Methods for preparing coating compositions for protecting oilfield operational components
Coating compositions for coating an oilfield operational component, 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 the oilfield operational 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 method to prepare a coating composition for application to at least a portion of a component to reduce damage to the component, the method comprising:
combining trifunctional silane, silanol fluid, titanium dioxide, and a filler; and
mixing the trifunctional silane, the silanol fluid, the titanium dioxide, and the filler to obtain the coating composition, the trifunctional silane comprising from about 0.01 wt. % to about 20 weight percent (wt. %) of the coating composition, silanol fluid comprising from about 40 wt. % to about 99 wt. % of the coating composition, and the filler comprising from about 0.01 wt. % to about 25 wt. % of the coating composition, the coating composition being operable to form a coating layer on an inner surface of the at least a portion of the component, and the coating layer operable to dissipate kinetic energy associated with an impact of particles on the inner surface of the component.
2. The method of claim 1 , wherein the coating composition comprises from about 0.01 wt. % to about 15 wt. % titanium dioxide.
3. The method of claim 1 , wherein mixing comprises mixing the trifunctional silane, the silanol fluid, the titanium dioxide, and the filler to obtain a substantially homogeneous coating composition.
4. The method of claim 1 , wherein the component having the at least a portion coated with the coating layer on the inner surface exhibits a comparison factor indicative of an increased resistance to wear ranging from about 2 to about 30, the comparison factor being indicative of a first amount of time during which a portion of the coating layer wears to a first depth divided by a second amount of time during which the inner surface of the portion of the component without the coating layer wears to a second depth equal to the first depth.
5. The method of claim 1 , wherein the component comprises a goat head of a fracking system.
6. The method of claim 1 , further comprising mixing a catalyst with the trifunctional silane, the silanol fluid, the titanium dioxide, and the filler, the catalyst comprising a tin catalyst.
7. The method of claim 1 , wherein the trifunctional silane is selected from the group consisting of an acetoxy silane, a ketoximino silane, an enoxy silane, an amine silane, an alkoxy silane, an alkenyl silane, ethyl triacetoxysilane, vinyl triacetoxysilane, methyl tris (methyl-ethyl-ketoximino) silane, vinyl tris (methyl-ethyl-ketoximino) silane, and any combination thereof.
8. The method of claim 1 , wherein the silanol fluid is selected from the group consisting of polydialkylated siloxane, polydimethylsiloxane, hydroxyl-terminated polydimethylsiloxane, and any combination thereof.
9. The method of claim 1 , wherein the filler is selected from the group consisting of fumed silica, glass fiber, mica, wollastonite, kaolin, phylosilicates, and any combination thereof.
10. The method of claim 1 , wherein the filler comprises fumed silica, and the method further comprises treating the fumed silica with a treatment agent prior to mixing the fumed silica with the coating composition.
11. The method of claim 10 , wherein the treatment agent comprises at least one of hexamethylenedisilazane, divinyltetramethylenedisilazane, chlorosilane, or polydimethylsiloxane.
12. The method of claim 1 , wherein one or more of the trifunctional silane, the silanol fluid, or the filler are operable 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, fillers, or pigments.
13. The method of claim 12 , wherein the coating composition comprises an amount of ethyl T-resin units ranging from about 1.5 wt % to about 5.0 wt % of the coating composition.
14. The method of claim 1 , further comprising mixing a pigment having a preselected color with the trifunctional silane, the silanol fluid, the titanium dioxide, and the filler to obtain the coating composition, the coating composition comprising an amount of the pigment ranging from about 1.0 wt % to about 5.0 wt % of the coating composition.
15. The method of claim 1 , wherein the component comprises an oilfield component, and wherein the oilfield component comprises one or more of a fluid end of a fracking system, a goat head of a fracking system, a frac iron of a fracking system, or at least a portion of a pipeline.
16. The method of claim 1 , wherein the component comprises at least a portion of a pipeline.
17. A method to prepare a coating composition for application to at least a portion of a component to reduce damage induced by flow of a fluid within the component when passing therethrough, the method comprising:
combining trifunctional silane, silanol fluid, titanium dioxide, a pigment, and a filler; and
mixing the trifunctional silane, the silanol fluid, the titanium dioxide, the pigment, and the filler to obtain the coating composition, the trifunctional silane comprising from about 0.01 weight percent (wt. %) to about 20 wt. % of the coating composition, silanol fluid comprising from about 40 wt. % to about 99 wt. % of the coating composition, and the filler comprising from about 0.01 wt. % to about 25 wt. % of the coating composition, the coating composition comprising from about 1.0 wt. % to about 5.0 wt. % of the pigment and being operable to form a coating layer on an inner surface of the at least a portion of the component, the coating layer operable to dissipate kinetic energy associated with an impact of particles mixed within the fluid on the inner surface.
18. The method of claim 17 , wherein mixing comprises mixing the trifunctional silane, the silanol fluid and the filler to obtain a substantially homogeneous coating composition.
19. The method of claim 17 , wherein the component having the at least a portion coated with the coating layer on the inner surface exhibits a comparison factor indicative of an increased resistance to wear ranging from about 2 to about 30, the comparison factor being indicative of a first amount of time during which a portion of the coating layer wears to a first depth divided by a second amount of time during which the inner surface of the portion of the component without the coating layer wears to a second depth equal to the first depth.
20. The method of claim 17 , wherein the component comprises a fracking system component selected from the group consisting of a goat head, a fluid end, and a frac iron.
21. The method of claim 17 , further comprising mixing a catalyst with the trifunctional silane, the silanol fluid, the pigment, and the filler, the catalyst comprising a tin catalyst.
22. The method of claim 17 , wherein the trifunctional silane is selected from the group consisting of an acetoxy silane, a ketoximino silane, an enoxy silane, an amine silane, an alkoxy silane, an alkenyl silane, ethyl triacetoxysilane, vinyl triacetoxysilane, methyl tris (methyl-ethyl-ketoximino) silane, vinyl tris (methyl-ethyl-ketoximino) silane, and any combination thereof.
23. The method of claim 17 , wherein the silanol fluid is selected from the group consisting of polydialkylated siloxane, polydimethylsiloxane, hydroxyl-terminated polydimethylsiloxane, and any combination thereof.
24. The method of claim 17 , wherein the filler is selected from the group consisting of fumed silica, glass fiber, mica, wollastonite, kaolin, phylosilicates, and any combination thereof.
25. The method of claim 17 , wherein the filler comprises fumed silica, and the method further comprises treating the fumed silica with a treatment agent prior to mixing the fumed silica with the coating composition, the treatment agent comprising at least one of hexamethylenedisilazane, divinyltetramethylenedisilazane, chlorosilane, or polydimethylsiloxane.
26. The method of claim 17 , wherein one or more of the trifunctional silane, the silanol fluid, or the filler are operable 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, fillers, or pigments, and wherein the coating composition comprises an amount of ethyl T-resin units ranging from about 1.5 wt % to about 5.0 wt % of the coating composition on the basis of non-solvent components.
27. A method to prepare a coating composition for application to at least a portion of a fluid handling system component to reduce damage induced by the flow of a fluid therethrough, the method comprising:
combining trifunctional silane, silanol fluid, titanium dioxide, and a filler; and
mixing the trifunctional silane, the silanol fluid, the titanium dioxide, and the filler to obtain the coating composition, the coating composition operable to form a coating layer on an inner surface of the at least a at least a portion of the fluid handling system component, the coating layer operable to reduce damage to the fluid handling system component induced by flow of a fracturing fluid passing therethrough, the fluid handling system component selected from the group consisting of a goat head, a fluid end, a frac iron, an elbow, a valve, a pump impeller, a seal, a pipeline, a pipeline segment, and a pipeline pump.
28. The method of claim 27 , wherein the fluid handling system component has the at least a portion coated with the coating layer on the inner surface and exhibits a comparison factor indicative of an increased resistance to wear ranging from about 2 to about 30, the comparison factor being indicative of a first amount of time during which a portion of the coating layer wears to a first depth divided by a second amount of time during which the inner surface of the portion of the fluid handling system component without the coating layer wears to a second depth equal to the first depth.