Claims
- 1. A method for improving the resistance of exposed surfaces to degradation by atomic oxygen or by UV radiation, especially useful for protecting spacecraft in low earth orbit, comprising the step of:
- (a) depositing a thermal control polymeric coating on the surface, for protecting the surface from atomic oxygen degradation, the polymer being selected from the group consisting of fluorosilicones, fluorophosphazenes, or mixtures thereof; and
- (b) exposing the coating to low earth orbit conditions.
- 2. The method of claim 1 wherein the coating includes a filler.
- 3. The method of claim 1 wherein the coating is a co-mixture of fluorophosphazene and fluorosilicone that is co-cured.
- 4. The method of claim 2 wherein the coating is a fluorosilicone
- 5. The method of claim 4 wherein the fluorosilicone is selected from the group consisting of: ##STR6## wherein R.sub.1 and R.sub.2 are --CH.sub.3, --F, --CF.sub.3,
- --CH.sub.2 (CH.sub.2).sub.n CH.sub.3,
- --CH.sub.2 (CF.sub.2).sub.n CF.sub.3,
- --CH.sub.2 (CH.sub.2).sub.n CF.sub.3, --CH--CF.sub.3).sub.2,
- --C.sub.2 H.sub.4 (CF.sub.2).sub.e CF.sub.m H.sub.3--ml ,
- --C(CF.sub.3).sub.3, ##STR7## a.times.about 10-1000; m.times.0-10;
- b.times.0-5;
- X.times. ##STR8## m.times.0-3; t.times.0-6; and
- e.times.0-20 provided that the fluorosilicone includes fluorine.
- 6. The method of claim 2 wherein the coating is a fluorophosphazene.
- 7. The method of claim 6 wherein the fluorophosphazene is selected from the group consisting of: ##STR9## R.sub.3 and R.sub.4 .times.--O--CH.sub.2).sub.k (CF.sub.2).sub.i CF.sub.m H.sub.3--m, ##STR10## wherein k.times.0-10;
- i.times.0-10;
- m.times.0-3;
- j.times.1-5;
- b.times.0-5; and
- q.times.0 through (5-b).
- 8. The method of claim 2 wherein the filler is selected from the group consisting of zinc oxide, barium fluorosilicate, zinc orthotitanate, barium silicate, aluminum oxide, zirconium fluorosilicate, titanium oxide, zirconium silicate, silica, zirconium oxide, silicon nitride, magnesium oxide, zinc fluorosilicate, magnesium fluorosilicate, zinc silicate, barium orthotitanate, aluminum fluorosilicate, zirconium orthotitanate, aluminum silicate, aluminum orthotitanate, and mixtures thereof.
- 9. The method of claim 5 wherein the filler is selected from the group consisting of zinc oxide, barium fluorosilicate, zinc orthotitanate, barium silicate, aluminum oxide, zirconium fluorosilicate, titanium oxide, zirconium silicate, silica, zirconium oxide, silicon nitride, magnesium oxide, zinc fluorosilicate, magnesium fluorosilicate, zinc silicate, barium orthotitanate, aluminum fluorosilicate, zirconium orthotitanate, aluminum silicate, aluminum orthotitanate, and mixtures thereof.
- 10. The method of claim 7 wherein the filler is selected from the group consisting of zinc oxide, barium fluorosilicate, zinc orthotitanate, barium silicate, aluminum oxide, zirconium fluorosilicate, titanium oxide, zirconium silicate, silica, zirconium oxide, silicon nitride, magnesium oxide, zinc fluorosilicate, magnesium fluorosilicate, zinc silicate, barium orthotitanate, aluminum fluorosilicate, zirconium orthotitanate, aluminum silicate, aluminum orthotitanate, or mixtures thereof.
- 11. The method of claim 2 wherein the coating is deposited by the substeps of:
- (a) mixing a fine powder of the filler in a suitable solvent;
- (b) blending the powder-solvent mixture with polymer precursors to form a viscous fluid;
- (c) applying the fluid to the surface to form a film; and
- (d) curing the polymer precursors to form a composite.
- 12. The method of claim 2 wherein the coating is deposited by the substeps of:
- (a) blending the filler with polymer precursors to form a viscous fluid;
- (b) applying the fluid to the surface to form a film; and
- (c) curing the polymer precursors to form a composite.
- 13. The method of claim 1 wherein the coating is deposited by the substeps of:
- (a) forming a sheet of thermal control material; and
- (b) bonding the sheet to the surface.
- 14. The method of claim 2 wherein the coating is deposited by the substeps of:
- (a) forming a composite sheet of thermal control material containing the filler and polymer; and
- (b) bonding the composite sheet to the surface.
- 15. The method of claim 11 further comprising the substep of incorporating a suitable amount of a polymerization initiator in the fluid to facilitate curing.
- 16. The coating of claim 11 wherein the solvent is selected from the group consisting of toluene, hexane, benzene, acetone, methyl ethyl ketone, and mixtures thereof.
- 17. The method of claim 15 wherein the initiator is selected from the group consisting of conventional organic free radical initiators, organometallics oxime catalysts, and platinum salts.
- 18. The method of claim 2, wherein the coating is deposited by the substeps of:
- (a) applying the filler to the surface to form a thin, porous layer;
- (b) spraying polymer precursors onto the layer; and
- (c) curing the precursors to form a polymer adhered to the surface, the polymer and filler forming a composite during the curing substep.
- 19. The method of claim 2 wherein the coating includes a fluorosilicone selected from the group consisting of: ##STR11## wherein R.sub.1 and R.sub.2 are --CH.sub.3, --F, --CF.sub.3,
- --CH.sub.2 (CF.sub.2).sub.n CH.sub.3,
- --CH.sub.2 (CF.sub.2).sub.n CF.sub.3,
- --CH.sub.2 (CH.sub.2).sub.n CF.sub.3, --CH--CF.sub.3).sub.2,
- --C.sub.2 H.sub.4 (CF.sub.2).sub.e CF.sub.m H.sub.3-m.
- --C--CF.sub.3).sub.3, ##STR12## a=about 10-1000; n=0-10;
- b=0-5;
- x= ##STR13## m=0-3; t=0-6; and
- e=0-20 provided that the fluorosilicone includes fluorine.
- 20. The method of claim 2 wherein the coating includes a fluorophosphazene selected from the group consisting of: ##STR14## R.sub.3 and R.sub.4=--O--CH.sub.2).sub.k (CF.sub.2).sub.i CF.sub.m H.sub.3-m, ##STR15## wherein k=0-10;
- i=0-10;
- j=1-5;
- m=0-3;
- b=0-5; and
- q=0 through (5-b).
- 21. The method of claim 3 further comprising a filler mixed into the coating to form a polymer composite.
- 22. A method for improving the resistance of exposed surfaces to degradation by atomic oxygen, by UV radiation, or a combination thereof comprising the steps of:
- (a) mixing a fine powder of a filler in a solvent;
- (b) blending the powder-solvent mixture with polymer precursors suitable for polymerizing into polymers selected from the group consisting of fluorosilicones, fluorophosphazenes, or copolymers thereof, wherein the fluorosilicones include polymers having the general formula: ##STR16## wherein: R.sub.1 and R.sub.2 are --CH.sub.3, --F, --CF.sub.3,
- --CH.sub.2 (CH.sub.2).sub.n CF.sub.3,
- --CH.sub.2 (CF.sub.2).sub.n CF.sub.3, --CF--CF.sub.3).sub.2,
- --C--CF.sub.3).sub.3,
- --CH.sub.2 (CH.sub.2).sub.n CF.sub.3,
- --C.sub.2 H.sub.4 (CF.sub.2).sub.e CF.sub.m H.sub.3-m, or ##STR17## a=about 10-1000; b=0-5;
- n=0-10;
- x= ##STR18## m=0-3; t=0-6; and
- e=0-20 provided that the fluorosilicone includes fluorine.
- and wherein the fluorophosphazenes have the general formula: ##STR19## wherein R.sub.3 and R.sub.4 are --0--CH.sub.2).sub.k (CF.sub.2).sub.i CF.sub.m H.sub.3-m, ##STR20## k=0-10; i=0-10;
- m=0-3;
- j=1-5;
- b=0-5; and
- q=0 through (5-b)
- To form a viscous fluid;
- (c) applying the fluid to the surface to form a film; and
- (d) curing the polymer precursors to form a composite.
- 23. A method for depositing a thermal control coating on a surface to provide improved resistance to atomic oxygen and UV radiation, comprising applying to the surface a mixture of a filler compound selected from the group consisting of zinc oxide, barium fluorosilicate, zinc orthotitanate, barium silicate, aluminum oxide, zirconium fluorosilicate, titanium oxide, zirconium silicate, silica, zirconium oxide, silicon nitride, magnesium oxide, zinc fluorosilicate, magnesium fluorosilicate, zinc silicate, barium orthotitanate, aluminum fluorosilicate, zirconium orthotitanate, aluminum silicate, aluminum orthotitanate, and mixtures thereof, with a sufficient amount of polymeric binder precursors, curable to form a fluorosilicone, a fluorophosphazene, or a fluorosilicone--fluorophosphazene copolymer, the precursors allowing the filler to be spread on the surface and to adhere to the surface upon curing and polymerization of the precursors.
REFERENCE TO RELATED APPLICATIONS
The present application is a continuation application of 06/907,950, filed Sept. 15, 1986, now abandoned.
US Referenced Citations (6)
Continuations (1)
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Number |
Date |
Country |
Parent |
907950 |
Sep 1986 |
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