Claims
- 1) A composite wire for producing a wear resistant and corrosion resistant coating on a substrate comprising a metallic outer sheath and an inner core comprising boron carbide and chrome carbide.
- 2) The composite wire of claim 1, wherein the outer sheath is formed of an essentially pure metal.
- 3) The composite wire of claim 1, wherein the outer sheath is formed of an alloy.
- 4) The composite wire of claim 3, wherein the base metal of the alloy is selected from the group consisting of iron, nickel, aluminum, molybdenum, tantalum, copper, and titanium.
- 5) The composite wire of claim 3, wherein the alloy is a nickel base alloy.
- 6) The composite wire of claim 5, wherein the nickel base alloy comprises chromium.
- 7) The composite wire of claim 6, wherein the nickel base alloy comprises at least about 40% by weight of nickel.
- 8) The composite wire of claim 7, wherein the nickel base alloy further comprises molybdenum.
- 9) The composite wire of claim 8, wherein the nickel base alloy is an alloy 625.
- 10) The composite wire of claim 1, wherein the inner core comprises chrome carbide in an amount between about 25% and about 400% by weight of the amount of boron carbide.
- 11) The composite wire of claim 10, wherein the inner core comprises chrome carbide in an amount between about 67% and about 233% by weight of the amount of boron carbide.
- 12) The composite wire of claim 11, wherein the inner core comprises substantially equivalent amounts of chrome carbide and boron carbide.
- 13) The composite wire of claim 1, wherein the inner core comprises at least about 35% by weight boron carbide.
- 14) The composite wire of claim 10, wherein the inner core further comprises another carbide in addition to boron carbide and chrome carbide.
- 15) The composite wire of claim 10, wherein the inner core further comprises at least one carbide selected from the group consisting of tungsten carbide, vanadium carbide and titanium carbide.
- 16) The composite wire of claim 10, wherein the inner core further comprises a metal powder.
- 17) The composite wire of claim 10, wherein the inner core further comprises a composite powder.
- 18) The composite wire of claim 17, wherein the inner core further comprises tungsten carbide nickel powder.
- 19) The composite wire of claim 10, wherein the inner core further comprises a boride.
- 20) The composite wire of claim 19, wherein the inner core further comprises at least one boride selected from the group consisting of chrome boride, nickel boride, and iron boride.
- 21) The composite wire of claim 10, wherein the inner core further comprises an oxide.
- 22) The composite wire of claim 21, wherein the inner core further comprises at least one oxide selected from the group consisting of aluminum oxide, chrome oxide, and zirconium oxide.
- 23) A method of forming a wear resistant and corrosion resistant coating on a substrate comprising the steps of:
providing a composite wire having a metallic outer sheath and an inner core comprising boron carbide and chrome carbide; and employing the wire to form the coating on the substrate.
- 24) The method of claim 23, wherein the step of employing the wire to form the coating comprises thermally spraying the wires onto the substrate.
- 25) The method of claim 23, wherein the step of employing the wire to form the coating comprises spraying the wires onto the substrate and fusing the coating.
- 26) The method of claim 23, wherein the step of employing the wire to form the coating comprises depositing the wires onto the substrate by welding techniques.
- 27) The method of claim 23, wherein the outer sheath is formed of an essentially pure metal.
- 28) The method of claim 23, wherein the outer sheath is formed of an alloy.
- 29) The method of claim 28, wherein the base metal of the alloy is selected from the group consisting of iron, nickel, aluminum, molybdenum, tantalum, copper, and titanium.
- 30) The method of claim 28, wherein the alloy is a nickel base alloy.
- 31) The method of claim 30, wherein the nickel base alloy further comprises chromium.
- 32) The method of claim 31, wherein the nickel base alloy further comprises at least about 40% by weight of nickel.
- 33) The method of claim 32, wherein the nickel base alloy further comprises molybdenum.
- 34) The method of claim 33, wherein the nickel base alloy is an alloy 625.
- 35) The method of claim 23, wherein the inner core comprises chrome carbide in an amount between about 25% and about 400% by weight of the amount of boron carbide.
- 36) The method of claim 35, wherein the inner core comprises chrome carbide in an amount between about 67% and about 233% by weight of the amount of boron carbide.
- 37) The method of claim 36, wherein the inner core comprises substantially equivalent amounts of chrome carbide and boron carbide.
- 38) The method of claim 23, wherein the inner core comprises at least about 35% by weight boron carbide.
- 39) The method of claim 38, wherein the inner core further comprises another carbide in addition to boron carbide and chrome carbide.
- 40) The method of claim 39, wherein the inner core further comprises at least one carbide selected from the group consisting of tungsten carbide, vanadium carbide and titanium carbide.
- 41) The method of claim 38, wherein the inner core further comprises a metal powder.
- 42) The method of claim 38, wherein the inner core further comprises a composite powder.
- 43) The method of claim 38, wherein the inner core further comprises a boride.
- 44) The method of claim 38, wherein the inner core further comprises an oxide.
- 45) A substrate having a coating formed in accordance with the method of claim 23.
STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH OR DEVELOPMENT
[0001] Not Applicable
[0002] This application claims priority to U.S. Provisional Application No. 60/476,875, filed on Jun. 6, 2003.
Provisional Applications (1)
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Number |
Date |
Country |
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60476875 |
Jun 2003 |
US |