Heater for Windshield Wiper Park Position
20180014362 · 2018-01-11
Assignee
Inventors
Cpc classification
H05B3/84
ELECTRICITY
H05B2203/031
ELECTRICITY
H05B3/86
ELECTRICITY
B32B17/10385
PERFORMING OPERATIONS; TRANSPORTING
International classification
H05B3/86
ELECTRICITY
Abstract
A windshield wiper park position heater employs an area-type heater construction having a flexible substrate supporting a high resistance heater material between electrodes of a lower resistance electrode material. The high length-to-width of the heater element is accommodated through a bus structure that orients current flow along the shortest dimension of the heater and by supplying power at a midpoint of the bus structure to decrease voltage drop over the longest dimension of the heater. A clip structure allows internal conductive layers of laminated connection point between heater components to be simply joined in the crimping operation.
Claims
1. A windshield wiper park position heater comprising: a flexible polymeric insulator sheet adapted to conform to a lower surface of a curved automotive windshield, having a length aligned with a length of a windshield wiper in park position and sized so that a periphery of the insulator sheet proximately circumscribes a contact area of a windshield wiper blade against a windshield in the park position, the insulator sheet supporting: (a) a relatively high resistance conductive heater material; and (b) a relatively low resistance conductive electrode material having a lower resistance than the heater material and applied to the heater material on opposite sides of gap regions of the heater material that are not in direct contact with the electrode material to establish a current flow through the heater material of the gap regions; wherein the gap regions are sized to be distributed along substantially along an entire length of the insulator sheet proximate to a contact area of the windshield wiper blade against the windshield in park position when the insulator sheet is applied to the automotive windshield.
2. The windshield wiper park position heater of claim 1 wherein the length of the insulator sheet is at least six times longer than a height of the insulator sheet measured along a plane of attachment of the windshield wiper park position heater to a windshield and wherein the electrode material extends in continuous bus structures along the length of the windshield wiper park position heater to promote average current flow along a width of the heater.
3. The windshield wiper park position heater of claim 2 wherein the insulator sheet has a length greater than 20 inches and a height less than three inches.
4. The windshield wiper park position heater of claim 2 wherein the insulator sheet has a length greater than 40 inches.
5. The windshield wiper park position heater of claim 2 further including an adhesive applied in contact with the heater material in the gap regions.
6. The windshield wiper park position heater of claim 5 wherein the windshield wiper park position heater is black when viewed from the side of the insulator sheet.
7. The windshield wiper park position heater of claim 6 wherein the insulator sheet is transparent and the heater material is black.
8. The windshield wiper park position heater of claim 1 wherein the electrode material includes upper and lower electrodes extending along a length of the insulator sheet at opposite edges of the insulator sheet across its width and including a feeder electrode extending from one end of the insulator sheet to a connection point with one of the upper and lower electrodes substantially at a midpoint along a length of the flexible polymeric insulator sheet.
9. The windshield wiper park position heater of claim 8 wherein the upper and lower electrodes each include finger elements extending outwardly in interdigitated arrangement with finger electrodes of an other of the upper and lower electrodes.
10. The windshield wiper park position heater of claim 1 wherein the electrode material includes an outer and inner electrode extending along the length of the insulator sheet, with the outer electrode surrounding the inner electrode wherein the outer electrode has a width less than the inner electrode.
11. The windshield wiper park position heater of claim 10 wherein the inner and outer electrode each include finger elements extending outwardly into interdigitated arrangement with finger electrodes of an other of the inner and outer electrodes.
12. The windshield wiper park position heater of claim 1 wherein the insulator sheet, heater material and electrode material are divided into first and second portions joined by ductile metal crimp connectors.
13. The windshield wiper park position heater of claim 12 wherein the ductile metal crimp connectors include conductive elements piercing the first and second portions when they are overlapped to electrically join the electrode materials on the first and second portions.
14. The windshield wiper park position heater of claim 12 wherein ductile metal crimp connectors include opposed portions sized to receive therebetween the first and second portions in overlapping configuration and to be inelastically crimped together about the first and second portions and wherein the opposed portions include inwardly extending teeth adapted to pierce through the overlapping first and second portions to electrically join the electrode material on the first and second portions.
15. The windshield wiper park position heater of claim 12 wherein the ductile metal crimp connector further includes a connector for receiving an electrical cable for electrical communication with the inwardly extending teeth.
16. The windshield wiper park position heater of claim 15 wherein the connector is a crimp sleeve for receiving an electrical cable conductor to be crimped thereabout for electrical connection between the electrical cable conductor and the ductile metal crimp connector.
17. The windshield wiper park position heater of claim 1 further including an automotive windshield assembly providing a windshield and windshield wipers for wiping the windshield being positioned in the park position when the windshield wipers are not activated.
18. The windshield wiper park position heater of claim 1 wherein the heater material is a positive temperature coefficient material.
19. The windshield wiper park position heater of claim 1 wherein the heater electrode material is conductive metal particles in a binder applied directly to the insulator sheet.
20. A method of fabricating a windshield using a windshield wiper park position heater having: a flexible polymeric insulator sheet adapted to conform to a lower surface of a curved automotive windshield, having a length aligned with a length of a windshield wiper in park position and sized so that a periphery of the sheet proximately circumscribes a contact area of a windshield wiper blade against a windshield in the park position; a relatively high resistance conductive heater material coated on the flexible polymeric insulator sheet; a relatively low resistance conductive electrode material having a lower resistance than the heater material and applied to the heater material on opposite sides of gap regions of the heater material not in direct contact with the electrode material to establish a current flow through the heater material of the gap regions; wherein the gap regions are sized to be distributed along substantially an entire length of the insulator sheet proximate to a contact area of the windshield wiper blade against the windshield in park position when the insulator sheet is applied to the automotive windshield, the method comprising the steps of: (a) applying the heater material and the electrode material to the insulator sheet to create a heater assembly; and (b) after step (a), applying the heater assembly to an inner surface of a vehicle windshield in a park position of windshield wipers on the windshield so that the gap regions are proximate to a contact area of the windshield wiper blade against the windshield in the park position.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0036]
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[0039]
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[0044] Before the embodiments of the invention are explained in detail, it is to be understood that the invention is not limited in its application to the details of construction and the arrangement of the components set forth in the following description or illustrated in the drawings. The invention is capable of other embodiments and of being practiced or being carried out in various ways. Also, it is to be understood that the phraseology and terminology used herein are for the purpose of description and should not be regarded as limiting. The use of “including” and “comprising” and variations thereof is meant to encompass the items listed thereafter and equivalents thereof as well as additional items and equivalents thereof.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0045] Referring now to
[0046] The present invention provides a heater strip 16 that, in one embodiment, extends along the full length of the windshield wiper park position 14 and that is attached at a lower edge of the glass of the windshield 10 inside the vehicle. The heater strip 16 receives a source of electrical current from the automobile power system (e.g., 12 volts) to heat to the windshield wiper park position 14 preventing ice from adhering the windshield wipers to the windshield 10.
[0047] In one embodiment, as shown, the heater strip 16 generally includes an electrically insulating, flexible polymer support film 18 holding on its top surface (positioned toward the glass of the windshield 10) a resistive layer 20 generating heat with the passage of electricity therethrough. Positioned on top of the resistive layer 20 is a set of conductive interdigitated electrodes 22 communicating with the resistive layer 20 to pass current therethrough. The interdigitated electrodes 22 extend alternately from an electrode bus 24 and a return bus 26 while the electrode bus 24 and return bus 26 run horizontally along the length of the windshield wiper park position 14.
[0048] Alternatively, for any of the embodiments described herein and represented, for example, in
[0049] The resistive layer 20 may be constructed of an electrically conductive material having a high resistance to provide low current draw and to generate heat over its surface. Preferably, the resistive layer 20 is a conductive polymer, for example, having a fine particulate filler and may be a conductive polyester material exhibiting a positive temperature coefficient (PTC). Positive temperature coefficient materials have rising resistance with increased temperature and thus provide a form of temperature feedback preventing hotspots. Positive temperature coefficient (PTC) heaters, suitable for the present invention, are also disclosed in U.S. Pat. Nos. 4,857,711 and 4,931,627 to Leslie M. Watts hereby incorporated in their entireties by reference. Resistive layer 20 may, for example, be screen printed on the flexible polymer support film 18.
[0050] The interdigitated electrodes 22, the electrode bus 24, and the return bus 26 may, for example, be a low resistance printed material, for example, a silver ink comprising metallic silver particles in a binder or a metal foil or the like. Generally, the interdigitated electrodes 22, electrode bus 24, and return bus 26 will have much lower resistance than the resistive layer 20 and ideally as low as practical. The interdigitated electrodes 22 and the electrode bus 24 and the return bus 26 may likewise be screenprinted onto the other components. For example, the resistive layer 20 may be printed or otherwise applied to the flexible polymer support film 18 and then the interdigitated electrodes 22, electrode bus 24, and return bus 26 printed on top of that or the interdigitated electrodes 22, electrode bus 24, and return bus 26 may be printed or otherwise applied to the flexible polymer support film 18 and then the resistive layer 20, printed on top of that. This latter configuration may help retain and protect the conductive layer.
[0051] Referring still to
[0052] The result of this bifurcation in the power bus is to reduce the difference in path length of electrical current between terminals 30 and 32 for paths through interdigitated electrodes 22 at the far right end of the heater strip 16 as opposed to at the far left end of the heater strip 16 thereby providing more uniform heating.
[0053] Referring now to
[0054] Referring now to
[0055] Referring also to
[0056] In this example, the adhesive layer 52 is shown on top of the electrode bus 24 and return bus 26 with respect to the polymer support film 18, but in an alternative configuration the adhesive layer 52 can be placed directly on the polymer support film 18 on a side opposite the electrode bus 24 and return bus 26. In either case the adhesive layer 52 helps stabilize the connection of the first and second components 42a and 42b.
[0057] Referring again to
[0058] Clearly this technique may be used to assemble more than two components 42 together for the construction of the heater strip 16.
[0059] Referring now to
[0060] Referring now to
[0061] The polymer support film 18 may be a black material or may be transparent to allow the black of the resistive layer 20 to be visible therethrough to present a black appearance when the heater strip 16 is viewed along a viewing direction 64 from the interior of the automobile. This black appearance matches the black masking 56 found at the interior edges of the windshield in the region of the windshield wiper park position 14 to which the heater strip 16 is attached.
[0062] The clip 44 may be held against the windshield 10 by an additional adhesive layer or material such as double stick tape 67 and may communicate through cable 53 with control electronics 66, for example, a timer, limiting the amount of time of operation of the heater strip 16 to an amount of time necessary to melt typical ice accumulation. In this regard, the timer of the control electronics 66 may pass or block power from an automotive battery 68 and allows the heater strip 16 to be used in a maximum heat output mode for rapid defrosting of the windshield wipers without concern that this high heat mode could unduly waste power or damage the components of the heater strip 16 after cooling ice has dissipated and the interior cabin temperature of vehicle increases, for example, through the use of conventional windshield defrosters and the like. The timer 66 may communicate with an activation switch 70 to automatically activate when the switch is pressed by the driver.
[0063] Referring now to
[0064] Certain terminology is used herein for purposes of reference only, and thus is not intended to be limiting. For example, terms such as “upper”, “lower”, “above”, and “below” refer to directions in the drawings to which reference is made. Terms such as “front”, “back”, “rear”, “bottom” and “side”, describe the orientation of portions of the component within a consistent but arbitrary frame of reference which is made clear by reference to the text and the associated drawings describing the component under discussion. Such terminology may include the words specifically mentioned above, derivatives thereof, and words of similar import. Similarly, the terms “first”, “second” and other such numerical terms referring to structures do not imply a sequence or order unless clearly indicated by the context.
[0065] When introducing elements or features of the present disclosure and the exemplary embodiments, the articles “a”, “an”, “the” and “said” are intended to mean that there are one or more of such elements or features. The terms “comprising”, “including” and “having” are intended to be inclusive and mean that there may be additional elements or features other than those specifically noted. It is further to be understood that the method steps, processes, and operations described herein are not to be construed as necessarily requiring their performance in the particular order discussed or illustrated, unless specifically identified as an order of performance. It is also to be understood that additional or alternative steps may be employed.
[0066] Various features of the invention are set forth in the following claims. It should be understood that the invention is not limited in its application to the details of construction and arrangements of the components set forth herein. The invention is capable of other embodiments and of being practiced or carried out in various ways. Variations and modifications of the foregoing are within the scope of the present invention. It also being understood that the invention disclosed and defined herein extends to all alternative combinations of two or more of the individual features mentioned or evident from the text and/or drawings. All of these different combinations constitute various alternative aspects of the present invention. The embodiments described herein explain the best modes known for practicing the invention and will enable others skilled in the art to utilize the invention.
[0067] All of the publications described herein, including patents and non-patent publications are hereby incorporated herein by reference in their entireties.