Claims
- 1. Apparatus for cutting and abrading an object, comprising:
- first gas delivery means for providing a first gas in a liquid form at a first pressure and for providing the first gas in a gas form at a second pressure;
- particle delivery means for providing a slurry at a third pressure, the slurry comprising a second gas in a solid form and the first gas in a liquid form; and
- nozzle means connected to said first gas delivery means and to said particle delivery means for producing a stream having a central jet comprising the slurry, a liquid sheath surrounding the central jet comprising the first gas in a liquid form, and an outer jacket surrounding the liquid sheath comprising the first gas in a gas form.
- 2. The apparatus of claim 1, wherein said first gas delivery means includes:
- a reservoir containing a supply of said first gas in liquid form;
- a first pump connected to said reservoir for pressurizing said first gas in liquid form to a fourth pressure;
- a second pump connected to said first pump for increasing the pressure of said first gas in liquid form to a fifth pressure;
- vaporizing means connected to said second pump for vaporizing said first gas in liquid form to produce a vaporized first gas;
- pressure regulating means connected to said vaporizing means for maintaining the vaporized first gas at the second pressure;
- a third pump connected to said second pump for increasing the pressure of said first gas in liquid form to a sixth pressure, the sixth pressure being sufficient to vaporize said first gas;
- condensing means connected to said second pump for liquefying the vaporized first gas from said third pump.
- 3. The apparatus of claim 2, wherein said particle delivery means comprises:
- a reservoir for holding a supply of the first liquefied gas at a first temperature;
- a second gas delivery means for providing a second gas in a gas form at a seventh pressure, said second gas freezing at a temperature that is greater than the first temperature of the first gas;
- a pressure vessel partially submerged within the supply of first liquefied gas contained within said reservoir, said pressure vessel having an inlet nozzle connected to said second gas delivery means, a liquefied gas inlet port connected to said first pump; and an outlet, wherein the second gas in a gas form flowing through said inlet nozzle freezes into particles upon contact with the first gas in a liquid form and wherein frozen particles of said second gas and the first gas in a liquid form are removed from said pressure vessel through said outlet as a slurry.
- 4. The apparatus of claim 3, wherein the first gas comprises nitrogen.
- 5. The apparatus of claim 4, wherein the second gas comprises carbon dioxide.
- 6. The apparatus of claim 5, wherein the first pressure is in the range of about 4,000 to 75,000 pounds per square inch gauge and wherein the second pressure is in the range of about 20 to 15,000 pounds per square inch gauge.
- 7. The apparatus of claim 6, wherein the seventh pressure is in the range of about 1,000 to 2,000 pounds per square inch gauge.
- 8. The apparatus of claim 7, further comprising collection means surrounding said nozzle means and the object for collecting particles abraded from the object.
- 9. The apparatus of claim 1, wherein said nozzle means comprises:
- an elongate first nozzle having an inlet end and an outlet end oriented along a flow axis, said elongate first nozzle also having a tapered end at the outlet end, the inlet end of said elongate first nozzle being adapted to receive the slurry from said particle delivery means;
- a second nozzle having an elongate inlet passage, a converging inlet end, and an outlet end oriented along the flow axis, the elongate inlet passage being adapted to receive a portion of said elongate first nozzle so that an elongate annular passage is created between the inlet of said second nozzle and said elongate first nozzle and so that the tapered end of said elongate first nozzle is aligned with the converging inlet end of said second nozzle, the location of the tapered end of said elongate first nozzle and the converging inlet end of said second nozzle such that an annular gap exists between the tapered end of said elongate first nozzle and the converging inlet end of said second nozzle, the inlet end of said second nozzle being adapted to receive the first gas in a liquid form from said first gas delivery means;
- means for moving said elongate first nozzle along the flow axis and with respect to said second nozzle so that the tapered end can be moved toward and away from the converging inlet end of said second nozzle to decrease and increase the annular gap between the tapered end of said first nozzle and the converging inlet end of said second nozzle; and
- a third nozzle having an inlet end and an outlet end aligned along the flow axis and positioned in spaced-apart relation to said second nozzle so that a second gap is formed between the outlet end of said second nozzle and the inlet end of said third nozzle, the inlet end of said third nozzle being adapted to receive the first gas in a gas form from said first gas delivery means.
- 10. Apparatus for cutting an abrading an object, comprising:
- a cyclone mixing chamber having an inlet end and an outlet end oriented along a flow axis and having a central bore therethrough, the central bore of said cyclone mixing chamber being surrounded by a continuous side wall having an interior surface, said cyclone mixing chamber also including an injection port transverse to the central bore;
- a first nozzle having an inlet end and an outlet end oriented along the flow axis and positioned with respect to said cyclone mixing chamber so that the outlet end of said first nozzle is adjacent the inlet end of said cyclone mixing chamber;
- a second nozzle having an inlet end and an outlet end oriented along the flow axis and positioned with respect to said cyclone mixing chamber so that the inlet end of said second nozzle is adjacent the outlet end of said cyclone mixing chamber;
- first delivery means for introducing a liquefied gas into the inlet end of said first nozzle; and
- second delivery means for introducing a slurry into the injection port of said cyclone mixing chamber.
- 11. The apparatus of claim 10, further comprising:
- a third nozzle having an inlet end and an outlet end aligned along the flow axis and positioned in spaced-apart relation to said second nozzle so that a second gap is formed between the outlet end of said second nozzle and the inlet end of said third nozzle; and
- third delivery means for introducing a gas into the second gap.
- 12. The apparatus of claim 11, wherein said cyclone mixing chamber comprises a cylindrical chamber and wherein the injection port is oriented tangentially to the cylindrical chamber so that said slurry forms a vortex when injected through the injection port and into the cylindrical chamber.
- 13. Apparatus for cutting and abrading an object, comprising:
- an elongate first nozzle having an inlet end and an outlet end oriented along a flow axis, said elongate first nozzle also having a tapered end at the outlet end;
- a second nozzle having an elongate inlet passage, a converging inlet end, and an outlet end oriented along the flow axis, the elongate inlet passage being adapted to receive a portion of said elongate first nozzle so that an elongate annular passage is created between the inlet of said second nozzle and said elongate first nozzle and so that the tapered end of said elongate first nozzle is aligned with the converging inlet end of said second nozzle, the location of the tapered end of said elongate first nozzle and the converging inlet end of said second nozzle such that an annular gap exists between the tapered end of said elongate first nozzle and the converging inlet end of said second nozzle;
- first delivery means for introducing a liquefied gas into the inlet end of said first nozzle; and
- second delivery means for introducing a slurry into the elongate annular passage between said elongate first nozzle and the elongate passage of said second nozzle.
- 14. The apparatus of claim 13, further comprising:
- means for moving said elongate first nozzle along the flow axis and with respect to said second nozzle so that the tapered end can be moved toward and away from the converging inlet end of said second nozzle to decrease and increase the annular gap between the tapered end of said first nozzle and the converging inlet end of said second nozzle.
- 15. The apparatus of claim 14, further comprising:
- a third nozzle having an inlet end and an outlet end aligned along the flow axis and positioned in spaced-apart relation to said second nozzle so that a second gap is formed between the outlet end of said second nozzle and the inlet end of said third nozzle; and
- third delivery means for introducing a gas into the second gap.
- 16. A nozzle assembly, comprising:
- a cyclone mixing chamber having an inlet end and an outlet end oriented along a flow axis and having a central bore therethrough, the central bore of said cyclone mixing chamber being surrounded by a continuous side wall having an interior surface, said cyclone mixing chamber also including an injection port transverse to the central bore;
- a first nozzle having an inlet end and an outlet end oriented along the flow axis and positioned with respect to said cyclone mixing chamber so that the outlet end of said first nozzle is adjacent the inlet end of said cyclone mixing chamber; and
- a second nozzle having an inlet end and an outlet end oriented along the flow axis and positioned with respect to said cyclone mixing chamber so that the inlet end of said second nozzle is adjacent the outlet end of said cyclone mixing chamber.
- 17. The nozzle assembly of claim 16, further comprising a third nozzle having an inlet end and an outlet end aligned along the flow axis and positioned in spaced-apart relation to said second nozzle so that a second gap is formed between the outlet end of said second nozzle and the inlet end of said third nozzle.
- 18. The nozzle assembly of claim 17, wherein said cyclone mixing chamber comprises a cylindrical chamber and wherein the injection port is oriented tangentially to the cylindrical chamber.
- 19. A nozzle assembly, comprising:
- an elongate first nozzle having an inlet end and an outlet end oriented along a flow axis, said elongate first nozzle also having a tapered end at the outlet end;
- a second nozzle having an elongate inlet passage, a converging inlet end, and an outlet end oriented along the flow axis, the elongate inlet passage being adapted to receive a portion of said elongate first nozzle so that an elongate annular passage is created between the inlet of said second nozzle and said elongate first nozzle and so that the tapered end of said elongate first nozzle is aligned with the converging inlet end of said second nozzle, the location of the tapered end of said elongate first nozzle and the converging inlet end of said second nozzle such that an annular gap exists between the tapered end of said elongate first nozzle and the converging inlet end of said second nozzle.
- 20. The nozzle assembly of claim 19, further comprising:
- means for moving said elongate first nozzle along the flow axis and with respect to said second nozzle so that the tapered end can be moved toward and away from the converging inlet end of said second nozzle to decrease and increase the annular gap between the tapered end of said first nozzle and the converging inlet end of said second nozzle.
- 21. The nozzle assembly of claim 20, further comprising:
- a third nozzle having an inlet end and an outlet end aligned along the flow axis and positioned in spaced-apart relation to said second nozzle so that a second gap is formed between the outlet end of said second nozzle and the inlet end of said third nozzle.
- 22. A rotatable fluid coupling, comprising:
- a main body having a first end and a second end and having a central bore therethrough extending from the first end to the second end, said main body also having an injection chamber disposed therein adapted to receive a supply of a fluid, wherein the injection chamber is in fluid communication with the central bore;
- an elongate tube having a central bore therethrough, said elongate tube also having a transverse bore therethrough intersecting said central bore, said elongate tube being sized to be received by the central bore of said main body so that the transverse bore of said elongate tube is in fluid communication with the injection chamber of said main body, wherein the fluid contained with the injection chamber flows through the transverse bore in said elongate tube and into the central bore of said elongate tube; and
- first and second sealing means mounted to the first and second ends of said main body, respectively, and rotatably sealably associated with the central bore in said main body and said elongate tube for preventing the fluid within the injection chamber from leaking past said elongate tube.
- 23. The rotatable coupling of claim 22, wherein each of said first and second sealing means comprises:
- a cone seal having a flat end and a conical end and having a central bore therethrough, the conical end being adapted to be received by a mating conical seat within said main body; and
- a gland bolt threadably engaged within said main body and adapted to engage the flat end of said cone seal, said gland bolt urging said cone seal toward the mating conical seat within said main body, wherein the conical end of said cone seal sealably engages the mating conical seat.
- 24. The rotatable coupling of claim 23, further comprising a belleville washer positioned between said gland bolt and the flat end of said cone seal.
- 25. A particle generator, comprising:
- a reservoir for holding a supply of a first liquefied gas at a first temperature;
- a pressure vessel partially submerged within the supply of first liquefied gas contained within said reservoir, said pressure vessel having an inlet nozzle, a liquefied gas inlet port, and an outlet;
- means for introducing a second gas into the inlet nozzle, said second gas freezing at a second temperature that is greater than the first temperature of the first liquefied gas; and
- means for introducing the first liquefied gas at the first temperature into said liquefied gas inlet port, wherein the second gas flowing through said inlet nozzle freezes into particles upon contact with the first liquefied gas and wherein frozen particles of said second gas and the first liquefied gas are removed from said pressure vessel through said outlet as a slurry.
- 26. The particle generator of claim 25, wherein said liquefied gas inlet port is adapted to introduce the first liquefied gas into said pressure vessel tangentially, said first liquefied gas forming a vortex within said pressure vessel.
- 27. A pressurization system for pressurizing a first liquefied gas to extreme pressure, comprising:
- a first reciprocating high pressure pump having a pair of inlets and a pair of outlets, said first pump alternately discharging the first liquefied gas through alternating ones of the pair of outlets;
- a second reciprocating high pressure pump having a pair of inlets and a pair of outlets, said second pump alternately discharging the first liquefied gas through alternating ones of the pair of outlets, the pair of outlets of said second pump being fluidically connected to the pair of outlets of said first pump and discharging into a common outlet;
- means for actuating said first and second reciprocating pumps so that said first reciprocating high pressure pump is placed in a stalled mode and said second reciprocating high pressure pump is placed in a catch-up mode if a pressure of said liquefied gas at either of the outlets of said first pump exceeds a predetermined pressure and so that said first reciprocating high pressure pump is placed in a catch-up mode and said second reciprocating high pressure pump is placed in a stalled mode if the pressure of said liquefied gas at either of the outlets of said second pump exceeds the predetermined pressure, wherein the pressure of said liquefied gas at the outlets of said first and second high pressure reciprocating pumps remains substantially constant.
- 28. A method for producing a particle stream, comprising the steps of:
- creating a high velocity jet of slurry by passing a slurry through a first nozzle;
- directing the high velocity jet of slurry through a second nozzle, said second nozzle having an inlet therein;
- passing a liquefied gas through said inlet in said second nozzle so that said liquefied gas comes in contact with said high velocity jet of slurry, the liquefied gas forming a liquid sheath adjacent the high velocity jet of slurry.
- 29. The method of claim 28, further comprising the steps of:
- directing the high velocity jet of slurry and liquid sheath from said second nozzle into a third nozzle, said third nozzle having an inlet therein; and
- passing a supply of gas in vapor form through said inlet in said third nozzle so that said gas in vapor form flows around said liquid sheath in order to form a jacket around said liquid sheath.
CROSS-REFERENCE TO RELATED APPLICATION
This application is a continuation-in-part of U.S. application, Ser. No. 08/178,533, filed on January 7, 1994, which is now U.S. Pat. No. 5,456,629.
CONTRACTUAL ORIGIN OF THE INVENTION
The United States Government has rights in this invention pursuant to Contract No. DE-AC07-94ID13223 between the U.S. Department of Energy and Lockheed Idaho Technologies Company.
US Referenced Citations (13)
Continuation in Parts (1)
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Number |
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178533 |
Jan 1994 |
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