Claims
- 1. Apparatus comprising:(a) a nozzle assembly which is sized and configured to (i) receive a pressurized liquid and a gas, and (ii) eject said pressurized liquid as a liquid flow while feeding said gas into proximity with the periphery of said liquid flow; (b) a housing defining a suction chamber into which said nozzle assembly may eject said liquid flow, said housing further defining a suction inlet and a suction outlet; (c) an outlet pipe extending from said suction outlet away from said suction chamber, said outlet pipe being configured for fluid communication with said suction chamber and being disposed to receive said liquid flow; said outlet pipe defining at least a first inner diameter along a portion of its length and a second inner diameter along another portion of its length, said second inner diameter being less than said first inner diameter; and (d) a suction pipe, a first end of said suction pipe opening into said suction chamber at said suction inlet, and a second end of said suction pipe opening into the surrounding environment; wherein said nozzle assembly extends into said suction chamber towards said suction outlet and into the imaginary line of flow of said suction pipe.
- 2. Apparatus according to claim 1 wherein said nozzle assembly defines a constricted throat, an annular gap surrounding said constricted throat, at least one aperture in fluid communication with said gap, and a nozzle opening, said constricted throat terminating at said nozzle opening.
- 3. The apparatus of claim 1 wherein said gas is air.
- 4. The apparatus of claim 1 wherein said gas is an inert gas.
- 5. The apparatus of claim 1 wherein, during use of said device, said liquid flow mixes with material from the surrounding environment to form a mixture which may have a percentage of solids, measured at said outlet pipe, of at least about 40% by weight.
- 6. The apparatus of claim 5 wherein said percentage of solids is at least about 50% by weight.
- 7. The apparatus of claim 1 wherein said nozzle assembly receives said gas from a gas conduit, and wherein the gas flow rate through said gas conduit is controlled.
- 8. The apparatus of claim 7 wherein, during use of said apparatus, said liquid flow mixes with material from the surrounding environment to form a mixture which may have a percentage of solids, measured at said outlet pipe, of at least about 40% by weight.
- 9. The apparatus of claim 8 wherein said percentage of solids is at least about 50% by weight.
- 10. The apparatus of claim 7 wherein said gas flow rate is controlled by a valve, to thereby control the weight percent of solids for that which flows through said outlet pipe.
- 11. The apparatus of claim 1 wherein said outlet pipe is comprised of an outlet pipe segment, at least a portion of said outlet pipe segment defining an inner surface, at least a portion of said inner surface in turn defining said second inner diameter of said outlet pipe.
- 12. The apparatus of claim 11 wherein said outlet pipe segment is detachable from said device.
- 13. The apparatus of claim 12 wherein said outlet pipe segment is comprised of a detachable concentric wear segment which defines said inner surface and is formed from a wear-resistant material.
- 14. The apparatus of claim 1 further comprising an inlet pipe for providing said pressurized liquid to said nozzle assembly, and a supplemental jet nozzle assembly in fluid communication with said inlet pipe, said supplemental jet nozzle assembly being sized and configured to project a secondary liquid flow into the surrounding environment.
- 15. A pumping system comprising:(a) a nozzle assembly which is sized and configured to (i) receive a pressurized liquid and a gas, and (ii) eject said pressurized liquid as a liquid flow while feeding said gas into proximity with the periphery of said liquid flow; (b) a suction chamber into which said nozzle assembly may eject said liquid flow, said suction chamber defining a suction inlet and a suction outlet; (c) an inlet pipe for providing pressurized liquid to said nozzle assembly; (d) a gas conduit for providing said gas to said nozzle assembly; (e) an outlet pipe extending from said suction outlet away from said suction chamber, said outlet pipe being configured for liquid communication with said suction chamber and being disposed to receive said liquid flow; said outlet pipe defining at least a first inner diameter along a portion of its length and a second inner diameter along another portion of its length, said second inner diameter being less than said first inner diameter; and (f) a suction pipe, a first end of said suction pipe opening into said suction chamber at said suction inlet, and a second end of said suction pipe opening into the surrounding environment.
- 16. The system of claim 15 further comprising a pump fed by and downstream of said outlet pipe.
- 17. The system of claim 16 wherein said pump is a centrifugal pump operative and substantially cavitation-free at an intake pressure in the range of about 5 inches Hg to about 5 psia.
- 18. A system for dredging matter from the bottom of a body of water, the system comprising:a. a pumping system according to claim 15, b. a buoyant platform equipped to raise and lower at least a portion of said pumping system relative to the bottom of the body of water, and c. a first pump for providing said pressurized liquid to said nozzle assembly.
- 19. The system of claim 18 further comprising a second pump fed by and downstream of said outlet pipe.
- 20. The system of claim 19 wherein said second pump is a centrifugal pump operative and substantially cavitation-free at an intake pressure in the range of about 5 inches Hg to about 5 psia.
- 21. The system of claim 20 wherein said nozzle assembly receives said gas from a gas conduit, and wherein the gas flow rate through said gas conduit is controlled.
- 22. The system of claim 18 wherein said nozzle assembly receives said gas from a gas conduit, and wherein the gas flow rate through said gas conduit is controlled.
- 23. A method of moving, from one location to another, a slurry comprised of a mixture comprised of a solid and a liquid, the method comprising:a. injecting a pressurized liquid into a nozzle assembly to produce a flow of pressurized liquid, b. providing a gas to said nozzle assembly to surround said flow of pressurized liquid with said gas, c. directing said flow of pressurized liquid surrounded by said gas into a suction chamber in fluid communication with a suction pipe and an outlet pipe, said outlet pipe defining a venturi-like inner surface, and directing said flow of pressurized liquid surrounded by said gas toward said outlet pipe to produce a vacuum at a free end of said suction pipe, and d. controlling the flow rate of said gas into said nozzle assembly to thereby control the weight ratio of solid to liquid in the slurry so moved.
- 24. The method of claim 23 further comprising pumping said slurry in said outlet pipe away from said suction chamber, wherein said pumping is conducted at an intake pressure in the range of about 5 inches Hg to about 5 psia.
- 25. The method of claim 24 wherein said pumping is conducted by using a centrifugal pump which is substantially cavitation free.
- 26. The method of claim 24 wherein said intake pressure is approximately zero and the flow rate of said gas is controlled so that said gas entering said nozzle assembly is under a vacuum in the range of about 18 inches Hg to about 26 inches Hg.
- 27. A mixing system for combining at least one liquid with at least one solid to form a mixture, comprising:(a) a nozzle assembly which is sized and configured to (i) receive a pressurized liquid and a gas, and (ii) eject said pressurized liquid as a liquid flow while feeding said gas into proximity with the periphery of said liquid flow; (b) a suction chamber into which said nozzle assembly may eject said liquid flow, said suction chamber defining a suction inlet and a suction outlet; (c) an inlet pipe for providing pressurized liquid to said nozzle assembly; (d) a gas conduit for providing said gas to said nozzle assembly; (e) an outlet pipe extending from said suction outlet away from said suction chamber, said outlet pipe being configured for liquid communication with said suction chamber and being disposed to receive said liquid flow; said outlet pipe defining at least a first inner diameter along a portion of its length and a second inner diameter along another portion of its length, said second inner diameter being less than said first inner diameter; (f) a suction pipe, a first end of said suction pipe opening into said suction chamber at said suction inlet, and a second end of said suction pipe opening into the surrounding environment; and (g) a valve for controlling the flow of gas through said conduit, to thereby control the weight percent of said solid in said mixture.
REFERENCE TO RELATED APPLICATION
This is a continuation-in-part of commonly owned and U.S. patent application Ser. No. 09/482,995, filed on Jan. 13, 2000, which issued as U.S. Pat. No. 6,322,327 on Nov. 27, 2001 the disclosure of which is incorporated herein by reference.
US Referenced Citations (21)
Foreign Referenced Citations (3)
| Number |
Date |
Country |
| 0178873 |
Apr 1986 |
EP |
| 122278 |
Jan 1919 |
GB |
| 5442682 |
Dec 1979 |
JP |
Continuation in Parts (1)
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Number |
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09/482995 |
Jan 2000 |
US |
| Child |
09/711499 |
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US |