Claims
- 1. An electrochromic window assembly comprising:
a first transparent substrate including a first conductive coating on a surface thereof; a second transparent substrate including a second conductive coating on a surface thereof, said first transparent substrate and said second transparent substrate being spaced from each other to define a chamber therebetween; an electrochromic medium contained in said chamber, said electrochromic medium having a luminous transmittance that varies upon application of an electrical potential through said electrochromic medium; a plurality of first spaced facilities contacting said first conductive coating and capable of delivering electrical current to said first conductive coating; and a plurality of second spaced facilities contacting said second conductive coating and capable of delivering electrical current to said second conductive coating to establish said electrical potential through said electrochromic medium.
- 2. The window assembly of claim 1, wherein said plurality of first spaced facilities and said plurality of second spaced facilities are bus bars.
- 3. The window assembly of claim 1, wherein at least one of said plurality of first spaced facilities and at least one of said plurality of second spaced facilities are positioned about a perimeter of said window assembly.
- 4. The window assembly of claim 3, wherein said plurality of first spaced facilities and said plurality of second spaced facilities are arranged about said perimeter.
- 5. The window assembly of claim 4, wherein said plurality of first spaced facilities are arranged between said plurality of second spaced facilities about said perimeter.
- 6. The window assembly of claim 1, wherein said first transparent substrate and said second transparent substrate have a non-symmetric geometry.
- 7. The window assembly of claim 1, wherein said plurality of first spaced facilities contact said first conductive coating along opposing ends thereof, and said plurality of second spaced facilities contact said second conductive coating along opposing ends thereof, said opposing ends of said first conductive coating and said opposing edges of said second conductive coating being spaced from each other.
- 8. The window assembly of claim 7, wherein at least one of said opposing edges of said first conductive coating is in at least close proximity to said perimeter of said widow assembly.
- 9. The window assembly of claim 8, wherein said opposing ends of said first conductive coating and said opposing ends of said second conductive coating are in at least close proximity to said perimeter of said widow assembly.
- 10. The window assembly of claim 1, wherein each of said plurality of first spaced facilities are equal in size and each of said plurality of second spaced facilities are equal in size.
- 11. The window assembly of claim 1, wherein at least one of said plurality of first spaced facilities is of a different length than another of said plurality of first spaced facilities.
- 12. The window assembly of claim 1, wherein each of said plurality of first spaced facilities and said plurality of second spaced facilities is at least 0.5 inches in length.
- 13. The window assembly of claim 1, wherein said plurality of first spaced facilities are spaced apart at least 0.5 inches, and said plurality of second spaced facilities are spaced apart at least 0.5 inches
- 14. The window assembly of claim 11, wherein each of said plurality of first spaced facilities is spaced from each of said plurality of second spaced facilities about said perimeter at a distance of at least 0.5 inches.
- 15. The window assembly of claim 1, further comprising resistors positioned to adjust said electrical current delivered to at least one of said plurality of first spaced facilities.
- 16. The window assembly of claim 1, further comprising a controller capable of controlling delivery of said electrical current to selected ones of said plurality of first spaced facilities and selected ones of said plurality of second spaced facilities, such that said luminous transmittance through a first portion of said electrochromic medium is different from said luminous transmittance through a second portion of said electrochromic medium.
- 17. The window assembly of claim 16, wherein said controller is capable of shorting said electrical current at other selected ones of said plurality of first spaced facilities and at other selected ones of said plurality second spaced facilities.
- 18. The window assembly of claim 1, wherein said electrochromic medium comprises at least one anodic electrochromic compound and at least one cathodic electrochromic compound, wherein application of electrical potential to said electrochromic medium causes simultaneous oxidation of said anodic electrochromic compound and reduction of said cathodic electrochromic compound, thereby causing reduced luminous transmittance.
- 19. The window assembly of claim 1, wherein the electrochromic medium is self-erasing.
- 20. The window assembly of claim 1, wherein said first and second transparent substrates are selected from glass, polymeric materials and combinations thereof.
- 21. The window assembly of claim 1, wherein said electrochromic window assembly is selected from automotive windshields, automotive side windows, automotive sunroofs, architectural glazings, and aircraft windows.
- 22. The window assembly of claim 1, wherein said first and said second conductive coatings have a sheet resistance ranging from 1 ohm per square to 10 ohms per square.
- 23. The window assembly of claim 1, wherein said first and said second conductive coatings have a thickness ranging from 5,000 Å to 50,000 Å.
- 24. The window assembly of claim 1, wherein said electrical current is applied to said first and said second conductive coatings in the range of 0.5 volts to 1.0 volt.
- 25. The window assembly of claim 1, wherein said luminous transmittance of at least a portion of said assembly varies from a minimum LTA ranging from 1 to 20 percent and a maximum LTA ranging from 60 to 80 percent.
- 26. A method for providing uniform coloring to an electrochromic window assembly comprising:
providing an electrochromic window assembly comprising first and second spaced apart transparent substrates defining a chamber therebetween, said first transparent substrate having a first conductive coating and said second transparent substrate having a second conductive coating, said chamber containing an electrochromic medium capable of coloring upon application of electrical potential thereto to provide reduced luminous transmittance; and applying an electrical current to opposing ends of said first conductive coating and to opposing ends of said second conductive coating to establish said electrical potential through said electrochromic medium, said opposing ends of said first conductive coating and said second conductive coating being spaced from each other, wherein said coloring of said electrochromic medium is uniform.
- 27. The method according to claim 26, wherein said opposing ends of said first conductive coating and said opposing ends of said second conductive coating are at least in close proximity to a perimeter edge of said assembly.
- 28. The method according to claim 26, further comprising positioning a plurality of first spaced facilities along opposing ends of said first transparent substrate in electrical contact with said opposing ends of said first coating for providing said electrical current to said first conductive coating and positioning a plurality of second spaced facilities along opposing ends of said second transparent substrate in electrical contact with said opposing ends of said second coating for providing said electrical current to said second conductive coating.
- 29. A method for providing preferential coloring to a portion of an electrochromic window assembly, comprising:
providing an electrochromic window assembly comprising first and second spaced apart transparent substrates defining a chamber therebetween, said first transparent substrate having a first conductive coating and said second transparent substrate having a second conductive coating, said chamber containing an electrochromic medium capable of coloring upon application of electrical potential thereto to provide reduced luminous transmittance; electrically connecting a plurality of first spaced facilities to said first conductive coating for providing said electrical potential to said first conductive coating; electrically connecting a plurality of second spaced facilities to said second conductive coating for providing said electrical potential to said second conductive coating; applying an electrical current to selected ones of said plurality of first spaced facilities and to selected ones of said plurality of second spaced facilities to establish said electrical potential through a selected portion of said electrochromic medium such that said selected portion changes color and reduces its luminous transmittance.
- 30. The method according to claim 29, comprising positioning opposing ends of said first conductive coating at least in close proximity to a perimeter of said assembly and positioning opposing ends of said second conductive coating at least in close proximity to said perimeter of said assembly, electrically connecting said plurality of first spaced facilities to said first conductive coating along said opposing ends of said first conductive coating, and electrically connecting said plurality of second spaced facilities to said second conductive coating along said opposing ends of said second conductive coating.
- 31. The method according to claim 30, comprising spacing said opposing ends of said first conductive coating from said opposing ends of said second conductive coating along said perimeter of said assembly.
- 32. The method according to claim 29, further comprising shorting said electrical current at other selected ones of said plurality of first spaced facilities and at other selected ones of said plurality of second spaced facilities.
- 33. The method according to claim 29, further comprising varying said electrical current applied to said selected ones of said plurality of first spaced facilities and to said selected ones of said plurality of second spaced facilities, to provide varying degrees of reduced luminous transmittance to said selected portion of said electrochromic medium.
- 34. The method according to claim 33, wherein said electrochromic window assembly is an automotive windshield and said portion of said electrochromic medium is a shade band.
- 35. The method according to claim 29, comprising positioning said first conductive coating at least in close proximity to a perimeter of said assembly and positioning said second conductive coating at least in close proximity to said perimeter edge of said assembly, electrically connecting said plurality of first spaced facilities to said first conductive coating about said entire perimeter, and electrically connecting said plurality of second spaced facilities to said second conductive coating about said entire perimeter
- 36. The method according to claim 35, comprising spacing said plurality of first spaced facilities at least 0.5 inches apart about said perimeter, spacing said plurality of second spaced facilities at least 0.5 inches apart about said perimeter, and spacing said plurality of first spaced facilities from said plurality of second spaced facilities at least 0.5 inches about said perimeter.
Parent Case Info
[0001] This application claims the benefit of U.S. Provisional Application No. 60/222,770 filed Aug. 3, 2000.
Provisional Applications (1)
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Number |
Date |
Country |
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60222771 |
Aug 2000 |
US |