Coated fluid handling components and methods for protecting and extending the service life of fluid handling components
Coating compositions for coating fluid handling components, and related methods, may include in some aspects a coating composition having a trifunctional silane, a silanol, and a filler. The coating composition may be applied to a surface of a fluid handling component that is configured to be exposed to a fluid. The coating composition may be applied to at least partially cover or coat the surface. The coating composition may be configured to chemically bond with a cured primer composition that includes an epoxy.
1. A fluid handling component comprising:
a component body including a surface at least partially defining an internal passage positioned to receive fluid flow therethrough; and
a coating at least partially covering the surface of the fluid handling component body to enhance wear resistance of the fluid handling component body, such that the fluid handling component exhibits a wear resistance comparison factor indicative of an increased resistance to wear greater than about 2, the wear resistance comparison factor being indicative of a first amount of time during which a portion of the coating wears to a first depth divided by a second amount of time during which a corresponding portion of a comparable fluid handling component body without the coating wears to a second depth equal to the first depth, and the coating comprising:
a primer applied to the surface of the fluid handling component body; and
a coating composition at least partially coating the primer, the coating composition comprising trifunctional silane, silanol fluid, titanium dioxide, and filler, and the coating composition being positioned to chemically bond with the primer.
2. The fluid handling component of claim 1 , wherein the fluid handling component comprises at least a portion of one or more of a machine or a fluid system, and the wear resistance comparison factor ranges from about 2 to about 30.
3. The fluid handling component of claim 1 , wherein the coating composition further comprises the titanium dioxide in an amount ranging from about 0.50 wt % to about 0.90 wt % on the basis of non-solvent components.
4. The fluid handling component of claim 1 , wherein the coating composition comprises blue pigment in an amount ranging from about 1.0 wt % to about 5.0 wt % on the basis of non-solvent components.
5. The fluid handling component of claim 1 , wherein the primer comprises an epoxy primer applied to the surface of the fluid handling component body, the coating composition being at least partially chemically bonded to the epoxy primer.
6. The fluid handling component of claim 5 , wherein the fluid handling component comprises one or more of a portion of flow iron positioned to receive a fracking fluid therethrough, at least a portion of a manifold positioned to receive a fracking fluid therethrough, at least a portion of a monoline system positioned to receive a fracking fluid therethrough, or a fracking pump positioned to increase a pressure of a fracking fluid.
7. The fluid handling component of claim 1 , wherein one or more of the trifunctional silane, the silanol fluid, the titanium dioxide, or the filler are configured to cure and form ethyl T-resin units, each of the ethyl T-resin units forming two or more bonds with one or more of other ethyl T-resin units, silanol fluid, titanium dioxide, or fillers.
8. The fluid handling component of claim 1 , wherein the silanol comprises one or more of polydialkylated siloxane, polydimethylsiloxane, or hydroxyl-terminated polydimethylsiloxane.
9. The fluid handling component of claim 1 , wherein the filler comprises fumed silica.
10. The fluid handling component of claim 1 , wherein the coating composition further comprises a reinforcing agent comprising one or more of glass fiber, mica, wollastonite, kaolin, or phylosilicates.
11. The fluid handling component of claim 1 , wherein the coating composition further comprises a silica treatment agent comprising one or more of hexamethylenedisilazane, divinyltetramethylenedisilazane, chlorosilane, or polydimethylsiloxane.
12. The fluid handling component of claim 1 , wherein the filler has one or more of an aspect ratio of at least 2, a shape factor of at least 2, or a length-to-diameter ratio of at least 2.
13. The fluid handling component of claim 1 , wherein the primer comprises one or more of an aliphatic amine, epichlorohydrin, bisphenol, silane adhesion promoter, trimethoxysilane, triethoxysilane, or 3-glycidoxypropyltrimethoxysilane.
14. The fluid handling component of claim 1 , wherein the coating provides chemical resistance to one or more solvents of the fluid flow.
15. The fluid handling component of claim 1 , wherein the titanium dioxide promotes crosslinking between the trifunctional silane, the silanol fluid, and the titanium dioxide, thereby reducing a permeability of the coating composition to one or more solvents of the fluid flow.
16. The fluid handling component of claim 1 , wherein the titanium dioxide provides crosslink sites to which siloxane chains are attached.
17. The fluid handling component of claim 1 , wherein the coating provides wear resistance against one or more abrasive substances of the fluid flow.
18. The fluid handling component of claim 1 , wherein the coating provides wear resistance against one or more corrosive substances of the fluid flow.
19. A fluid handling component comprising:
a component body including a surface at least partially defining an enclosed flow path positioned to receive fluid flow therethrough containing one or more abrasive or corrosive substances; and
a coating at least partially covering the surface of the fluid handling component body to enhance wear resistance of the fluid handling component body, such that the fluid handling component exhibits a wear resistance comparison factor indicative of an increased resistance to wear greater than about 2, the wear resistance comparison factor being indicative of a first amount of time during which a portion of the coating wears to a first depth divided by a second amount of time during which a corresponding portion of a comparable fluid handling component body without the coating wears to a second depth equal to the first depth, and the coating comprising:
a primer applied to the surface of the fluid handling component body; and
a coating composition at least partially coating the primer, the coating composition comprising trifunctional silane, silanol fluid, titanium dioxide, and filler, and the coating composition being positioned to chemically bond with the primer, and one or more of the trifunctional silane, the silanol fluid, the titanium dioxide, or the filler are configured to cure and form ethyl T-resin units, each of the ethyl T-resin units forming two or more bonds with one or more of other ethyl T-resin units, silanol fluid, titanium dioxide, or fillers.
20. The fluid handling component of claim 19 , wherein the fluid handling component comprises at least a portion of one or more of a machine or a fluid system, and the wear resistance comparison factor ranges from about 2 to about 30.
21. The fluid handling component of claim 19 , wherein the coating composition further comprises the titanium dioxide in an amount ranging from about 0.50 wt % to about 0.90 wt % on the basis of non-solvent components.
22. The fluid handling component of claim 19 , wherein the coating provides chemical resistance to the one or more abrasive or corrosive substances of the fluid flow.
23. The fluid handling component of claim 19 , wherein the titanium dioxide promotes crosslinking between the trifunctional silane, the silanol fluid, and the titanium dioxide, thereby reducing a permeability of the coating composition to the one or more abrasive or corrosive substances of the fluid flow.
24. The fluid handling component of claim 19 , wherein the coating composition includes the ethyl T-resin units in an amount ranging from about 1.5 wt % to about 5 wt % when cured.
25. The fluid handling component of claim 7 , wherein the coating composition further comprises the titanium dioxide in an amount ranging from about 0.50 wt % to about 0.90 wt % on the basis of non-solvent components, and wherein the coating composition includes the ethyl T-resin units in an amount ranging from about 1.5 wt % to about 5 wt % when cured.