IP Library Granted Patent US 8,101,251
Granted Patent B2
US 8,101,251 · App. 12/305,007 · Granted Jan 24, 2012

Chemically curing all-in-one warm edge spacer and seal

Assignee: Dow Corning Corporation
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Quick Facts
Patent No.
US 8,101,251
App. No.
12/305,007
Granted
Jan 24, 2012
Kind
B2
Abstract

A water release agent that release water over an application temperature range in an amount sufficient to cure a composition is add to a curable composition containing 10 to 65 weight % of a moisture-curable, silane-functional, elastomeric, organic polymer; 0.1 to 3 weight % of a condensation catalyst; and (C) 15 to 25 weight % of a physical drying agent. When used as an edge-seal in an IG unit, the cured product of the composition performs the functions of sealing, bonding, spacing, and desiccating.

Claims (121)

1. A composition comprising:

(A) 10 to 65 weight % of a moisture-curable, silane-functional, elastomeric, organic polymer;

(B) 0.1 to 3 weight % of a condensation catalyst;

(C) 15 to 25 weight % of a physical drying agent;

(D) 5 to 30 weight % a water release agent that releases water over an application temperature range;

(E) 0 to 30 weight % of a filler;

(F) 0 to 30 weight % of a non-reactive, elastomeric, organic polymer;

(G) 0 to 5 weight % of a crosslinker;

(H) 0 to 5 weight % of a chemical drying agent other than ingredient (G);

(I) 0 to 5 weight % of an adhesion promoter other than ingredients (G) and (H);

(J) 0 to 20 weight % of a microcrystalline wax, which is a solid at 25° C.;

(K) 0 to 3 weight % of an anti-aging additive; and (L) 0 to 20 weight % of a tackifying agent.

2. The composition of claim 1 where the composition is prepared as a multiple part composition comprising (I) a wet part and (II) a dry part, and

(I) the wet part comprises

optionally (F) the non-reactive, elastomeric, organic polymer,

(D) the water release agent,

optionally (J) wax,

optionally (L) tackifying agent, and

optionally (E) reinforcing and extending fillers;

optionally (K) the anti-aging additive, and

(II) the dry part comprises

(A) the moisture-curable, silane-functional, elastomeric, organic polymer,

optionally (F) the non-reactive, elastomeric, polymer,

(B) the condensation catalyst,

(C) the physical drying agent,

optionally (J) the wax,

optionally (L) the tackifying agent,

optionally (G) the crosslinker,

optionally (H) the chemical drying agent,

optionally (K) the anti-aging additive, and

optionally (I) the adhesion promoter.

3. The composition of claim 1 where the composition is prepared as a multiple part composition comprising (I) a wet part and (II) a dry part, and

(I) the wet part comprises

(A) The moisture-curable, silane-functional, elastomeric, organic polymer

optionally (F) the non-reactive, elastomeric, organic polymer,

(D) the water release agent, optionally (J) wax,

optionally (L) tackifying agent, and

optionally (E) reinforcing and extending fillers;

optionally (K) the anti-aging additive, and

(II) the dry part comprises

Optionally (F) the non-reactive, elastomeric, organic polymer,

(B) the condensation catalyst,

(C) the physical drying agent,

optionally (J) the wax,

optionally (L) the tackifying agent,

optionally (G) the crosslinker,

optionally (H) the chemical drying agent,

optionally (K) the anti-aging additive, and

optionally (I) the adhesion promoter.

4. A process for making the composition of claim 2 comprising: 1) mixing under shear ingredients comprising (A), (B), and (C) to form the dry part, and 2) mixing under shear ingredients comprising (F) and (D) to form the wet part.

5. A process for making the composition of claim 2 comprising:

1) mixing under shear ingredients comprising (A), (F), (B), and (C) to form the dry part, and

2) mixing under shear ingredients comprising (F) and (D) to form the wet part.

6. A process for making the composition of claim 2 comprising:

1) mixing under shear ingredients comprising (A), (B), and (C) to form the dry part, and

2) mixing under shear ingredients comprising (J) and (D) to form the wet part.

7. A process for making the composition of claim 3 comprising:

1) mixing ingredients comprising (B), and (C) to form the dry part, and

2) mixing under shear ingredients comprising (A) and (D) to form the wet part.

8. A process for curing the composition of claim 1 , where curing the composition is performed by heating the composition at a temperature ranging from 80° C. to 110° C. during applying the composition to a substrate, after applying the composition to a substrate, or a combination thereof.

9. The composition of claim 1 , where ingredient (A) is selected from the group consisting of a silylated copolymer of an iso-mono-olefin and a vinyl aromatic monomer, a silylated homopolymer of the iso-mono-olefin, a silylated homopolymer of the vinyl aromatic monomer, and a combination thereof.

10. The composition of claim 1 , where ingredient (A) is selected from the group consisting of a silylated copolymer of isobutylene and an alkylstyrene, a silylated homopolymer of the isobutylene, a silylated copolymer of isoprene and isobutylene, a silylated homopolymer of the alkylstyrene, and a combination thereof.

11. The composition of claim 1 , where ingredient (B) is a tin (IV) compound.

12. The composition of claim 1 , where ingredient (C) is selected from the group consisting of zeolites, molecular sieves, and a combination thereof.

13. The composition of claim 1 , where ingredient (D) is precipitated calcium carbonate.

14. The composition of claim 1 , where ingredient (E) is present, and ingredient (E) is selected from the group consisting of a reinforcing filler, an extending filler, a thixotropic filler, a pigment, and a combination thereof.

15. The composition of claim 1 , where ingredient (F) is present, and ingredient (F) is polyisobutylene.

16. The composition of claim 1 , where ingredient (G) is present, and ingredient (G) comprises an alkoxysilane, an oligomeric reaction product of the alkoxysilane, or a combination thereof.

17. The composition of claim 1 , where ingredient (I) is present, and ingredient (I) is selected from the group consisting of tetraethylortho silicate, gamma-aminopropyltriethoxysilane, methacryloxypropyl trimethoxysilane, (ethylenediaminepropyl)trimethoxysilane, and (gamma-isocyanopropyl)triethoxysilane, and a combination thereof.

18. The composition of claim 1 , where ingredient (J) is present, and ingredient (J) is a non-polar hydrocarbon.

19. The composition of claim 1 , where ingredient (K) is present, and ingredient (K) is selected from the group consisting of an antioxidant, a UV absorber, a UV stabilizer, a heat stabilizer, and a combination thereof.

20. The composition of claim 1 , where ingredient (L) is present, and ingredient (L) is selected from the group consisting of aliphatic hydrocarbon resin, a hydrogenated terpene resin, a rosin esters, a hydrogenated rosin glycerol ester, and a combination thereof.

21. A method comprising:

I) adding (D) 5 to 30 weight % a water release agent that releases water over an application temperature range to a composition comprising:

(A) 10 to 65 weight % of a moisture-curable, silane-functional, elastomeric, organic polymer;

(B) 0.1 to 3 weight % of a condensation catalyst;

(C) 15 to 25 weight % of a physical drying agent;

(E) 0 to 30 weight % of a filler;

(F) 0 to 30 weight % of a non-reactive, elastomeric, organic polymer;

(G) 0 to 5 weight % of a crosslinker;

(H) 0 to 5 weight % of a chemical drying agent other than ingredient (G);

(I) 0 to 5 weight % of an adhesion promoter other than ingredients (G) and (H);

(J) 0 to 20 weight % of a microcrystalline wax, which is a solid at 25° C.;

(K) 0 to 3 weight % of an anti-aging additive; and

(L) 0 to 20 weight % of a tackifying agent; and

II) causing the water to be released from the hydrated water release agent, thereby curing the product of step 1).

22. The method of claim 21 comprising mixing the ingredients under shear.

23. The method of claim 22 , where the ingredients are mixed under vacuum or a dry inert gas, or both.

24. The method of claim 21 , where step II) is performed by heating the composition at a temperature ranging from 80° C. to 120° C. during applying the composition to a substrate, after applying the composition to a substrate, or a combination thereof.

25. The method of claim 21 , where step II) is performed by heating the composition at a temperature ranging from 80° C. to 110° C. after the composition is interposed between two substrates.

26. An insulating glass unit 201 comprising:

a first glass pane 101 ;

a second glass pane 102 spaced a distance from the first glass pane 101 ; and

a cured product 103 of a composition interposed between the first and second glass panes, where the cured product 103 forms a spacer, seal, moisture barrier, gas barrier, and desiccant matrix between the first and second glass panes; where the composition comprises:

(A) 10 to 65 weight % of a moisture-curable, silane-functional, elastomeric, organic polymer;

(B) 0.1 to 3 weight % of a condensation catalyst;

(C) 15 to 25 weight % of a physical drying agent;

(D) 5 to 30 weight % a water release agent that releases water over an application temperature range;

(E) 0 to 30 weight % of a filler;

(F) 0 to 30 weight % of a non-reactive, elastomeric, organic polymer;

(G) 0 to 5 weight % of a crosslinker;

(H) 0 to 5 weight % of a chemical drying agent other than ingredient (G);

(I) 0 to 5 weight % of an adhesion promoter other than ingredients (G) and (H);

(J) 0 to 20 weight % of a microcrystalline wax, which is a solid at 25° C.;

(K) 0 to 3 weight % of an anti-aging additive; and

(L) 0 to 20 weight % of a tackifying agent.

27. A process for manufacturing the insulating glass unit of claim 26 comprising:

i) bringing the first glass pane and the second glass pane into a parallel position spaced apart by an interpane space,

ii) applying the composition into the interpane space along the perimeter of the first glass pane and the second glass pane, and

iii) curing the composition.

28. A process for manufacturing the insulating glass unit of claim 26 comprising:

i) applying the composition as a filament seal around the perimeter of the first glass pane,

ii) moving the second glass pane into a parallel position to the first glass pane such that the first glass pane and the second glass pane are spaced apart by an interpane space, optionally

iii) filling the interpane space with a gas,

iv) pressing the second glass pane against the filament seal formed on the first glass pane, and

v) curing the composition.

29. A process for manufacturing the insulating glass unit of claim 26 comprising:

i) applying the composition as a filament seal onto a support to which the composition adheres less well than to glass,

ii) transferring the filament seal from the support onto the first glass pane,

iii) pressing the first glass pane and the second glass pane together in a parallel position, and

iv) curing the composition.

Continuity (2)
Provisional Application 60818046 · Jul 3, 2006
Related Publication 20090291238A1 · Nov 26, 2009