This invention pertains to assemblies of switches in which each switch activates, alternatively, two or more different electrical circuits. More specifically, this invention pertains to assemblies comprising several switches in a base with two or more overlying sheet layers for identified selection of specific switches and circuit functions, and touch activation of the switches. These compact assemblies enable an operator of a motor vehicle to adjust many different components, such as mirrors and seats, from a single switching location.
Electrical switches and controls have been grouped at locations in passenger compartments of automotive vehicles for easy access by the driver. For example, switches for control of a radio or automatic speed control have been located in a steering wheel pad. Switches for adjustment of outside mirrors, for opening windows, and for seat adjustments have been located in the operator's arm rest.
It is an object of this invention to provide an assembly of electrical switches in a base where each switch is adapted to control two or more different electric circuits. It is a further object of this invention to provide such a switch assembly with two or more sheet or membrane layers, overlying the group of switches, for touch activation of a selected switch. It is a more specific object of this invention that the overlying sheets be used to identify and control which circuit is activated by a selected switch.
It is a further object of this invention to provide means for internal illumination of the layered switch assembly.
This invention provides a layered switch assembly for operating a plurality of switches where each switch is wired or otherwise adapted to control two or more electrical circuits. A grouping of switches is located in a base portion of the assembly with two or more flexible sheet layers placed over the switch contacts for identification of specific switch functions and touch activation of a specific switch and circuit. In a preferred application, the compact switch assembly is placed near the operator of a motor vehicle for selective control of many electric circuits. Such circuits may be for actuating or controlling vehicle components such as a radio, navigation system, automatic vehicle speed control, lighting, vehicle front seat location, driver side and passenger side outside mirror positions, window openings or the like.
In accordance with a preferred embodiment of the invention, each switch is adapted to alternatively turn on two different electric circuits for vehicle components, usually passenger compartment components. The specified switches are located in a planar pattern in the armrest assembly for finger tip operation by the vehicle operator. Two flexible sheet or membrane layers, showing identified switch function activation locations, are used to select and activate a switch. A first sheet layer is fixed over the pattern of switches with the respective switch function activation symbols or indicia overlying corresponding switch contacts. A second sheet layer with a second set of switch function activation locations is placed over the first sheet, again with the second layer of identified switch activation locations overlying corresponding switches.
The upper sheet of switch function activator locations is supported over the lower sheet so that the upper sheet can be moved to uncover the lower sheet. For example, the upper sheet can be slid sideways, or fore or aft, from over the lower sheet, or it can be hinged and lifted from contact with the lower sheet. In this embodiment, the location of the upper sheet is used to determine which set of switch function activators activates a given switch and electric circuit. When the upper sheet is positioned with its switch activators overlying the set of switches, the vehicle driver can touch a location on that sheet to accomplish a desired electrically powered operation, such as opening a window. In order to accomplish an operation controlled by a lower sheet switch activator, the driver moves the upper sheet from over the lower sheet thereby exposing the lower sheet and its switch function symbols and indicia. The driver then touches the indicated switch activator on the lower sheet. Thus, for a specified number of switches and with two sheets of switch activators, up to twice the number of switching functions can be accomplished.
Thus, the location of one of the sheets, preferably the more accessible upper sheet, is used to control which of its circuits a specified switch activates. For example, when the upper sheet is juxtaposed over the lower sheet, a microswitch may be activated by an edge of the upper sheet to obtain switch functions indicated on the upper sheet. Sliding of the upper sheet from its operative position, away from contact with the microswitch, activates the switch functions designated on the lower sheet.
The switches that are part of this layered assembly are those that can be activated by touch on a flexible sheet, fabric or membrane activation layer. Such switches may directly control a specified function such as brake pedal location, seat positioning or the like. However, many of such operations are motor driven and require relatively high current electrical circuits. Accordingly, it may be preferred to use the subject layered switch assembly to operate a lower current, control circuit that in turn manages higher power vehicle functions.
The switch activator locations on the various layers of this switch assembly need to be visible to the vehicle operator, and there will be times when ambient light is inadequate and the assembly must be illuminated by vehicle lighting. The assembly may be illuminated from above its location in the arm rest or the like. Alternatively, a light source may be provided at the switch assembly and its light dispersed through transparent portions of the sheet layer controls so that switch function indicia on the control sheets can be seen by the operator of the vehicle.
Other objects and advantages of the invention will become more apparent from a detailed description of preferred embodiments which follow.
Modern automotive vehicles use many electric circuit switches for control of components in the vehicle. Mechanical switches typically function by bringing together or separating two or more metal contacts to open or close an electric circuit. Such switches are made in many different sizes, shapes and forms and often contain a depressible plunger or button, or a toggle, to open and close the metal contacts of the switch. In automobiles switches are often located on an armrest or console or instrument panel in the passenger compartment.
Other switches are located, for example, in a soft steering wheel pad with a flexible surface layer of synthetic plastic material. These switches, sometimes called membrane switches, are also touch activated. They usually comprise one or more sets of stationery contact points on a stiff base. An upper membrane with a flexible conductive material on the lower side is separated by a spacer from the stationery contacts. Depressing the membrane touches the conductive material to the contacts to close a circuit. When the switch is released, the flexible membrane returns to its original position and breaks contact. This invention can be practiced with any of such described mechanical or membrane switches and with any switch adapted for location in a passenger compartment location within reach and touch by the vehicle operator or other passenger.
In accordance with a preferred embodiment of the invention, a layered switch assembly is incorporated in an arm rest on the driver-side door. A vehicle door is an assembly typically comprising an outer sheet panel with an attached inner sheet panel. The door panel structure includes an open upper frame portion for a slidable window and a closed lower portion accommodating mechanical components for door closure and locking and for window lowering and lifting. Space between outer and inner door panels also accommodates electric wiring for facilitating door locking and window lifting and other vehicle component control functions. A decorative and functional molded plastic/fabric trim panel is suitably attached to the inner sheet metal door structure.
Referring to
Located behind door trim panel 10 in the compartment formed by the door panel members (and not visible in the drawing figures) is electric wiring for connecting to switch members that will be described in connection with switch assembly 30. The wiring connects the switches with an electric power source such as the vehicle battery and with the respective components that are adjusted or controlled by the switch elements. These wiring and electric power supply features that are used with this layered switch assembly are conventional in automotive vehicle design and manufacture.
Mechanical switches currently placed in the armrest are labeled with schematic symbols, icons or other indicia of the function that is actuated by touching the switch. In accordance with this invention, switch locations on a switch activation layer are similarly labeled.
Another grouping of switches that are often located on the driver side armrest are those used for moving the driver seat backward or forward for one or more drivers that regularly use the vehicle. In this example, switch activation function 306 is to designate an adjustment for driver number 1 and switch activation function 308 designates a seat adjustment for driver number 2. Switch activation function 310 moves the seat forward for the driver selection and switch activation function 312 moves the seat rearwardly. For additional seat controls, switch activation functions 314 and 316 may be employed to elevate the horizontal seat portion or to lower the seat, respectively. Switch activation functions 318 and 320 may be used to tilt the seat upwardly or downwardly, respectively. Finally, in accordance with this example, switch activation functions 322 and 324 are be used to advance or retract a lumbar adjustment in the back of the seat. Switch activation functions 326 and 328 may turn a seat heater on and off, respectively.
In accordance with prior art, the switching function indicia in
In accordance with this invention, it is possible and practical to use a set of switches arranged in a pattern in the armrest of a driver side door panel to perform both the switching functions illustrated in
In accordance with the invention, a specified number of switches are placed in the assembly 30 in armrest 26. The switches are arranged in a pattern underneath the common switch activation function indicia illustrated in
In
Switches 402 are illustrated in
One contact member of each switch is connected through electrical wire leads 404 to an electrical power source, not shown, such as a vehicle battery. In
A specific switch 402 is closed by touch on a switch function indicia on layer 220 or 222 (
In this illustrative example, two switch function activation layers are employed in assembly 200. However, more than two switch activation layers could be used in the subject layered switch assembly. Additional switch function activation layers would require additional microswitches, or other circuit selection devices, to execute the desired switch function.
In layered switch assembly 200 illustrated in
The switch function activation layers 220, 222 are made of flexible, yet durable material such as a nylon fabric or a synthetic polymer sheet material. The layers must be flexible to enable touch activation of underlying switches and they must be durable to withstand repeated sliding and touching. The switch function indicia may be printed on a surface of each switch function activation layer.
When the interior of the vehicle is dark the assembly 30 may be illuminated by interior light 32 on door panel 10. However, it may be preferred to provide internal illumination for the switch assembly. When the assembly is associated with the driver side armrest, for example, it is contemplated that the switches, their wiring connection and a portion of bracket 224 will be embedded in the armrest with the decorative surface material of the armrest surrounding bracket 224. A light 212, or light carrying fiber optic end, may be directed at an end 206 of bracket 224. In this embodiment, bracket 224 would be molded of a suitable light transparent plastic material which would carry and direct the light from source 212 around the periphery of bracket 224 and around switch function activation layers 220, 222. Layers 220, 222 would be constructed as illustrated in
While the invention has been illustrated in terms of specific embodiment, it would be appreciated that other forms of the invention could readily be adapted by one skilled in the art. Accordingly, the scope of the invention is not intended to be limited by these specific examples.
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