Claims
- 1. A method for reducing erosion of a porous nozzle due to an abrasive fluid flowing through the porous nozzle, comprising the step of drawing lubricating fluid through pores of the porous nozzle to form a lubricating film between the porous nozzle and the abrasive fluid.
- 2. A method for reducing erosion of a nozzle due to an abrasive fluid flowing through the nozzle, comprising the steps of:
- (a) forming the nozzle of a porous material;
- (b) drawing lubricating fluid through the porous material to form a lubricating film between the nozzle and the abrasive fluid.
- 3. The method of claims 1 or 2, wherein the lubricating fluid has a viscosity at least equal to the viscosity of the abrasive fluid.
- 4. The method of claim 3, wherein the lubricating fluid is a liquid polymer.
- 5. The method of claim 3, wherein the lubricating fluid is an oil.
- 6. The method of claims 1 or 2, wherein the lubricating fluid has a viscosity less than the viscosity of the abrasive fluid.
- 7. The method of claims 1 or 2, wherein the lubricating fluid has a flow rate substantially less than the flow rate for the abrasive fluid.
- 8. The method of claim 2, wherein the nozzle has at least one orifice having a smallest cross-sectional dimension less than about 500 microns.
- 9. The method of claim 8, wherein the nozzle has at least one orifice having a smallest cross-sectional dimension less than about 100 microns.
- 10. The method of claim 9, wherein the nozzle has at least one orifice having a smallest cross-sectional dimension less than about 40 microns.
- 11. The method of claims 8, wherein the abrasive fluid has abrasive particles having an average diameter less than about one-half of the smallest cross-sectional dimension of each orifice.
- 12. A high speed fluid jet cutting nozzle, comprising:
- (a) a first chamber for receiving a pressurized cutting fluid, the chamber being defined at least in part by a surface of a wall, at least a portion of the wall being porous, the chamber having an exit tip;
- (b) a second chamber, separated from the first chamber by the wall, and in connection with a lubricating fluid;
- wherein the lubricating fluid passes through the porous portion of the wall to lubricate the surface of such portion and resist erosion of the wall as pressurized cutting fluid passes from the first chamber to the exit tip.
- 13. The fluid jet cutting nozzle of claim 12, wherein the exit tip has a smallest cross-sectional dimension less than about 500 microns.
- 14. The fluid jet cutting nozzle of claim 12, wherein the exit tip has a smallest cross-sectional dimension less than about 100 microns.
- 15. The fluid jet cutting nozzle of claim 12, wherein the exit tip has a smallest cross-sectional dimension less than about 40 microns.
- 16. The fluid jet cutting nozzle of claim 12, wherein the cutting fluid has abrasive particles having an average diameter less than about one half of the smallest cross-sectional dimension of the exit tip.
- 17. The fluid jet cutting nozzle of claim 12, wherein the lubricating fluid has a viscosity at least equal to the viscosity of the cutting fluid.
- 18. The fluid jet cutting nozzle of claim 17, wherein the lubricating fluid is a liquid polymer.
- 19. The fluid jet cutting nozzle of claim 17, wherein the lubricating fluid is an oil.
- 20. The fluid jet cutting nozzle of claim 12, wherein the lubricating fluid has a viscosity less than the viscosity of the cutting fluid.
- 21. The fluid jet cutting nozzle of claim 12, wherein the lubricating fluid has a flow rate substantially less than the flow rate for the cutting fluid.
- 22. The fluid jet cutting nozzle of claim 12, wherein the thickness of the porous wall varies to control flow rate of the lubricating fluid.
- 23. The fluid jet cutting nozzle of claim 12, wherein the porous wall has variable porosity.
- 24. A fluid jet cutting nozzle system comprising:
- (a) a source of pressurized abrasive fluid;
- (b) a source of lubricating fluid;
- (c) a nozzle, coupled to the source of pressurized abrasive fluid and the source of lubricating fluid, and having a porous wall having an inner surface and an outer surface, the porous wall having at least one orifice, the inner surface defining at least in part a first chamber for receiving the pressurized abrasive fluid, the outer surface defining at least in part a second chamber for receiving the lubricating fluid, wherein the lubricating fluid passes through the porous wall to lubricate at least the inner surface of the porous wall while pressurized cutting fluid exits from the first chamber through the orifices.
- 25. A fluid jet cutting nozzle system comprising:
- (a) a source of pressurized abrasive fluid;
- (b) a source of lubricating fluid;
- (c) a first chamber, coupled to the source of pressurized abrasive fluid, for receiving the pressurized abrasive fluid, the chamber being defined at least in part by a surface of a wall, at least a portion of the wall being porous, the chamber having at least one orifice;
- (d) a second chamber, coupled to the source of lubricating fluid, and separated from the first chamber by the wall, for receiving the lubricating fluid;
- wherein the lubricating fluid passes through the porous portion of the wall to lubricate at least a portion of the surface of such wall and resist erosion of the wall while pressurized abrasive fluid exits from the first chamber through the orifices.
- 26. The fluid jet cutting nozzle of claims 24 or 25, wherein at least one orifice has a smallest cross-sectional dimension less than about 500 microns.
- 27. The fluid jet cutting nozzle of claim 26, wherein at least one orifice has a smallest cross-sectional dimension less than about 100 microns.
- 28. The fluid jet cutting nozzle of claim 27, wherein at least one orifice has a smallest cross-sectional dimension less than about 40 microns.
- 29. The fluid jet cutting nozzle of claim 26, wherein the abrasive fluid has abrasive particles having an average diameter less than about one half of the smallest cross-sectional dimension of each orifice.
- 30. The fluid jet cutting nozzle of claims 24 or 25, wherein the lubricating fluid has a viscosity at least equal to the viscosity of the abrasive fluid.
- 31. The fluid jet cutting nozzle of claim 30, wherein the lubricating fluid is a liquid polymer.
- 32. The fluid jet cutting nozzle of claim 30, wherein the lubricating fluid is an oil.
- 33. The fluid jet cutting nozzle of claims 24 or 25, wherein the lubricating fluid has a viscosity less than the viscosity of the abrasive fluid.
- 34. The fluid jet cutting nozzle of claims 24 or 25, wherein the lubricating fluid has a flow rate substantially less than the flow rate for the abrasive fluid.
- 35. The fluid jet cutting nozzle of claims 24 or 25, wherein the thickness of the porous wall varies to control flow rate of the lubricating fluid.
- 36. The fluid jet cutting nozzle of claims 24 or 25, wherein the porous wall has variable porosity.
STATEMENT AS TO FEDERALLY SPONSORED RESEARCH
This invention was made with Government support under Grant No. MSS-9320153 awarded by the National Science Foundation. The Government has certain rights in this invention.
US Referenced Citations (22)
Non-Patent Literature Citations (2)
Entry |
"Abrasive Water-Jet Cutting of Metal Without Heat," Tooling& Production, pp. 64-65, May 1985. |
Gary Ayers, "Principles of Waterjet Cutting," Tappi Journal, Sep. 1987, pp. 91-94. |