1. Field of the Invention
This invention relates generally to a heatable transparency, such as a laminated vehicle windshield and, more particularly, to a heatable transparency having improved bus bar and safety features.
2. Technical Considerations
It has been known to pass electric current through a transparent, electrically conductive coating on a laminated vehicle windshield in order to raise the temperature of the windshield. Typically, a source of electrical potential is connected to the conductive coating through a pair of spaced bus bars positioned along opposite sides of the conductive coating. The bus bars are in electrical contact with the conductive coating in order to provide current flow through the coating between the bus bars. The bus bars have relatively lower resistivity compared to the conductive coating and distribute the current over the coating area to be heated. Conventional bus bars are typically formed by metallic foil strips or strips of metallic-ceramic frit material fused onto a surface of one of the sheets of the laminate. A conventional arrangement includes bus bars configured as substantially parallel strips on opposites sides of the conductive coating, with electrical leads attached to each bus bar.
Heatable windshields can also include a “cut-out” area along an edge of the windshield that is free of the conductive coating. This coating-free area permits the passage of electromagnetic energy, such as radio waves, through the windshield for uses such as an electronic toll collection (ETC) system. Conventional bus bar designs require the bus bar to bend around this coating free area to maintain contact with the conductive coating.
A crack in a heatable windshield or the conductive coating can alter the electric heating circuit in ways that can damage the transparency or the conductive coating or have other undesirable effects. A break in the conductive coating can increase the resistance in the coated areas, with the result that the power output increases in the affected area. The increased power can raise temperatures to such an extent that the transparency can be thermally damaged. Excessive temperatures can extend propagation of a crack in the glass or can melt the plastic interlayer of the windshield.
Therefore, it would be advantageous to provide a transparency, such as a laminated automotive transparency, having an improved bus bar design that allows for easier and less costly manufacture as well as improving the electrical connection between the bus bars and conductive coating. It would also be advantageous to provide a laminated transparency that provides an arrangement for detecting a crack in the transparency and/or the conductive coating.
The present invention provides an electrically heatable transparency, comprising: at least one substrate; a first bus bar spaced from a second bus bar; and an electrically conductive coating formed over at least a portion of the substrate, with the first and second bus bars in electrical contact with the coating, wherein at least one of the bus bars has an edge region in electrical contact with the coating, and the edge region is tapered such that the coating is of substantially uniform thickness on the edge region.
The present invention also provides an electrically heatable transparency, comprising: at least one substrate; at least one bus bar carried on the substrate; a conductive coating over at least a portion of the substrate; and a conductive bridge extending between and electrically interconnecting the bus bar and the coating.
The present invention further provides an electrically heatable transparency, comprising: a substrate; at least one bus bar; and a conductive coating in electrical contact with the bus bar, wherein the conductive coating includes a cut-out area, and the bus bar comprises a first portion, a second portion, and a middle portion, wherein the middle portion has a first segment extending between the first and second portions and spaced from the coating and a second segment in electrical contact with the coating and generally following an outline of the cut-out area, and wherein the first and second portions have a first width and the first and second segments of the middle portion have a second width less than the first width.
The present invention also provides an electrically heatable transparency, comprising: a substrate; at least one bus bar; and a conductive coating in electrical contact with the bus bar, wherein the bus bar comprises a plurality of separate, spaced apart metallic pieces in contact with a conductive extension strip in electrical contact with a power source.
Additional advantages and details of the invention are described below with reference to the exemplary embodiments illustrated in the accompanying drawing figures, in which like reference numbers identify like parts throughout.
As used herein, spatial or directional terms, such as “left”, “right”, “inner”, “outer”, “above”, “below”, and the like, relate to the invention as it is shown in the drawing figures. However, it is to be understood that the invention can assume various alternative orientations and, accordingly, such terms are not to be considered as limiting. Further, as used herein, all numbers expressing dimensions, physical characteristics, processing parameters, quantities of ingredients, reaction conditions, and the like, used in the specification and claims are to be understood as being modified in all instances by the term “about”. Accordingly, unless indicated to the contrary, the numerical values set forth in the following specification and claims may vary depending upon the desired properties sought to be obtained by the present invention. At the very least, and not as an attempt to limit the application of the doctrine of equivalents to the scope of the claims, each numerical value should at least be construed in light of the number of reported significant digits and by applying ordinary rounding techniques. Moreover, all ranges disclosed herein are to be understood to encompass the beginning and ending range values and any and all subranges subsumed therein. For example, a stated range of “1 to 10” should be considered to include any and all subranges between (and inclusive of) the minimum value of 1 and the maximum value of 10; that is, all subranges beginning with a minimum value of 1 or more and ending with a maximum value of 10 or less, e.g., 1 to 3.3, 4.7 to 7.5, 5.5 to 10, and the like. Further, as used herein, the terms “formed over”, “deposited over”, or “provided over” mean formed, deposited, or provided on but not necessarily in contact with the surface. For example, a coating layer “formed over” a substrate does not preclude the presence of one or more other coating layers or films of the same or different composition located between the formed coating layer and the substrate. All documents referred to herein are to be understood to be incorporated by reference in their entirety. As used herein, the terms “polymer” or “polymeric” refer to oligomers, homopolymers, copolymers, and terpolymers, e.g., polymers formed from two or more types of monomers or polymers. The terms “visible region” or “visible light” refer to electromagnetic radiation having a wavelength in the range of 380 nm to 800 nm. The terms “infrared region” or “infrared radiation” refer to electromagnetic radiation having a wavelength in the range of greater than 800 nm to 100,000 nm. The terms “ultraviolet region” or “ultraviolet radiation” mean electromagnetic energy having a wavelength in the range of 300 nm to less than 380 nm.
In the following discussion, features of the invention will be discussed generally with reference to use in a laminated vehicle transparency, such as a vehicle windshield. However, it is to be understood that the specifically disclosed exemplary embodiments are presented simply to explain the general concepts of the invention and that the invention is not limited to these specific exemplary embodiments. As would be appreciated by those skilled in the art, the invention can be practiced in many fields, such as but not limited to, laminated or non-laminated residential and/or commercial windows, insulating glass units, and/or transparencies for land, air, space, above water and under water vehicles, e.g., automotive windshields, sidelights, back lights, sunroofs, and moon roofs, just to name a few.
An exemplary non-limiting automotive transparency 10 incorporating features of the invention is illustrated in
As best seen in
In the broad practice of the invention, the plies 12, 18 of the transparency 10 can be of the same or different materials. The plies 12, 18 can include any desired material having any desired characteristics. For example, one or more of the plies 12, 18 can be transparent or translucent to visible light. By “transparent” is meant having visible light transmittance of greater than 0% to 100%. Alternatively, one or more of the plies 12, 18 can be translucent. By “translucent” is meant allowing electromagnetic energy (e.g., visible light) to pass through but diffusing this energy such that objects on the side opposite the viewer are not clearly visible. Examples of suitable materials include, but are not limited to, plastic substrates (such as acrylic polymers, such as polyacrylates; polyalkylmethacrylates, such as polymethylmethacrylates, polyethylmethacrylates, polypropylmethacrylates, and the like; polyurethanes; polycarbonates; polyalkylterephthalates, such as polyethyleneterephthalate (PET), polypropyleneterephthalates, polybutyleneterephthalates, and the like; polysiloxane-containing polymers; or copolymers of any monomers for preparing these, or any mixtures thereof); ceramic substrates; glass substrates; or mixtures or combinations of any of the above. For example, one or more of the plies 12, 18 can include conventional soda-lime-silicate glass, borosilicate glass, or leaded glass. The glass can be clear glass. By “clear glass” is meant non-tinted or non-colored glass. Alternatively, the glass can be tinted or otherwise colored glass. The glass can be annealed or heat treated glass. As used herein, the term “heat treated” means tempered or at least partially tempered. The glass can be of any type, such as conventional float glass or flat glass, and can be of any composition having any optical properties, e.g., any value of visible transmission, ultraviolet transmission, infrared transmission, and/or total solar energy transmission. By “float glass” is meant glass formed by a conventional float process in which molten glass is deposited onto a molten metal bath and controllably cooled to form a float glass ribbon. The ribbon is then cut into sheets that are subsequently shaped and/or heat-treated as desired. Examples of float glass processes are disclosed in U.S. Pat. Nos. 4,466,562 and 4,671,155. The first and second plies 12, 18 can each be, for example, clear float glass or can be tinted or colored glass or one ply can be clear glass and the other colored glass. Although not limiting to the invention, examples of glass suitable for the first ply and/or second ply are described in U.S. Pat. Nos. 4,746,347; 4,792,536; 5,240,886; 5,385,872; and 5,393,593. The first and second plies can be of any desired dimensions, e.g., length, width, shape, or thickness. In one exemplary automotive transparency, the first and second plies can each be 1 mm to 10 mm thick, e.g., 1 mm to 5 mm thick, or 1.5 mm to 2.5 mm, or 1.8 mm to 2.3 mm.
The interlayer 24 can be of any desired material and can include one or more layers or plies. The interlayer 24 can be a polymeric or plastic material such as, for example, polyvinyl butyral, plasticized polyvinyl chloride, or multi-layered thermoplastic materials including polyethylene terephthalate, etc. Suitable interlayer materials are disclosed, for example but not to be considered as limiting, in U.S. Pat. Nos. 4,287,107 and 3,762,988. The interlayer 24 secures the first and second plies 12, 18 together, provides energy absorption, reduces noise, and increases the strength of the laminated structure. The interlayer 24 can also be a sound absorbing or attenuating material as described, for example, in U.S. Pat. No. 5,796,055. The interlayer 24 can have a solar control coating provided thereon or incorporated therein or can include a material that imparts a color to the interlayer and/or enhances the solar properties of the laminate, e.g. reduces solar energy transmission.
The coating 30 is an electrically conductive coating deposited over at least a portion of a surface of one of the glass plies, such as on the inner surface 20 of the outboard glass ply 18 (as shown in
The coating 30 can be a functional coating. As used herein, the term “functional coating” refers to a coating that modifies one or more physical properties of the substrate over which it is deposited, e.g., optical, thermal, chemical or mechanical properties, and is not intended to be entirely removed from the substrate during subsequent processing. The conductive coating 30 can have one or more functional coating layers or films of the same or different composition or functionality.
The conductive coating 30 can be, for example, an electrically conductive coating used to make heatable windows as disclosed in U.S. Pat. Nos. 5,653,903 and 5,028,759, or a single-film or multi-film coating used as an antenna. Likewise, the conductive coating 30 can be a conductive, solar control coating. As used herein, the term “solar control coating” refers to a coating comprised of one or more layers or films that affect the solar properties of the coated article, such as but not limited to the amount of solar radiation, for example, visible, infrared, or ultraviolet radiation, reflected from, absorbed by, or passing through the coated article, shading coefficient, emissivity, etc. The solar control coating can block, absorb or filter selected portions of the solar spectrum, such as but not limited to the IR, UV, and/or visible spectrums. Examples of solar control coatings that can be used in the practice of the invention are found, for example but not to be considered as limiting, in U.S. Pat. Nos. 4,898,789; 5,821,001; 4,716,086; 4,610,771; 4,902,580; 4,716,086; 4,806,220; 4,898,790; 4,834,857; 4,948,677; 5,059,295; and 5,028,759, and also in U.S. patent application Ser. No. 09/058,440.
The conductive coating 30 can also be an electroconductive low emissivity coating that allows visible wavelength energy to be transmitted through the coating 30 but reflects longer-wavelength solar infrared energy. By “low emissivity” is meant emissivity less than 0.4, such as less than 0.3, such as less than 0.2, such as less than 0.1, e.g., less than or equal to 0.05. Examples of low emissivity coatings are found, for example, in U.S. Pat. Nos. 4,952,423 and 4,504,109 and British reference GB 2,302,102.
Non-limiting examples of suitable conductive coatings 30 for use with the invention are commercially available from PPG Industries, Inc. of Pittsburgh, Pa. under the SUNGATE® and SOLARBAN® families of coatings. Such coatings typically include one or more anti-reflective coating films comprising dielectric or anti-reflective materials, such as metal oxides or oxides of metal alloys, which are transparent to visible light. The conductive coating 30 can also include one or more infrared reflective films comprising a reflective metal, e.g., a noble metal such as gold, copper or silver, or combinations or alloys thereof, and can further comprise a primer film or barrier film, such as titanium, as is known in the art, located over and/or under the metal reflective layer. The conductive coating 30 can have any desired number of infrared reflective films, such as 1 or more silver layers, e.g., 2 or more silver layers, e.g., 3 or more silver layers. A non-limiting example of a coating having three silver layers is disclosed in U.S. patent application Ser. No. 10/364,089 (Publication No. 180547A1).
The conductive coating 30 can be deposited by any conventional method, such as but not limited to conventional chemical vapor deposition (CVD) and/or physical vapor deposition (PVD) methods. Examples of CVD processes include spray pyrolysis, chemical vapor deposition (CVD), and sol-gel deposition. Examples of PVD processes include electron beam evaporation and vacuum sputtering (such as magnetron sputter vapor deposition (MSVD)). In one non-limiting embodiment, the conductive coating 30 can be deposited by MSVD. Examples of MSVD coating devices and methods will be well understood by one of ordinary skill in the art and are described, for example, in U.S. Pat. Nos. 4,379,040; 4,861,669; 4,898,789; 4,898,790; 4,900,633; 4,920,006; 4,938,857; 5,328,768; and 5,492,750.
The decorative band 26 can be on one or more of the surfaces of one of the glass plies 12, 18, and applied, e.g. by screen printing and firing the band onto the surface of the ply during heating of the ply for bending or in a separate heating step. In one non-limiting embodiment, the band 26 forms an opaque border about the periphery of the transparency 10 that serves to conceal attachment devices and other elements when installed in a vehicle and may also conceal portions of the bus bars of the bus bar assembly 32.
In the non-limiting embodiment illustrated in
The power source 34 can be any conventional power source, such as but not limited to a conventional vehicle battery, for example a conventional eighteen or twenty-four volt vehicle battery. However, in one non-limiting embodiment, the power source 34 is a fourteen volt power source, such as a fourteen volt battery.
Line 58 in
In another non-limiting aspect of the invention illustrated in
In a further non-limiting aspect of the invention shown in
In one non-limiting embodiment, a bridge member of the invention, for example as shown in
An alternative upper bus bar 120 is shown in
Although not required, the first and second bus bars 40, 42 can be connected to a comparator, e.g., a ground fault detector 132, which is further connected to a vehicle ground 134, as shown in
It will be readily appreciated by those skilled in the art that modifications can be made to the invention without departing from the concepts disclosed in the foregoing description. Accordingly, the particular embodiments described in detail herein are illustrative only and are not limiting to the scope of the invention, which is to be given the full breadth of the appended claims and any and all equivalents thereof.
Number | Name | Date | Kind |
---|---|---|---|
2256642 | Gaut et al. | Sep 1941 | A |
3067310 | Walz et al. | Dec 1962 | A |
3762988 | Clock et al. | Oct 1973 | A |
4287107 | Hermann et al. | Sep 1981 | A |
4379040 | Gillery | Apr 1983 | A |
4385226 | Sauer et al. | May 1983 | A |
4443691 | Sauer | Apr 1984 | A |
4504109 | Taga et al. | Mar 1985 | A |
4610771 | Gillery | Sep 1986 | A |
4716086 | Gillery et al. | Dec 1987 | A |
4725710 | Ramus et al. | Feb 1988 | A |
4746347 | Sensi | May 1988 | A |
4778732 | Hasegawa et al. | Oct 1988 | A |
4792536 | Pecoraro et al. | Dec 1988 | A |
4806220 | Finley | Feb 1989 | A |
4834857 | Gillery | May 1989 | A |
4861669 | Gillery | Aug 1989 | A |
4898789 | Finley | Feb 1990 | A |
4898790 | Finley | Feb 1990 | A |
4900633 | Gillery | Feb 1990 | A |
4902580 | Gillery | Feb 1990 | A |
4920006 | Gillery | Apr 1990 | A |
4938857 | Gillery | Jul 1990 | A |
4948677 | Gillery | Aug 1990 | A |
4952423 | Hirata et al. | Aug 1990 | A |
5028759 | Finley | Jul 1991 | A |
5059295 | Finley | Oct 1991 | A |
5240886 | Gulotta et al. | Aug 1993 | A |
5328768 | Goodwin | Jul 1994 | A |
5385872 | Gulotta et al. | Jan 1995 | A |
5393593 | Gulotta et al. | Feb 1995 | A |
5492750 | Shumaker, Jr. et al. | Feb 1996 | A |
5653903 | Pinchok, Jr. et al. | Aug 1997 | A |
5796055 | Benson, Jr. et al. | Aug 1998 | A |
5821001 | Arbab et al. | Oct 1998 | A |
6559419 | Sol et al. | May 2003 | B1 |
7039304 | Gerhardinger et al. | May 2006 | B2 |
20030180547 | Buhay et al. | Sep 2003 | A1 |
Number | Date | Country |
---|---|---|
2 302 102 | Jan 1997 | GB |
62456 | Feb 1987 | JP |
Number | Date | Country | |
---|---|---|---|
20060186105 A1 | Aug 2006 | US |