X relative to the vehicle body 110. The first direction X is, for example, the longitudinal direction of the vehicle 100. The sliding door 120 opens and closes an opening in the vehicle 100 by moving along a front X1 and a rear X2. The sliding door 120 slides while being guided by, for example, a rail positioned on the vehicle body 110. The sliding door 120 may also slide by the operation of a link mechanism connecting the vehicle body 110 and the sliding door 120.
[0013] Figure 1 shows the wiring structure 1 when the sliding door 120 is in the fully closed position. When the sliding door 120 is in the fully closed position, as shown in Figure 1, the electric wire W extends from the protector 2 in the first direction X. At this time, the rotating member 3 protrudes from the protector 2 along the first direction X. Figure 2 shows the wiring structure 1 when the sliding door 120 is in the fully open position. When the sliding door 120 is in the fully open position, as shown in Figure 2, the electric wire W extends from the protector 2 in the second direction Y. The second direction Y is, for example, the width direction of the vehicle 100. When the sliding door 120 is in the fully open position, the rotating member 3 protrudes from the protector 2 toward the space 130 on the side of the vehicle body 110. In other words, the rotating member 3 protrudes from the protector 2 along the second direction Y.
[0014] In the wiring structure 1 of this embodiment, the rotation angle of the rotating member 3 when the sliding door 120 moves between the fully closed position and the fully open position is greater than 90°. As shown in FIG. 1, when the sliding door 120 is in the fully closed position, the rotating member 3 protrudes from the protector 2 toward the rear side X2. As shown in FIG. 2, when the sliding door 120 is in the fully open position, the rotating member 3 protrudes obliquely forward from the protector 2.
[0015] The protector 2 is disposed on the sliding door 120 and held by the sliding door 120. The rotating member 3 is rotatably supported by the protector 2. As shown in FIGS. 1 and 2, the rotating member 3 rotates following the change in the extending direction of the electric wire W due to the movement of the sliding door 120.
[0016] A cylindrical exterior member 5 may be disposed between the rotating member 3 and the vehicle body 110. In this case, the rotating member 3 holds one end portion 5a of the exterior member 5. The other end portion of the exterior member 5 is held by a holding member disposed on the vehicle body 110. The electric wire W is inserted through the exterior member 5 and protected by the exterior member 5. The exterior member 5 is a flexible member, for example, a member called a corrugated tube.
[0017] The shielding member 4 shown in FIG. 3 is a member that shields the electric wire W inside the protector 2 from the space 130 on the vehicle body 110 side. The shielding member 4 of this embodiment has a spiral spring 40 and is configured to pay out the spiral spring 40 or wind up the spiral spring 40 while following the rotation of the rotating member 3.
[0018] As shown in Figure 3, an opening 10 is formed between the protector 2 and the rotating member 3. The opening 10 is formed between the first side wall 61 of the protector 2 and the first side wall 81 of the rotating member 3. The opening 10 is open toward the vehicle body 110. If there is no shielding member 4, the electric wires W routed inside the protector 2 will be visible from the vehicle body 110 side, which may affect the appearance of the wiring structure 1. For example, when fully closed as shown in Figure 3, the opening width of the opening 10 is at its maximum, making the internal structure of the protector 2 easily visible to passengers in the vehicle 100.
[0019] In the wiring structure 1 of this embodiment, the spiral spring 40 of the shielding member 4 closes the opening 10, concealing the electric wire W from the side of the vehicle body 110. As a result, the wiring structure 1 of this embodiment improves the appearance when viewed from the side of the vehicle body 110.
[0020] As shown in Figure 4, the shielding member 4 has a spiral spring 40, a rotating shaft 41, and a pin 42. The rotating shaft 41 is held by the body 6 of the protector 2. The pin 42 is held by the body 8 of the rotating member 3. The pin 42 moves away from or towards the rotating shaft 41 in response to the rotation of the rotating member 3.
[0021] The spiral spring 40 is a spring formed by winding a thin sheet of metal or the like in a spiral shape, and is also called a mainspring. The spiral spring 40 in this embodiment is a light-shielding member. The spiral spring 40 has a first end 40a and a second end 40b. The first end 40a is the end at the center of the spiral direction when the spiral spring 40 is helically contracted. The second end 40b is the end of the spiral spring 40 opposite to the first end 40a. That is, the second end 40b is the outer end in the spiral direction when the spiral spring 40 is helically contracted.
[0022] The first end 40a of the spiral spring 40 is held by a rotating shaft 41. The first end 40a may be joined to the rotating shaft 41, fixed to the rotating shaft 41 with an adhesive or the like, inserted into and fixed to the rotating shaft 41, or fixed to the rotating shaft 41 by other means. The second end 40b of the spiral spring 40 is held by a pin 42. The second end 40b may be joined to the pin 42, fixed to the pin 42 with an adhesive or the like, inserted into and fixed to the pin 42, or fixed to the pin 42 by other means.
[0023] The rotating member 3 rotates around the rotation axes 84 and 94 (see Figure 6) as indicated by the arrow AR1 in Figure 4. When the rotation of the rotating member 3 moves the pin 42 away from the rotation axis 41, the pin 42 pulls the spiral spring 40. This causes the spiral spring 40 to unwind from the rotation axis 41. On the other hand, when the rotation of the rotating member 3 moves the pin 42 closer to the rotation axis 41, the spiral spring 40 is wound around the rotation axis 41 by the elastic restoring force of the spiral spring 40. At this time, the spiral spring 40 wraps around the rotation axis 41 while rotating the rotation axis 41.
[0024] The rotating shaft 41 and pin 42 are positioned on side Y1 of the vehicle body 110 relative to the wires W inside the protector 2. In other words, the rotating shaft 41 and pin 42 are positioned so as to position the spiral spring 40 on side Y1 of the vehicle body 110 relative to the wires W inside the protector 2. The spiral spring 40 is also positioned so as not to interfere with the wires W when the rotating member 3 rotates.
[0025] As shown in Figure 4, the spiral spring 40 unwound from the rotating shaft 41 has a curved shape and closes the opening 10. More specifically, the spiral spring 40 is curved toward the opposite side of the wire W with respect to the imaginary line IL. The imaginary line IL is a straight line connecting the central axis of the rotating shaft 41 and the central axis of the pin 42. As shown in Figure 4, the middle portion 40c of the spiral spring 40 has a convex shape that faces toward the opposite side of the wire W. Because the spiral spring 40 is curved outward, most of the internal structure of the protector 2 is covered. Therefore, the spiral spring 40 of this embodiment can appropriately shield the internal space of the protector 2 from the vehicle body 110.
[0026] As shown in Figure 5, the protector 2 has a body 6 and a cover 7. The body 6 and cover 7 are molded from, for example, an insulating synthetic resin. The cover 7 engages with the body 6 to form a cylindrical passage through which the electric wire W is routed.
[0027] The main body 6 has a groove-shaped cable routing path 60. The cable routing path 60 has a first side wall 61, a second side wall 62, and a bottom wall 63. The first side wall 61 and the second side wall 62 are erected from the widthwise ends of the bottom wall 63 and face each other in the widthwise direction of the bottom wall 63. The protector 2 is fixed to the sliding door 120 such that the cable routing path 60 extends in the first direction X and the first side wall 61 faces the vehicle body 110. In other words, the first side wall 61 is located on side Y1 of the vehicle body 110 relative to the second side wall 62.
[0028] The cable routing 60 has an inlet 60a and an outlet 60b. The inlet 60a is the end of the cable routing 60 on the side of the vehicle body 110. The inlet 60a opens facing the side Y1 of the vehicle body 110. The inlet 60a also opens toward the rear X2 so that the rotating member 3 can protrude toward the rear X2.
[0029] The exit section 60b is the end from which the electric wire W is pulled out toward the sliding door 120. The exit section 60b is open toward the upper side in the vehicle's vertical direction Z. That is, the electric wire W is routed inside the cable routing 60 in a curved shape. The electric wire W extends horizontally from the inlet section 60a and extends toward the upper side in the vehicle's vertical direction Z from the exit section 60b.
[0030] The bottom wall 63 has support holes 63a and 63b. The support hole 63a rotatably supports the rotating member 3. The support hole 63a is a recess that is recessed toward the lower side in the vehicle's vertical direction Z, or a through hole that penetrates the bottom wall 63. The support hole 63a is located at the entrance portion 60a.
[0031] The support hole 63b rotatably supports the rotation axis 41 of the shielding member 4. The support hole 63b is a recess that is recessed toward the lower side in the vertical direction Z of the vehicle, or a through hole that penetrates the bottom wall 63. In this embodiment, the support hole 63b is a through hole. The support hole 63b is located near the entrance portion 60a and near the first side wall 61. It is preferable that the support hole 63b is located in a position where it is hidden by the first side wall 61 when viewed from the second direction Y.
[0032] The cover 7 is a component that engages with the main body 6 to cover the cable routing 60 and form a cylindrical passage. The cover 7 has two support holes corresponding to support holes 63a and 63b. The support hole corresponding to support hole 63a rotatably supports the rotating member 3. The support hole corresponding to support hole 63b rotatably supports the rotating shaft 41. In other words, the protector 2 rotatably supports both ends of the rotating shaft 41.
[0033] As shown in Figure 4, the rotating member 3 is positioned at the inlet 60a of the protector 2. As shown in Figure 6, the rotating member 3 has a body 8 and a cover 9. The body 8 and cover 9 are molded from, for example, an insulating synthetic resin. The engagement of the cover 9 with the body 8 forms a cylindrical passage through which the electric wire W is inserted.
[0034] The main body 8 has a groove-shaped cable routing path 80. The cable routing path 80 has a first side wall 81, a second side wall 82, and a bottom wall 83. The first side wall 81 and the second side wall 82 are erected from the widthwise ends of the bottom wall 83 and face each other in the widthwise direction of the bottom wall 83. When the sliding door 120 is in the fully closed position, the first side wall 81 faces the vehicle body 110. That is, when the sliding door 120 is in the fully closed position, the first side wall 81 is located on the side of the vehicle body 110 relative to the second side wall 82.
[0035] The cable routing 80 has an inlet 80a and an outlet 80b. The inlet 80a is the end of the cable routing 80 on the vehicle body 110 side. The inlet 80a is provided with a rib for locking the end 5a of the exterior member 5. The outlet 80b is the end of the protector 2 from which the electric wire W is pulled out toward the cable routing 60. The rotating member 3 rotates relative to the protector 2 with the outlet 80b as its center.
[0036] The main body 8 has a rotating shaft 84. The rotating shaft 84 is inserted into a support hole 63a of the protector 2 and is rotatably supported by the support hole 63a. The rotating shaft 84 protrudes from the bottom wall 83 toward the side opposite the side walls 81 and 82.
[0037] The bottom wall 83 has a support hole 83a. The support hole 83a is a recess that is recessed toward the lower side in the vertical direction of the vehicle, or a through hole that penetrates the bottom wall 83. The support hole 83a supports the pin 42 of the shielding member 4. The pin 42 may be rotatably inserted into the support hole 83a, or it may be press-fitted so that it cannot rotate relative to the pin. The support hole 83a is located in the exit portion 80b and is located near the first side wall 81. The support hole 83a may be positioned so that it is hidden by the first side wall 81 when viewed from the second direction Y.
[0038] The cover 9 is a member that engages with the main body 8 to cover the cable routing 80 and form a cylindrical passage. The cover 9 has a top wall 93 and a rotating shaft 94. The top wall 93 is a wall portion that faces the bottom wall 83 in the vehicle's vertical direction. The rotating shaft 94 protrudes from the top wall 93 toward the side opposite to the bottom wall 83. The rotating shaft 94 is rotatably supported by the cover 7 of the protector 2. The top wall 93 has a support hole corresponding to the support hole 83a. The support hole in the top wall 93 supports the pin 42. In other words, the rotating member 3 supports both ends of the pin 42. The pin 42 may be rotatably inserted into the support hole in the top wall 93, or it may be press-fitted so as not to rotate relative to the pin.
[0039] As shown in Figure 7, the rotating shaft 41 and the pin 42 have a cylindrical shape. The first end 40a of the spiral spring 40 shown in Figure 7 is wrapped around and fixed to the rotating shaft 41. The second end 40b is wrapped around and fixed to the pin 42.
[0040] The shielding member 4 has a fastener 43 that is fixed to the rotating shaft 41. The fastener 43 is fixed to the tip of the rotating shaft 41, which is inserted into the support hole 63b of the protector 2, and functions as a retainer. The rotating shaft 41 and the pin 42 have flanges that determine their axial position.
[0041] Figure 8 shows the wiring structure 1 when the sliding door 120 is in a half-open state. In the half-open state, the opening width Wd of the opening 10 is narrower compared to the fully closed state in Figure 3. As shown in Figure 8, the shielding member 4 can close the opening 10 and cover the electric wires W inside the protector 2.
[0042] Figure 9 shows the inside of the protector 2 when the sliding door 120 is in a half-open position. The distance between the rotating shaft 41 and the pin 42 in the half-open position is narrower than the distance between the rotating shaft 41 and the pin 42 in the fully closed position shown in Figure 4. In other words, when the sliding door 120 moves from the fully closed position to the half-open position, the spiral spring 40 of the shielding member 4 is wound onto the rotating shaft 41. Conversely, when the sliding door 120 moves from the half-open position to the fully closed position, the spiral spring 40 of the shielding member 4 is unwound from the rotating shaft 41.
[0043] Figure 10 shows the inside of the protector 2 when the sliding door 120 is fully open. The distance from the pivot shaft 41 to the pin 42 is narrowest when the door is fully open. In other words, the position of the pin 42 on the rotating member 3 is the position where the pin 42 is closest to the pivot shaft 41 when the sliding door 120 is fully open. Thus, the wiring structure 1 of this embodiment is configured such that the pin 42 is closest to the pivot shaft 41 when the door is fully open, and furthest from the pivot shaft 41 when the door is fully closed.
[0044] In the fully open position, the first side wall 81 of the rotating member 3 is close to the first side wall 61 of the protector 2. The gap between the two first side walls 61 and 81 is narrow, and the opening 10 is not effectively formed. In other words, when the sliding door 120 is in the fully open position, the opening width Wd of the opening 10 is minimized. Furthermore, the opening width Wd of the opening 10 increases as the sliding door 120 moves from the fully open position to the fully closed position.
[0045] Figure 11 shows the wiring structure 1 as seen from the side of the vehicle body 110 when the sliding door 120 is fully open. As shown in Figure 11, the rotating member 3 and the exterior member 5 cover the entrance portion 60a of the protector 2 from the vehicle body 110. In other words, when viewed from the side of the vehicle body 110, the inside of the protector 2 is not visible to the occupant.
[0046] Thus, the wiring structure 1 of this embodiment closes the opening 10 formed between the protector 2 and the rotating member 3 with the shielding member 4, making it difficult to see the electric wires W inside the protector 2. Furthermore, when the sliding door 120 is in the fully open position, the rotating member 3 covers the entrance portion 60a of the protector 2, making it difficult to see the electric wires W inside the protector 2. Therefore, the wiring structure 1 of this embodiment can improve the appearance when viewed from the side of the vehicle body 110.
[0047] The configuration for holding the second end 40b of the spiral spring 40 is not limited to a pin 42. For example, the rotating member 3 may have a holding structure such as a slit or groove for holding the second end 40b.
[0048] Alternatively, the rotating shaft 41 may be held by the rotating member 3, and the second end 40b of the spiral spring 40 may be held by the protector 2. That is, the rotating shaft 41 is supported by either the protector 2 or the rotating member 3, and the second end 40b of the spiral spring 40 is held by the other of the protector 2 or the rotating member 3.
[0049] As described above, the wiring structure 1 of this embodiment includes an electric wire W routed between the vehicle body 110 and the sliding door 120 of the vehicle 100, a protector 2, a rotating member 3, and a shielding member 4. The protector 2 is positioned on the sliding door 120 and has an inlet portion 60a facing the vehicle body 110 and an outlet portion 60b through which the electric wire W is pulled out toward the sliding door 120. The rotating member 3 is a cylindrical member through which the electric wire W is inserted, positioned at the inlet portion 60a of the protector 2, and rotatably supported by the protector 2. The shielding member 4 closes the opening 10 that is created between the protector 2 and the rotating member 3 as the rotating member 3 rotates.
[0050] The shielding member 4 includes a rotating shaft 41 rotatably supported by either the protector 2 or the rotating member 3, and a spiral spring 40. The spiral spring 40 has a first end 40a which is the center in the spiral direction, and a second end 40b which is the end opposite to the first end 40a. The first end 40a of the spiral spring 40 is held by the rotating shaft 41. The second end 40b of the spiral spring 40 is held by the other of the protector 2 or the rotating member 3. The shielding member 4 follows the rotation of the rotating member 3, unwinding the spiral spring 40 from the rotating shaft 41, or winding the spiral spring 40 onto the rotating shaft 41, thereby closing the opening 10. The wiring structure 1 of this embodiment makes it difficult to see the electric wires W inside the protector 2.
[0051] In this embodiment, the spiral spring 40 is positioned on the vehicle body 110 side relative to the electric wires W inside the protector 2. The spiral spring 40 curves toward the vehicle body 110 side to close the opening 10. Such a shielding member 4 can properly shield the internal space of the protector 2 from the vehicle body 110 side.
[0052] The contents disclosed in the above embodiments can be combined and implemented as appropriate. [Explanation of Symbols]
[0053] 1: Cable routing structure 2: Protector, 3: Rotating member, 4: Shielding member, 5: Exterior member 6: Main unit, 7: Cover, 8: Main unit, 9: Cover, 10: Opening 40: spiral spring, 40a: first end, 40b: second end 41: Rotating axis, 42: Pin, 43: Fastener 60: Cabling path, 60a: Entrance section, 60b: Exit section 61: First side wall, 62: Second side wall, 63: Bottom wall, 63a, 63b: Support hole 80: Cabling path, 80a: Entrance section, 80b: Exit section 81: First side wall, 82: Second side wall, 83: Bottom wall, 84: Rotation axis 93: Top wall, 94: Rotation axis 100: Vehicle, 110: Body, 120: Sliding door, 130: Space W: Electric wire Wd: Opening width X: First direction, X1: Front side, X2: Back side Y: Second direction, Z: Vehicle vertical direction
Claims
1. Electrical wires routed between the vehicle body and the sliding door, A protector is positioned on the sliding door and has an entrance portion facing the side of the vehicle body and an exit portion through which the electric wire is pulled out toward the sliding door. A cylindrical rotating member is positioned at the entrance and is rotatably supported by the protector, through which the electric wire is inserted, A shielding member that closes the opening that is created between the protector and the rotating member as the rotating member rotates, Equipped with, The shielding member has a rotating shaft rotatably supported by one of the protector and the rotating member, and a spiral spring. The spiral spring has a first end which is the center in the spiral direction and a second end which is the end opposite to the first end, and the first end is held by the rotation axis. The second end of the spiral spring is held by the protector and the other of the rotating member. The shielding member follows the rotation of the rotating member by unwinding the spiral spring from the rotating shaft or winding the spiral spring onto the rotating shaft while closing the opening. A cable routing structure characterized by the following features.
2. The spiral spring is positioned on the vehicle body side relative to the electric wire inside the protector. The spiral spring curves toward the vehicle body and closes the opening. The cable routing structure according to claim 1.
Citation Information
Patent Citations
Power supply device
JP2015154520A