Claims
- 1. A glazing panel, comprising:
- a vitreous substrate and, coated on the substrate by pyrolysis in any order,
- an absorbent coating layer (A) comprising at least one metal oxide selected from the group consisting essentially of oxides of chromium, cobalt and iron; and
- a non-absorbent coating layer (B) in contact with the absorbent coating layer (A) and comprising a non-absorbent material having a refractive index n(.lambda.) ranging from 1.4 to 3.0,
- wherein the glazing panel has a coated side and exhibits
- (i) a color purity of greater than 16%, as measured by reflection from the coated side; and
- (ii) a solar factor of less than 70%, and
- wherein the glazing panel has a dominant wavelength when viewed from the coated side, and wherein the non-absorbent coating layer (B) has a thickness which is sufficient to change the dominant wavelength of the glazing panel when viewed by reflection from the coated side.
- 2. The glazing panel according to claim 1, wherein the absorbent coating layer (A) has a composition comprised of:
- from 12% to 14% by weight of Cr.sub.2 O.sub.3 ;
- from 23% to 28% by weight of Fe.sub.2 O.sub.3 ; and
- the balance Co.sub.3 O.sub.4.
- 3. The glazing panel according to claim 1, wherein the nonabsorbent material is a material having a refractive index n(.lambda.) which is greater than spectral absorption index k(.lambda.) thereof over the whole of the visible spectrum ranging from 380 to 780 nm.
- 4. The glazing panel according to claim 3, wherein the non-absorbent material of the non-absorbent coating layer (B) is at least one material selected from the group consisting essentially of aluminum nitride, aluminum oxide, bismuth oxide, silicon nitride, stannic oxide, titanium oxide, zinc oxide, zirconium oxide and silicon oxide.
- 5. The glazing panel according to claim 1, wherein the substrate is clear glass.
- 6. The glazing panel according to claim 1, wherein the absorbent coating layer (A) is coated directly on the substrate and the non-absorbent coating layer (B) is an exposed coating layer.
- 7. The glazing panel according to claim 1, wherein the glazing panel has a light transmission factor which ranges between 30% and 65%.
- 8. The glazing panel according to claim 1, wherein the glazing panel has a mean ultra violet transmission, over a range of from 280 nm to 380 nm, of less than or equal to 30%.
- 9. The glazing panel according to claim 8, wherein the glazing panel has a mean ultra violet transmission, over the range 280 nm to 380 nm, of less than or equal to 15%.
- 10. The glazing panel according to claim 1, wherein the absorbent coating layer (A) has a geometric thickness which ranges from 40 to 75 nm.
- 11. The glazing panel according to claim 1, wherein the non-absorbent coating layer (B) has an optical thickness which ranges from 69 to 300 nm.
- 12. The glazing panel according to claim 1, wherein the non-absorbent coating layer (B) has a geometric thickness which ranges from 35 to 90 nm.
- 13. The glazing panel according to claim 1, wherein the glazing panel has a color purity, as measured by reflection from the coated side, which is greater than 50%.
- 14. The glazing panel according to claim 1, wherein the glazing panel has a dominant wavelength when viewed from the coated side, and wherein the dominant wavelength viewed by reflection from the coated side ranges between 470 and 490 nm.
- 15. The glazing panel according to claim 1, wherein the glazing panel has a dominant wavelength when viewed from the coated side, and wherein the dominant wavelength viewed by reflection from the coated side ranges between 575 and 596 nm.
- 16. A process for forming a glazing panel, comprising:
- a. sequentially pyrolytically coating a vitreous substrate with, in any order:
- an absorbent coating layer (A) comprising at least one metal oxide selected from the group consisting essentially of oxides of chromium, cobalt and iron; and
- a non-absorbent coating layer (B), in contact with the absorbent coating layer (A) and comprising a material having a refractive index n(.lambda.) which ranges from 1.4 to 3.0,
- wherein the glazing panel has a coated side and exhibits
- (i) a color purity of greater than 16%, as measured by reflection from the coated side; and
- (ii) a solar factor of less than 70%, and
- wherein the glazing panel has a dominant wavelength when viewed from the coated side, and wherein the non-absorbent coating layer (B) has a thickness which is sufficient to change the dominant wavelength of the glazing panel when viewed by reflection from the coated side.
- 17. The process according to claim 16, wherein sequential pyrolytic coating is carried out at a temperature ranging from 550.degree. C. to 750.degree. C.
- 18. The process according to claim 16, wherein sequential pyrolytic coating to form absorbent coating layer (A) and non-absorbent coating layer (B) is by chemical vapor deposition.
Priority Claims (1)
Number |
Date |
Country |
Kind |
94 08 359 |
Apr 1994 |
GBX |
|
CROSS-REFERENCE TO RELATED APPLICATIONS
This is a Continuation-In-Part application of Serial No. 08/427,232, filed Apr. 24, 1995 now abandoned in which priority is claimed from Application No. 94 08 359.9 filed Apr. 27, 1994 in the United Kingdom, the entire specifications of which are incorporated herein by reference.
US Referenced Citations (6)
Foreign Referenced Citations (8)
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1117383 |
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CAX |
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Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
427232 |
Apr 1995 |
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