Claims
- 1. An integrated air separation and power generation system comprising:
a gas turbine unit including an air compressor, a gas turbine expander coupled to the air compressor and a combustion unit located upstream from the expander to feed drive gas to the expander; an air separation unit to receive compressed air from the air compressor and produce at least two product streams including a stream of primarily oxygen, a portion of the oxygen stream produced by the air separation unit being fed to the combustion unit; and a second turbine coupled to the air compressor and located downstream from the expander to receive drive gas discharged from the expander; wherein each of the expander and the second turbine drive the air compressor when drive gas flows through the expander and the second turbine.
- 2. The system of claim 1, further comprising:
a third turbine coupled to the air compressor to drive the air compressor when drive gas flows through the third turbine; wherein the combustion unit is located downstream from the third turbine to receive drive gas discharged from the third turbine.
- 3. The system of claim 2, further comprising:
a second combustion unit disposed directly upstream from the third turbine to feed drive gas to the third turbine.
- 4. The system of claim 3, further comprising:
a heat exchanger located downstream from the air compressor and upstream from the air separation unit to receive and cool compressed air from the air compressor prior to delivery of the compressed air to the air separation unit; wherein a cooling stream including water is input to the heat exchanger to cool the compressed air, and a discharge stream including at least one of water and steam is fed from the heat exchanger to the second combustion unit.
- 5. The system of claim 4, wherein the second combustion unit provides combustion products including carbon dioxide and steam to the third turbine.
- 6. The system of claim 5, wherein a second portion of the oxygen stream produced by the air separation unit is fed to the second combustion unit.
- 7. The system of claim 5, wherein the flow rate of the discharge stream delivered from the heat exchanger to the second combustion unit is controllable to achieve a selected gas feed temperature at an inlet of the third turbine.
- 8. The system of claim 4, wherein the second combustion unit comprises a boiler that receives the discharge stream delivered from the heat exchanger and heats the discharge stream to provide a feed gas stream including steam to an inlet of the third turbine at a selected temperature and pressure.
- 9. The system of claim 4, wherein the cooling stream input to the heat exchanger is obtained by recycling of a discharge stream from the second turbine.
- 10. The system of claim 9, wherein the discharge stream from the second turbine includes steam and carbon dioxide, and the system further comprises:
a condenser located downstream from the second turbine and upstream from the heat exchanger, wherein the separator receives the discharge stream from the second turbine and separates the discharge stream into a product stream including carbon dioxide and the cooling stream to be fed to the heat exchanger.
- 11. The system of claim 2, wherein the operating pressure of the second turbine is no greater than about 1.5 bar (absolute), and the operating pressure of the third turbine is at least about 15 bar (absolute).
- 12. The system of claim 2, wherein system operating conditions are controllable such that an inlet temperature of the third turbine is about 400-600° C., an inlet pressure of the third turbine is about 50-150 bar (absolute), and an outlet pressure of the third turbine is about 10-30 bar (absolute).
- 13. The system of claim 2, wherein system operating conditions are controllable such that an inlet temperature of the expander is about 800-1400° C., an inlet pressure of the expander is about 10-30 bar (absolute), and an outlet pressure of the expander is about 1 bar (absolute).
- 14. The system of claim 2, wherein system operating conditions are controllable such that an inlet temperature of the second turbine is about 300-700° C., an inlet pressure of the second turbine is about 1 bar (absolute), and an outlet pressure of the second turbine is about 0.05-0.30 bar (absolute).
- 15. The system of claim 2, further comprising:
an electrical generator coupled to the second turbine, wherein the second turbine drives the electrical generator in addition to the air compressor when drive gas flows through the second turbine.
- 16. The system of claim 2, wherein the air separation unit further produces a high pressure stream of primarily nitrogen, and the system further comprises:
a heat exchanger to elevate the temperature of the high pressure nitrogen stream to a temperature in the range of about 400-1400° C.; a nitrogen turbine positioned to receive at least a portion of the heated high pressure nitrogen stream discharged from the heat exchanger; wherein the nitrogen turbine drives at least one of the air compressor and an electrical generator coupled to the nitrogen turbine when the high pressure nitrogen stream flows through the nitrogen turbine.
- 17. The system of claim 1, further comprising:
a third turbine disposed in-line with a power generation facility to receive drive gas from the power generation facility and generate power for the facility, the third turbine including at least one extraction port to feed a portion of the drive gas input to the third turbine to the combustion unit at a pressure that is substantially similar to the operating pressure of the combustion unit.
- 18. An integrated air separation and power generation system comprising:
an air separation unit to receive compressed air and produce at least two product streams including a stream of primarily oxygen; an air compressor located upstream from the air separation unit to feed compressed air to the air separation unit; a plurality of turbines coupled to the air compressor to drive the air compressor when drive gas flows through the turbines; and at least one combustion unit to feed drive gas to at least one turbine; wherein a portion of the oxygen stream produced by the air separation unit is fed to the at least one combustion unit.
- 19. The system of claim 18, further comprising:
a heat exchanger disposed in-line between the air compressor and air separation unit to receive and cool the compressed air from the air compressor prior to the compressed air being fed to the air separation unit, the heat exchanger further utilizing a cooling stream of water to cool the compressed air; wherein the cooling stream discharged from the heat exchanger is fed to the at least one combustion unit to control the temperature of drive gas fed to at least one of the turbines.
- 20. A method of providing power to an air separation unit via an integrated power generation system including a first turbine, a second turbine, an air compressor, and a combustion unit, wherein the first and second turbines are coupled to the air compressor, the method comprising:
reacting oxygen with a hydrocarbon fuel in the combustion unit to produce a drive gas for the first turbine; driving the air compressor by feeding the drive gas from the combustion unit directly through the first turbine and subsequently through the second turbine; generating a compressed air stream by the air compressor as a result of the air compressor being driven by the first and second turbines; feeding the compressed air stream from the air compressor to the air separation unit; processing the compressed air stream in the air separator unit to yield at least two product streams including a stream of primarily oxygen; and feeding a portion of the oxygen stream produced by the air separator unit to the combustion unit.
- 21. The method of claim 20, wherein the system further includes a third turbine coupled to the air compressor to further drive the air compressor when drive gas is fed through the third turbine, and the method further comprises:
feeding drive gas discharged from the third turbine to the combustion unit.
- 22. The method of claim 21, wherein the system further includes a second combustion unit, and the method further comprises:
producing a drive gas for the third turbine in the second combustion unit; and feeding drive gas from the second combustion unit to the third turbine.
- 23. The method of claim 22, wherein the system further comprises a heat exchanger located downstream from the air compressor and upstream from the air separation unit, and the method further comprises:
feeding compressed air from the air compressor to the heat exchanger; cooling the compressed air fed to the heat exchanger with a cooling stream including water; feeding the compressed air discharged from the heat exchanger to the air separation unit; and feeding the cooling stream discharged from the heat exchanger to the second combustion unit, wherein the cooling stream discharged from the air compressor unit includes at least one of water and steam.
- 24. The method of claim 23, wherein the drive gas fed to the third turbine includes steam and carbon dioxide, and the method further comprises:
feeding a second portion of the oxygen stream produced by the air separation unit to the second combustion unit.
- 25. The method of claim 24, further comprising:
controlling the flow rate of the cooling stream discharged from the heat exchanger to the second combustion unit to achieve a selected temperature of the drive gas fed to the third turbine.
- 26. The method of claim 23, wherein the second combustion unit comprises a boiler, and the method further comprises:
heating the cooling stream discharged from the heat exchanger in the boiler to produce steam at a selected temperature and pressure to be fed as the drive gas to the third turbine.
- 27. The method of claim 23, wherein the system further includes a condenser located directly downstream from the second turbine, the discharge gas from the second turbine includes steam and carbon dioxide, and the method further comprises:
feeding the discharge gas from the second turbine to the condenser; and separating the discharge gas into a product stream including carbon dioxide and the cooling stream to be recycled to the heat exchanger.
- 28. The method of claim 21, wherein the operating pressure of the second turbine is no greater than about 1.5 bar (absolute), and the operating pressure of the third turbine is at least about 15 bar (absolute).
- 29. The method of claim 21, further comprising:
controlling the system operating conditions to provide an inlet temperature of the third turbine of about 400-600° C., an inlet pressure of the third turbine of about 50-150 bar (absolute), and an outlet pressure of the third turbine of about 10-30 bar (absolute).
- 30. The method of claim 21, further comprising:
controlling the system operating conditions to provide an inlet temperature of the first turbine of about 800-1400° C., an inlet pressure of the first turbine of about 10-30 bar (absolute), and an outlet pressure of the first turbine of about 1 bar (absolute).
- 31. The method of claim 21, further comprising:
controlling the system operating conditions to provide an inlet temperature of the second turbine of about 300-700° C., an inlet pressure of the second turbine of about 1 bar (absolute), and an outlet pressure of the second turbine of about 0.05-0.30 bar (absolute).
- 32. The method of claim 21, wherein the second turbine is further coupled to an electrical generator, and the method further comprises:
driving the electrical generator with the second turbine to produce electrical energy when drive gas flows through the second turbine.
- 33. The method of claim 21, further comprising:
producing a high pressure stream of primarily nitrogen from the air separation unit; feeding the high pressure stream of primarily nitrogen through a heat exchanger to heat the high pressure stream of primarily nitrogen; and feeding the heated, high pressure stream of primarily nitrogen through a nitrogen turbine to drive at least one of the air compressor and an electrical generator coupled to the nitrogen turbine to produce electrical energy.
- 34. The method of claim 20, wherein the system is combined with a power generation facility including a third turbine, and the method further comprises:
feeding a drive gas from the facility through the third turbine to generate power for the facility; and extracting a portion of the drive gas within the third turbine from at least one extraction port and at a selected pressure that is substantially similar to the operating pressure of the combustion unit; and feeding the drive gas extracted from the third turbine to the combustion unit to form a portion of the drive gas to be fed to the first turbine.
CROSS REFERENCE TO RELATED APPLICATION
[0001] This application claims priority from U.S. Provisional Patent Application Serial No. 60/356,105, entitled “Integrated Air Separation Unit and Oxygen-Fired Power Generation System” and filed Feb. 11, 2001. The disclosure of the above-mentioned provisional application is incorporated herein by reference in its entirety.
Provisional Applications (1)
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Number |
Date |
Country |
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60356105 |
Feb 2002 |
US |