Vehicle interior assemblies having leather cover with electrically conductive coating
10875430 ยท 2020-12-29
Assignee
Inventors
Cpc classification
B60Q3/54
PERFORMING OPERATIONS; TRANSPORTING
H05B3/146
ELECTRICITY
B60R13/02
PERFORMING OPERATIONS; TRANSPORTING
B60R16/027
PERFORMING OPERATIONS; TRANSPORTING
B62D1/046
PERFORMING OPERATIONS; TRANSPORTING
B60N2/0228
PERFORMING OPERATIONS; TRANSPORTING
B60R2013/0287
PERFORMING OPERATIONS; TRANSPORTING
H05B3/12
ELECTRICITY
International classification
H05B3/12
ELECTRICITY
B60R13/02
PERFORMING OPERATIONS; TRANSPORTING
B60R16/023
PERFORMING OPERATIONS; TRANSPORTING
B60Q3/54
PERFORMING OPERATIONS; TRANSPORTING
B60R16/02
PERFORMING OPERATIONS; TRANSPORTING
B60R16/03
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A leather cover for a vehicle interior assembly such as a vehicle seat, a steering wheel, a console, etc. includes a leather layer and an electrically conductive coating applied onto the leather layer. The electrically conductive coating is either applied to a finish side of the leather layer or to a flesh side of the leather layer. The electrically conductive coating may function as: a wire harness component and is connected to wiring of a wire harness system of a vehicle; an electrical resistance heater and is connected to wiring of a heater system of a vehicle; an electrically conductive touch control and is connected to wiring of a control system of a vehicle; or electroluminescent or electrochromic lighting and is connected to wiring of a lighting system of a vehicle.
Claims
1. A vehicle seat comprising: a seat body; a leather cover covering the seat body, the leather cover having a leather layer and an electrically conductive coating applied onto the leather layer; wherein the electrically conductive coating is part of a wire harness system of a vehicle with the electrically conductive coating functioning as wiring of the wire harness system and being connected between a first wiring of the wire harness system and a second wiring of the wire harness system to connect the first wiring to the second wiring; and control, diagnostic, and/or power electric signals communicated over the wire harness system are communicated through one of the first wiring and the second wiring to the electrically conductive coating and through the electrically conductive coating to the other one of the first wiring and the second wiring.
2. The vehicle seat of claim 1 wherein: the electrically conductive coating is applied to a finish side of the leather layer.
3. The vehicle seat of claim 2 wherein: the leather cover further includes a base coat on the leather layer, a color coat, and a top coat on the color coat; and wherein the electrically conductive coating is between the base coat and the color coat.
4. The vehicle seat of claim 1 wherein: the electrically conductive coating is applied to a flesh side of the leather layer.
5. The vehicle seat of claim 4 wherein: the leather cover further includes a base coat on a first side of the leather layer, a color coat on the base coat, and a top coat on the color coat; and wherein the electrically conductive coating is on a second side of the leather layer, the second side of the leather layer being opposite to the first side of the leather layer.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(8) Detailed embodiments of the present invention are disclosed herein; however, it is to be understood that the disclosed embodiments are merely exemplary of the invention that may be embodied in various and alternative forms. The figures are not necessarily to scale; some features may be exaggerated or minimized to show details of particular components. Therefore, specific structural and functional details disclosed herein are not to be interpreted as limiting, but merely as a representative basis for teaching one skilled in the art to variously employ the present invention.
(9) Referring now to
(10) In this embodiment, electrically conductive coating 12 is integrated within the finishing stack of leather cover 10. Particularly, as shown in
(11) Referring now to
(12) As indicated in each of
(13) As will be described herein, adding a thin layer in the form of electrically conductive coating 12 either into the finishing stack of leather cover 10 as shown in
(14) Referring now to
(15) The relatively smaller wire in the form of electrically conductive coating 12 is connected to existing vehicle technology in the form of conventional wiring 34. In this way, electrically conductive coating 12 replaces a part of conventional wiring 34 of wire harness system 32. Integrating electrically conductive coating 12 into leather cover 10 already used for vehicle seat 30 has the potential to reduce the number of components necessary in seating and may help decrease assembly time.
(16) Control and diagnostic electric signals to be communicated over wire harness system 32 can be communicated through electrically conductive coating 12 as the electric signals travel along conventional wiring 34 of the wire harness system. Depending on amperage carrying capacity of electrically conductive coating 12, electrical power electric signals may be communicated through the electrically conductive coating as these electric signals travel along conventional wiring 34 of wire harness system 32.
(17) For instance, a vehicle controller in communication with wire harness system 32 may communicate control electric signals for controlling functions of vehicle seat 30 to seat controls (not shown) of the vehicle seat via electrically conductive coating 12. Seat controls of vehicle seat 30 may communicate diagnostic electric signals indicative of sensed conditions of the vehicle seat to the vehicle controller over wire harness system 32 via electrically conductive coating 12.
(18) Referring now to
(19) Electrically conductive coating 12 is connected to a vehicle controller 52 via conventional wiring 54. Controller 52 communicates electrical power electrical signals to electrically conductive coating 12 via conventional wiring 54. Electrically conductive coating 12 generates heat according to Ohm's law as the electrical power electrical signals travel over the electrically conductive coating 12.
(20) The heat is to heat up the body of an occupant of vehicle seat 50. By placing the electrical resistance heating elements in the form of electrically conductive coating 12 into leather cover 10, much lower electrical current is required for the same degree of heating due to the proximity of the leather cover to the seat occupant's body. This provides higher electrical efficiency for heating.
(21) In an embodiment, a single vehicle seat has leather cover 10 with electrically conductive coating 12 in which (i) a first portion of the electrically conductive coating functions as an electrical wire harness and is connected to conventional wiring 34 to thereby be a part of a wire harness system of the vehicle and (ii) a second portion of the electrically conductive coating functions as an electrical resistance heater and is connected to a heating controller of the vehicle.
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(23) As described, electrically conductive coating 12 of leather cover 10 of vehicle seat 50 satisfies the development of an integrated conductive coating for leather finishing system which provides high efficiency heating for seat occupant comfort. Applying a current to a polymer matrix utilizing conductive elements such as graphite, carbon nanotubes, or silver/nickel alloys allows for the generation of heat. This matrix can be applied to leather at specific thicknesses and patterns to optimize resistive element areas. For reference, initial small-scale proof of concept parts provided heating ranges between 70-90 F. utilizing seven volt 0.2-0.3 Amp power consumption without formulation or application optimization.
(24) In an embodiment, electrically conductive coating 12 of leather cover 10 of vehicle seat 50 is integrated within the finishing stack of the leather cover to provide surface resistive heating. Particularly, with reference to
(25) Referring now to
(26) Steering wheel 40 is part of a steering system of a vehicle. Electrically conductive coating portions 12a and 12b are respectively connected to conventional wiring 42 extending through the steering system. Electrically conductive coating portions 12a and 12b are connected to a vehicle controller 44 via conventional wiring 42.
(27) A conventional vehicle steering wheel may include built-in control buttons for functions such as cruise control, lights, audio system, etc. In operation, a user of the presses a control button to enact a corresponding function.
(28) Unlike a conventional vehicle steering wheel, steering wheel 40 includes leather cover 10 in place of at least some of the built-in control buttons. As described, leather cover 10 includes a leather layer 14 and electrically conductive coating 12 having electrically conductive coating portions 12a and 12b. Electrically conductive coating portions 12a and 12b function as electrically conductive touch controls or switches. For example, electrically conductive portion 12a functions as a first touch control for enacting a first function and electrically conducive portion 12b functions as a second touch control for enacting a second function. Further, a first portion of electrically conductive portion 12a may function as the first touch control and a second portion of electrically conductive portion 12a may function as another touch control for enacting another function.
(29) In operation, a user presses electrically conductive coating portion 12a (or a part thereof) to enact a corresponding function. Upon the user pressing electrically conductive coating portion 12a, a control electric signal is communicated from the electrically conductive coating portion 12a to vehicle controller 44. In turn, vehicle controller 44 enacts the function. Similarly, a user presses electrically conductive coating portion 12b (or a part thereof) to enact a different corresponding function. Upon the user pressing electrically conductive coating portion 12b, a control electric signal is communicated from the electrically conductive coating portion 12b to vehicle controller 44. In turn, vehicle controller 44 enacts this function.
(30) Referring now to
(31) A conventional vehicle interior side console includes built-in control buttons for functions such as door locks, windows, etc. In operation, a user of the presses a control button to enact a corresponding function. Vehicle interior side console 60 includes leather cover 10 in place of at least some of these built-in control buttons.
(32) Electrically conductive coating portions 12a, 12b, 12c, and 12d function as respective electrically conductive touch controls or switches. For example, electrically conductive portion 12a functions as a driver door lock control, electrically conducive portion 12b functions as a passenger door lock control, electrically conducive portion 12c functions as a driver door window control, and electrically conducive portion 12d functions as a passenger door window control.
(33) In operation, a user presses one of electrically conductive coating portions 12a, 12b, 12c, and 12d to enact the corresponding function. For example, upon the user pressing electrically conductive coating portion 12a, a control electric signal is communicated from the electrically conductive coating portion 12a to vehicle controller 44. In turn, vehicle controller 44 enacts the driver door lock control function corresponding to electrically conductive coating portion 12a.
(34) By utilizing conductive touch layers in the form of electrically conductive coating 12 within leather cover 10 of vehicle interior assemblies like steering wheel 40 and vehicle interior side console 60, control buttons can be incorporated into the design of the leather cover. This opens new areas of the vehicle interior to leather where otherwise inaccessible. Conductive touch layers in the form of electrically conductive coating 12 can also be utilized within leather cover 10 of a vehicle seat for control buttons of the vehicle seat. For instance, electrically conductive coating 12 of a vehicle seat can function as a power control of the vehicle seat.
(35) The controls provided by electrically conductive coating 12 can be back lit with perforation, raised or sunken elements from embossing, or hidden away for a clean style.
(36) In embodiments, electrically conductive coating 12 may function as electroluminescent and/or electrochromic lighting.
(37) In embodiments, electrically conductive coating 12 is applied into leather cover 10 by screen printing; digital printing, extruding, or robotics; roll, spray, or curtain and laser etch; deboss and roll. In the roll, spray, or curtain and laser etch techniques, electrically conductive coating 12 is applied over full hide and elements are etched on demand. The deboss and roll technique directly incorporates texture as part of the design element.
(38) While exemplary embodiments are described above, it is not intended that these embodiments describe all possible forms of the present invention. Rather, the words used in the specification are words of description rather than limitation, and it is understood that various changes may be made without departing from the spirit and scope of the present invention. Additionally, the features of various implementing embodiments may be combined to form further embodiments of the present invention.