IP Library › Granted Patent US 9,709,717
Granted Patent B2
US 9,709,717 · App. 13/696,882 · Granted Jul 18, 2017

Solar control glazing

Inventors: Kadosa Hevesi (Jumet, BE); Jan Sicha (Jumet, BE)
Assignee: AGC Glass Europe
G02B5/208B32B17/10036B32B17/10229C03C17/36C03C17/366C03C17/3613C03C17/3626C03C17/3639C03C17/3644C03C17/3652C03C17/3681G02B5/0858Y10T428/2495
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 9,709,717
App. No.
13/696,882
Granted
Jul 18, 2017
Kind
B2
Abstract

The present invention relates to a substrate carrying a multilayer solar control stack, as well as to a multiple glazing incorporating at least one such sheet of glassy material carrying a solar control stack. The multilayer solar control stack comprises three functional layers based on a material which reflects infrared radiation and four dielectric coatings such that each functional layer is surrounded by dielectric coating. The geometrical thickness of the second functional layer starting from the substrate is less by at least 4% than the geometrical thicknesses of the first and third functional layers. The invention applies particularly to the formation of high-selectivity solar control glazings.

Claims (60)

1. A transparent substrate comprising a solar-control multilayer stack, said solar control stack comprising in sequence starting from the substrate:

a first dielectric layer;

a first functional layer comprising a material that reflects infrared radiation;

a second dielectric layer;

a second functional layer comprising a material that reflects infrared radiation;

a third dielectric layer;

a third functional layer comprising a material that reflects infrared radiation; and

a fourth dielectric layer,

wherein a geometric thickness of the second functional layer starting from the substrate is at least 4% less than geometric thicknesses of the first and third functional layers,

wherein the functional layers comprise a material selected from the group consisting of silver, gold, palladium, platinum, aluminum, copper, and mixtures and alloys thereof, and

wherein the first functional layer has a thickness of 80 Å to 161 Å, the second functional layer has a thickness of 64.8 Å to 120 Å, and the third functional layer has a thickness of 80 Å to 217 Å.

2. The transparent substrate of claim 1 , wherein the geometric thickness of the second functional layer starting from the substrate is at least 8% less than the geometric thickness of the third functional layer.

3. The transparent substrate of claim 1 , wherein the geometric thickness of the second functional layer starting from the substrate is at least 8% less than the geometric thicknesses of the first and third functional layers.

4. The transparent substrate of claim 1 , wherein the geometric thickness of the second functional layer starting from the substrate is at least 15% less than the geometric thickness of the third functional layer.

5. The transparent substrate of claim 1 , wherein the ratio of the optical thickness of the dielectric coating positioned between the second and the third functional layers to the optical thickness of the final dielectric coating positioned beyond the third functional layer starting from the substrate is between 1.3 and 2.6.

6. The transparent substrate of claim 5 , wherein the ratio of the optical thickness of the dielectric coating positioned between the second and the third functional layers to the optical thickness of the final dielectric coating positioned beyond the third functional layer starting from the substrate is between 1.5 and 2.1.

7. The transparent substrate of claim 1 , wherein the ratio of the optical thickness of the dielectric coating positioned between the second and third functional layer to the geometric thickness of the third functional layer starting from the substrate is between 5.5 and 10.

8. The transparent substrate of claim 1 , wherein the ratio of the optical thickness of the dielectric coating positioned between the substrate and the first functional layer to the optical thickness of the last dielectric coating positioned beyond the third functional layer is between 0.5 and 2.7.

9. The transparent substrate of claim 8 , wherein the ratio of the optical thickness of the dielectric coating positioned between the substrate and the first functional layer to the optical thickness of the last dielectric coating positioned beyond the third functional layer is between 0.8 and 2.

10. The transparent substrate of claim 1 , wherein the ratio of the optical thickness of the third dielectric coating D3 to the optical thickness of the second dielectric coating D2 positioned between the first functional layer starting from the substrate and the second functional layer is between 0.4 and 1.1.

11. The transparent substrate of claim 1 , wherein the ratio of the optical thickness of the second dielectric coating D2 to the optical thickness of the first dielectric coating D1 is between 1.15 and 3.4.

12. The transparent substrate of claim 1 , wherein the stack comprises an absorbent layer such that, when the stack is deposited on a sheet of standard clear glass having a thickness of 6 mm, the total light absorption A L of the glass bearing the stack, measured on the substrate side, is at least 25%.

13. A multiple glazing, comprising:

the transparent substrate of claim 1 .

14. A laminated glazing, comprising:

the transparent substrate of claim 1 joined to a sheet comprising a glassy material with an adhesive plastic.

15. The transparent substrate of claim 1 , wherein the ratio of the optical thickness of the dielectric coating positioned between the second and third functional layer to the geometric thickness of the third functional layer starting from the substrate is between 7 and 9.

16. The transparent substrate of claim 1 , wherein the ratio of the optical thickness of the dielectric coating positioned between the substrate and the first functional layer to the optical thickness of the last dielectric coating positioned beyond the third functional layer is between 1.3 and 2.3.

17. The transparent substrate of claim 1 , wherein the ratio of the optical thickness of the second dielectric coating D2 to the optical thickness of the first dielectric coating D1 is between 1.6 and 2.1.

18. The transparent substrate of claim 1 , wherein the stack comprises an absorbent layer such that, when the stack is deposited on a sheet of standard clear glass having a thickness of 6 mm, the total light absorption A L of the glass bearing the stack, measured on the substrate side, is at least 30%.

19. The transparent substrate of claim 1 , wherein the stack comprises an absorbent layer such that, when the stack is deposited on a sheet of standard clear glass having a thickness of 6 mm, the total light absorption A L of the glass bearing the stack, measured on the substrate side, is at least 33%.

20. A multiple glazing comprising a transparent substrate, the transparent substrate further comprising a solar-control multilayer stack comprising in sequence starting from the substrate:

a first dielectric layer;

a first functional layer comprising a material that reflects infrared radiation;

a second dielectric layer;

a second functional layer comprising a material that reflects infrared radiation;

a third dielectric layer;

a third functional layer comprising a material that reflects infrared radiation; and

a fourth dielectric layer,

wherein the geometric thickness of the second functional layer starting from the substrate is at least 4% less than the geometric thicknesses of the first and third functional layers, and

wherein the multiple glazing has

a solar factor between 14 and 36%;

a light transmission between 38 and 69%;

an external light reflection, on the glass side of the coated glass sheet, between 7 and 25%; and

a color in external reflection for which the value b* is less than or equal to a* and for which the angular variation of a* between 0° and 55° is between −3.6 and 2.

21. A transparent coated substrate, comprising in order starting from the coated substrate:

a first dielectric layer;

a first functional layer;

a second dielectric layer;

a second functional layer;

a third dielectric layer;

a third functional layer; and

a fourth dielectric layer;

wherein a geometric thickness of the second functional layer is at least 4% less than geometric thicknesses of the first and third functional layers,

wherein the functional layers comprise silver, and

wherein the first functional layer has a thickness of 80 Å to 161 Å, the second functional layer has a thickness of 64.8 Å to 120 Å, and the third functional layer has a thickness of 80 Å to 217 Å.

22. The transparent substrate of claim 20 , wherein the functional layers comprise silver.

23. The transparent substrate of claim 1 , wherein every functional layer in the solar control stack is separated from every other functional layer by one or more dielectric layers.

24. The transparent substrate of claim 1 , wherein the substrate comprising the stack has a selectivity of greater than 1.9 when the stack is deposited on a sheet of standard soda-lime clear float glass having a thickness of 6 mm and when the coated sheet is mounted as a double glazing with another sheet of standard soda-lime clear float glass having a thickness of 4 mm that is uncoated.

25. The transparent substrate of claim 20 , wherein the substrate comprising the stack has a selectivity of greater than 1.9 when the stack is deposited on a sheet of standard soda-lime clear float glass having a thickness of 6 mm and when the coated sheet is mounted as a double glazing with another sheet of standard soda-lime clear float glass having a thickness of 4 mm that is uncoated.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 5, 2012
From: HEVESI, KADOSA; SICHA, JAN
To: AGC GLASS EUROPE
Reel/Frame 029407/0824 →
Priority Claims (1)
BE 2010/0311 · May 25, 2010 · national
Continuity (1)
Related Publication 20130059137A1 · Mar 7, 2013