Claims
- 1. A method of making an abradable material, comprising the steps of:
- axially feeding a particulate filler material using an axial stream of a carrier gas into a stream of high-temperature combustion gases at a first location to heat, accelerate and entrain said filler material in said stream of high-temperature combustion gases such that a high-temperature, high-velocity substantially collimated stream of filler material is formed, said first location being disposed in a chamber and said combustion gases being introduced in said chamber by the independent introduction of separate steams of a fuel gas and an oxidant gas into said chamber;
- atomizing at a second location downstream of said first location molten metal directly from the end of at least one consumable wire with said stream of high-temperature combustion gases having said entrained filler material such that said atomized molten metal is entrained in said stream of high-temperature combustion gases along with said filler material to form a substantially collimated stream of high-temperature, high-velocity filler and atomized metal;
- directing said stream of high-temperature combustion gases having said entrained filler material and said entrained atomized molten metal toward a target; and
- forming an abradable material having a substantially continuous metal matrix in which said filler material is contained on said target with said stream of high-temperature combustion gases having said entrained atomized molten metal and said filler material.
- 2. The invention recited in claim 1, wherein said stream of combustion gases is formed in a combustion spray gun at supersonic velocity.
- 3. The invention recited in claim 1, wherein said molten metal is supplied by placing the tip of at least one metal wire in said stream of high-temperature combustion gases having said entrained filler material such that said metal wire tip is melted by said combustion gases.
- 4. The invention recited in claim 1, wherein said molten metal is supplied by providing two metal wires and means for supplying an electrical current to said metal wires, and establishing an electric arc between the tips of said wires, said electric arc being sufficient to melt said tips of said metal wires.
- 5. The invention recited in claim 1, wherein said particulate filler material is synthetic polymer powder selected from the group consisting of thermosetting polymers, thermoplastic polymers and combinations thereof.
- 6. The invention recited in claim 1, wherein said particulate filler material is a powder of a solid lubricant material selected from the group consisting of boron nitride, calcium fluoride, molybdenum sulfide, fluorinated non-graphitic carbon, fluorinated graphite, non-graphitic carbon, graphite, and combinations thereof.
- 7. The invention as recited in claim 1, wherein said filler material is a ceramic powder selected from the group consisting of calcium carbonate, kaolin, bentonite, calcium phosphate, wollastonite, pyrophyllite, perlite, gypsum, barite, hydrated alumina, silica, diatomite, calcined diatomite and combinations thereof.
- 8. The invention as recited in claim 1, wherein said filler material is supplied as a rod.
- 9. The invention as recited in claim 1, wherein said molten metal is selected from the group consisting of aluminum, aluminum/silicon alloys, aluminum/magnesium alloys, aluminum/magnesium/silicon alloys, and aluminum/titanium alloys and combinations thereof.
- 10. The invention as recited in claim 1, wherein said molten metal is selected from the group consisting of copper, copper/aluminum alloys, and copper/nickel alloys and combinations thereof.
- 11. The invention as recited in claim 1, wherein said molten metal is selected from the group consisting of nickel, nickel/copper alloys and nickel/chromium alloys and combinations thereof.
- 12. The invention as recited in claim 1, wherein said molten metal is selected from the group consisting of nickel and cobalt-based superalloys.
- 13. The invention as recited in claim 1, wherein said molten metal is a MCrAlX alloy, wherein X is selected from the group consisting of rare earth metals, Y, Hf, Zr, and Si; and
- wherein M=Fe, Ni, Co and combinations thereof.
- 14. The invention as recited in claim 1, wherein said molten metal is selected from the group consisting of nickel aluminides and titanium aluminides.
- 15. The invention as recited in claim 1, wherein said molten metal is selected from the group of steels consisting of low-carbon steel, alloy steel and stainless steel.
- 16. The invention as recited in claim 1, wherein said molten metal is selected from the group of pure metals and combinations of pure metals consisting of nickel, cobalt, iron, copper, and aluminum.
- 17. A method for making a material as recited in claim 1, wherein said filler material is a plastic and said metal is selected from the group consisting of copper and copper alloys.
- 18. A method for making an abradable material, comprising the steps of:
- heating and accelerating combustion gases in a chamber of a thermal spray apparatus to form a stream of combustion gases having supersonic velocity, axially feeding a particulate filler into said stream of high-temperature, high-velocity combustion gases using an axial stream of a carrier gas to entrain said filler in said combustion gases to form a high-temperature, high-velocity substantially collimated stream of filler material in said thermal spray apparatus;
- electrically melting the end of a metal wire and atomizing said molten metal directly at the end of said wire with said stream of high-temperature, supersonic velocity combustion gases having said entrained filler at a second location downstream of said thermal spray apparatus chamber, such that said atomized molten metal is entrained in said stream along with said filler to form a substantially collimated stream of high-temperature, high-velocity filler and atomized metal;
- directing said stream of high-temperature, high-velocity combustion gases having said entrained filler and said entrained atomized molten metal toward a target; and
- said filler and said atomized metal entrained in said stream of high-temperature, high-velocity combustion gases forming a deposit on said target, said deposit comprising an abradable material having a substantially continuous metal matrix in which said filler is embedded.
Parent Case Info
This is a continuation of copending application(s) Ser. No. 07/326,775 filed on Mar. 21, 1989 now abandoned which is a continuation-in-part of U.S. patent application Ser. No. 247,024 which was filed on Sep. 20, 1988, now U.S. Pat. No. 5,019,686 the entire disclosure of which is incorporated herein by reference.
US Referenced Citations (28)
Foreign Referenced Citations (6)
Number |
Date |
Country |
516567 |
Jun 1920 |
FRX |
60-115771 |
Jun 1985 |
JPX |
60-115778 |
Jun 1985 |
JPX |
121648 |
May 1988 |
JPX |
1115738 |
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GBX |
1257479 |
Dec 1971 |
GBX |
Continuations (1)
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Number |
Date |
Country |
Parent |
326775 |
Mar 1989 |
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Continuation in Parts (1)
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Number |
Date |
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Parent |
247024 |
Sep 1988 |
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