Power supply rail
10618432 ยท 2020-04-14
Assignee
Inventors
Cpc classification
H02G11/00
ELECTRICITY
B60N2/0264
PERFORMING OPERATIONS; TRANSPORTING
B60N2/0732
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60R16/02
PERFORMING OPERATIONS; TRANSPORTING
H02G11/00
ELECTRICITY
Abstract
[Object] Provided is a power supply rail capable of continuing to stably supply electric power from a power supply of a vehicle to a slide seat. [Solving Means] A power supply rail 1 according to the present invention is configured by including a long tubular case 8, a flexible flat cable 11 accommodated in a hollow portion 9 in the case 8, a fixed terminal 12 fixed to the case 8, a movable terminal 13 movable in a longitudinal direction of the case 8, an actuator 16 that accommodates the movable terminal 13 and moves along a slit 20 of the case 8, and a guide plate 17 that guides the movement of the flexible flat cable 11 while pressing the flexible flat cable 11 in accordance with the movement of the actuator 16.
Claims
1. A power supply rail, comprising: a long tubular case that extends in a longitudinal direction, having a hollow portion thereinside and a slit extending in the longitudinal direction such that the hollow portion connects to an outside of the case through the slit; a flexible flat cable that is flexible and in a flat and on shape and is accommodated in the hollow portion in the case such that the flexible flat cable has two ends in the longitudinal direction; a fixed terminal that is provided at the one end of the flexible flat cable and fixed to the case such that the fixed terminal is not movable; a movable terminal that is provided at the other end of the flexible flat cable and is not fixed to the case such that the movable terminal is movable; an actuator that accommodates the movable terminal and moves along the slit of the case such that the movable terminal moves in the longitudinal direction and the flexible flat cable is deformed in accordance with the movement of the actuator; and a guide plate that is formed of an elastic material and is attached to one side of the flexible flat cable, the one side being opposite to the case, such that the guide plate is deformed in accordance with the movement of the actuator, and generates a resilience force due to the deformation of the guide plate, guides the movement of the flexible flat cable while pressing the flexible flat cable toward the case by the resilience force.
2. The power supply rail according to claim 1, wherein a cross-sectional shape of the guide plate, which is seem from a view in the longitudinal direction, is formed in a curved shape that protrudes toward the flexible flat cable.
3. The power supply rail according to claim 1, wherein the guide plate is in a flat and long shape, having two flat surfaces facing in opposite directions, and one of the flat surface of the guide plate is entirely attached to the flexible flat cable, the flexible flat cable intervening between the guide plate and the case.
4. The power supply rail according to claim 1, wherein seen from a view in the longitudinal direction, the case is composed with two lateral walls arranged parallel in a lateral direction, and upper and lower walls arranged parallel in a vertical direction wherein each of the longitudinal, lateral and vertical directions is perpendicular to the other two directions, and the fixed terminal is disposed on the lower wall, and the movable terminal is disposed on the upper wall.
5. The power supply rail according to claim 4, wherein the slit is formed on one of the lateral walls, and the actuator projects outside the case through the slit.
Description
BRIEF DESCRIPTION OF DRAWINGS
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MODE(S) FOR CARRYING OUT THE INVENTION
(9) Hereinafter, embodiments for carrying out the present invention will be described with reference to the drawings.
(10) As illustrated in
(11) As illustrated in
(12) As illustrated in
(13) The case 8 is made of a metal such as aluminum, and is formed into an elongated rectangular tube shape so as to be accommodated in the mold 5. A hollow portion 9 extending in a longitudinal direction of the case 8 is provided inside the case 8, and a movable mechanism 10 described below reciprocates in the hollow portion 9 along a longitudinal direction of the hollow portion 9.
(14) As illustrated in the enlarged view of
(15) The flexible flat cable 11 is formed in a long flat shape to include a thin plate (a copper plate in the present embodiment) 18 made of a conductor and a heat-resistant insulation tape (a polyimide tape in the present embodiment) 19 covering an outer surface of the thin plate 18, and is accommodated in the hollow portion 9 within the case 8. In the present embodiment, three flexible flat cables 11 are superimposed. The reason for this is to increase an electric capacity so that the thin plate 18 does not melt by heat when large current flows through the flexible flat cable 11. A larger number of flexible flat cables 11 may be superimposed as long as they are within a range in which they can be bent and deformed, and only one flexible flat cable 11 may be used as long as a sufficient electric capacity can be secured. Further, in order to alleviate heat due to large current, a flexible flat cable 11 may be used in which the thin plates 18 are superimposed as illustrated in
(16) At one end of the flexible flat cable 11, fixed terminals 12, 12, and 12 made of conductors are integrally provided on each of the thin plates 18, 18, and 18. The fixed terminals 12 are accommodated inside a cap 6 provided at a tip of the case 8, and bus bars (hereinafter, referred to as fixed-side bus bars) 14, 14, and 14 made of copper plates are fixed by welding to the fixed terminals 12 respectively. The fixed-side bus bar 14 functions as a vehicle-side connector connected to wiring on the side of the vehicle.
(17) On the other hand, at the other end of the flexible flat cable 11, movable terminals 13, 13, and 13 made of conductors are integrally provided on thin plates 18, 18, and 18, respectively. The movable terminals 13 are accommodated inside the actuator 16, and bus bars (hereinafter, referred to as movable-side bus bars) 15, 15, and 15 made of copper plates are fixed by welding to the movable terminals respectively. The movable-side bus bar 15 functions as a seat-side connector connected to the wiring on the side of the seat.
(18) The actuator 16 is made of an insulator such as ABS resin and formed into a protruding cross-section shape having a width matching the hollow portion 9 as illustrated in
(19) By fixing the fixed-side bus bars 14 and the movable-side bus bars 15 to both ends of the flexible flat cable 11 in this manner, wiring work is simpler than that when connecting with lead wires, and an electrical resistance is small, enabling a large amount of current to flow. The method of fixing the fixed terminal 12 and the fixed-side bus bar 14 and fixing the movable terminal 13 and the movable-side bus bar 15 are not limited to welding, but other methods such as soldering, deposition, screwing, and caulking may be used.
(20) The guide plate 17 is made of a metal plate such as stainless steel and is formed into an elongated flat shape having the same width as that of the flexible flat cable 11 as illustrated in
(21) The power supply rail 1 configured as described above is provided with the movable mechanism 10 inside the case 8, accommodated in the mold 5, and attached to the side surface of the side rail 3 via the caps 6 and 6 at both ends. At this time, since the actuator 16 accommodating the movable-side bus bars 15 protrudes to the outside of the case 8, a wiring of a motor circuit of the slide seat 2 may be connected to the movable-side bus bars 15 and a wiring of the power supply circuit on the vehicle side may be connected to the fixed-side bus bars 14. Thus, the power supply circuit of the vehicle and the motor circuit of the slide seat 2 can be electrically connected via the power supply rail 1.
(22) That is, as illustrated in
(23) When the slide seat 2 illustrated in
(24) On the other hand, when the slide seat 2 illustrated in
(25) In this manner, when the slide seat 2 advances or retreats, the actuator 16 slides along the slit 20 of the case 8 in conjunction with the movement of the slide seat 2. Following the sliding of the actuator 16, the guide plate 17 and the flexible flat cable 11 expand and contract integrally. Further, since there are no complicated wires or the like such as the wire harness in the hollow portion 9, it is possible to save troublesome work for distributing the wire harness. Further, there is no concern that, when the slide seat 2 advances and retreats, the wire or the like is caught in the hollow portion 9, thus hindering the movement or the wire or the like is twisted or pulled, thus causing a malfunction. Moreover, since the flexible flat cable 11 is expanded and contracted following the spring deformation of the guide plate 17, the actuator 16 can move from a front end to a rear end along the longitudinal direction of the case 8 as illustrated in
(26) Therefore, according to the power supply rail 1, the flexible flat cable 11 guided by the guide plate 17 following the movement of the slide seat 2 smoothly expands and contracts. Thus, it is possible to continue to stably supply electric power from the power supply circuit of the vehicle to the slide seat 2.
(27) In the present embodiment, one movable mechanism 10 is provided in the hollow portion 9 to form one circuit, but the circuit configuration is not limited thereto. For example, a plurality of movable mechanisms 10 may be arranged in a height direction of the case 8 by overlapping the flexible flat cables 11 vertically or a plurality of movable mechanisms 10 may be arranged in a width direction of the case 8 by arranging a plurality of the flexible flat cables 11 with narrower widths in the left and right direction, thus forming a circuit configuration of two or more circuits. As a result, even when a fault occurs in the movable mechanism 10 of any one of the circuits, a fail-safe function for ensuring safety can be exerted by a normal operation of the movable mechanism 10 of the remaining circuit.
(28) Further, in the present embodiment, electric power is supplied from the power supply circuit of the vehicle to the motor circuit of the slide seat 2 via the power supply rail 1, but the application is not limited thereto. For example, the power supply rail 1 can be used for applications such as a USB charger, a heater device of a seat, a seat belt reminder (alarm device) mounted on a vehicle, power supply and signal transmission to a rear seat, and the like.
EXPLANATIONS OF LETTERS OR NUMERALS
(29) 1 POWER SUPPLY RAIL
(30) 2 SLIDE SEAT
(31) 3 SIDE RAIL
(32) 4 RAIL COVER
(33) 5 MOLD
(34) 6 CAP
(35) 7 ATTACHMENT HOLES
(36) 8 CASE
(37) 9 HOLLOW PORTION
(38) 10 MOVABLE MECHANISM
(39) 11 FLEXIBLE FLAT CABLE
(40) 12 FIXED TERMINAL
(41) 13 MOVABLE TERMINAL
(42) 14 FIXED-SIDE BUS BAR
(43) 15 MOVABLE-SIDE BUS BAR
(44) 16 ACTUATOR
(45) 17 GUIDE PLATE
(46) 18 THIN PLATE
(47) 19 HEAT-RESISTANT INSULATION TAPE
(48) 20 SLIT
(49) 21 RECESSED PORTION
(50) 22 RAIL