Claims
- 1. A compressorless process for separating and cooling a pressurized mixed gas stream having at least two components, wherein the latent energy of each individual, separated component is captured by the process to further cool the pressurized mixed gas stream, the process comprising the steps of:
- a. cooling the mixed gas stream to a temperature below a condensation point of a first component within the mixed gas stream;
- b. separating the condensed first component from the mixed gas stream, thereby creating a liquid first component stream;
- c. cooling the liquid first component stream by expansion; and
- d. using the expanded first component stream to cool the mixed gas stream.
- 2. A process as described in claim 1, wherein the expanded first component stream is used to cool the mixed gas stream prior to separating the condensed first component.
- 3. A process as described in claim 1, wherein the expanded first component stream is used to cool the mixed gas stream after separating the condensed first component.
- 4. A process as described in claim 1, wherein the process further comprises the steps of:
- a. expanding the mixed gas stream after separating the condensed first component to create a liquid phase and a gas phase;
- b. separating the liquid phase from the gas phase; and
- c. using the gas phase to cool the mixed gas stream.
- 5. A process for separating and cooling one or more components of a pressurized mixed gas stream, the process comprising the steps of:
- a. cooling the pressurized mixed gas stream in a first heat exchanger to condense a first component thereof;
- b. separating the condensed first component from the mixed gas stream, thereby creating a first component stream in a liquid state;
- c. passing the first component stream through a first expander so as to cool the first component stream; and
- d. using the expanded first component stream to cool the mixed gas stream.
- 6. A process as described in claim 5, wherein the step of using the expanded first component stream to cool the mixed gas stream comprises feeding the expanded first component stream into the first heat exchanger.
- 7. A process as recited in claim 5, wherein the step of cooling the mixed gas stream comprises passing the mixed gas stream through a plurality of heat exchangers.
- 8. A process as recited in claim 5, further comprising the steps of:
- a. cooling the mixed gas stream after separating the condensed first component therefrom in a second heat exchanger to condense a second component thereof;
- b. separating the condensed second component from the mixed gas stream, thereby creating a second component stream in a liquid state;
- c. passing the second component stream through a second expander so as to cool the second component stream; and
- d. using the expanded second component stream to cool the mixed gas stream.
- 9. A process as described in claim 8, wherein the step of using the expanded first component stream to cool the mixed gas stream comprises feeding the expanded first component stream into the second heat exchanger.
- 10. A process as described in claim 5, further comprising the steps of:
- a. expanding the mixed gas stream after separating the condensed first component therefrom to create a liquid phase and a gas phase; and
- b. separating the liquid phase from the gas phase.
- 11. A process as described in claim 10, further comprising the step of feeding the gas phase into the first heat exchanger to cool the mixed gas stream.
- 12. A process as described in claim 10, wherein the step of expanding the mixed gas stream after separating the condensed first component comprises the mixed gas stream being substantially methane.
- 13. A process as described in claim 10, wherein the step of expanding the mixed gas stream after separating the condensed first component comprises passing the mixed gas stream though a turbo expander.
- 14. A process as described in claim 13, further comprising the step of passing the mixed stream gas through a compressor prior to cooling the pressurized mixed gas stream in the first heat exchanger, the compressor being at least partially energized by the turbo expander.
- 15. A process as described in claim 13, further comprising the steps of:
- a. passing the first component stream through a compressor, the compressor being at least partially energized by the turbo expander; and
- b. feeding the compressed first component stream back into the mixed gas stream.
- 16. A process as described in claim 13, further comprising the step of passing the gas phase through a compressor, the compressor being at least partially energized by the turbo expander.
- 17. A process as described in claim 16, further comprising the steps of:
- a. expanding the compressed gas phase; and
- b. feeding the expanded gas phase to the first heat exchanger so as to cool the mixed gas stream.
- 18. A process for separating one or more components from natural gas comprising:
- a. feeding a natural gas stream from a gas well to a heat exchanger solely under the natural gas pressure produced by the gas well, the heat exchanger cooling the natural gas so as to condense a first component thereof;
- b. separating the condensed first component from the natural gas stream, thereby creating a first component stream in a liquid state;
- c. passing the first component stream through an expander so as to cool the first component stream; and
- d. using the expanded first component stream to cool the natural gas stream.
- 19. A process for liquefying gas comprising:
- a. feeding a gas stream through a heat exchanger so as to cool the gas stream;
- b. passing the cooled gas stream through a turbo expander so as to produce energy and to convert the gas stream into a liquid phase and a vapor phase; and
- c. operating a compressor from the energy produced at least in part by the turbo expander, the compressor compressing the gas stream prior to feeding into the heat exchanger.
- 20. A process for liquefying gas comprising:
- a. feeding a gas stream through a heat exchanger so as to cool the gas stream;
- b. passing the cooled gas stream through a turbo expander so as to produce energy and to convert the gas stream into a liquid phase and a vapor phase;
- c. compressing the vapor phase produced by the turbo expander in a compressor, the compressor being at least partially operated from the energy produced by the turbo expander;
- d. cooling the compressed vapor phase; and
- e. passing the cooled vapor phase through heat exchanger so as to cool the gas stream passing therethrough.
- 21. A process for separating and cooling components of a pressurized mixed gas stream comprising the steps of:
- a. cooling a pressurized mixed gas stream comprising a first component, a second component, and a third component, the mixed gas stream being sufficiently cooled to condense the first component;
- b. separating the condensed first component from the mixed gas stream, thereby creating a first component stream in a liquid state;
- c. cooling the first component stream by way of expansion;
- d. using the expanded first component stream to cool the mixed gas stream;
- e. further cooling the mixed gas stream after the first component is separated therefrom so as to condense the second component;
- f. separating the condensed second component from the mixed gas stream, thereby creating a second component stream in a liquid state;
- g. cooling the second component stream by way of expansion; and
- h. using the expanded second component stream to cool the mixed gas stream.
- 22. A process as described in claim 21, wherein the step of using the expanded first component stream to cool the mixed gas stream comprises heat exchanging the expanded first component stream with the mixed gas stream to facilitate condensing of the first component.
- 23. A process as described in claim 21, wherein the process further comprises the steps of:
- a. passing the mixed gas stream after the second component is removed therefrom through a turbo expander, thereby generating energy and converting the mixed gas stream into a liquid phase and a gas phase; and
- b. using the gas phase to cool the mixed gas stream prior to passing through the turbo expander.
- 24. A process as described in claim 23, further comprising compressing the mixed gas stream in a compressor prior to condensing the first component, the compressor being at least partially energized by the energy from the turbo expander.
- 25. A process as described in claim 24, further comprising passing the compressed gas stream from the compressor through an ambient heat exchanger to further cool the compressed gas stream prior to condensing the first component.
- 26. A gas processing system, comprising:
- a. a first heat exchanger configured to receive a mixed gas stream having a plurality of components;
- b. a first gas-liquid separator fluid coupled with the first heat exchanger, the first gas-liquid separator having a liquid stream outlet;
- c. a first expander fluid coupled with the liquid stream outlet of the first gas-liquid separator, the first expander also being fluid coupled with the first heat exchanger so as to facilitate cooling of the mixed gas stream when the mixed gas stream flows through the first heat exchanger;
- d. a final heat exchanger fluid coupled to the gas stream outlet of the first gas-liquid separator;
- e. a final expander fluid coupled with the second heat exchanger down stream thereof; and
- f. a final gas-liquid separator fluid coupled with the second expander down stream thereof.
- 27. A gas processing system as recited in claim 26, wherein the final expander comprises a turbo expander.
- 28. A gas processing system as recited in claim 26, wherein the final expander comprises a vortex tube.
- 29. A mobile gas processing system, comprising:
- a. a trailer having a frame with wheels mounted thereon;
- b. a mixed gas processing system mounted on the trailer, the processing system comprising:
- (i) a first heat exchanger configured to receive the mixed gas stream;
- (ii) a first gas-liquid separator fluid coupled with the first heat exchanger, the first gas-liquid separator having a liquid stream outlet and a gas stream outlet; and
- (iii) a first expander fluid coupled with the liquid stream outlet of the first gas-liquid separator, the first expander also being fluid coupled with the first heat exchanger so as to facilitate cooling of the mixed gas stream when the mixed gas stream flows through the first heat exchanger;
- c. a second heat exchanger fluid coupled with the gas stream outlet of the first gas-liquid separator;
- d. a second gas-liquid separator fluid coupled with the second heat exchanger, the first gas-liquid separator having a liquid stream outlet and a gas stream outlet; and
- e. a second expander fluid coupled with the liquid stream outlet of the second gas-liquid separator, the second expander also being fluid coupled with the second heat exchanger so as to facilitate cooling of the mixed gas stream when the mixed gas stream flows through the second heat exchanger.
- 30. A mobile gas processing system as recited in claim 29, wherein the first heat exchanger and the second heat exchanger are both enclosed within a single vacuum chamber.
RELATED APPLICATION
This application claims priority from provisional application Ser. No. 60/069,698 filed Dec. 16, 1997. For purposes of disclosure this provisional application is incorporated by reference.
CONTRACTUAL ORIGIN OF THE INVENTION
The United States has rights in this invention pursuant to Contract No. DE-AC07-94ID13223 between the U.S. Department of Energy and Lockheed Martin Idaho Technologies Company.
US Referenced Citations (28)