Claims
- 1. A method for generating a transient plant power boost in a gas turbine apparatus that comprises a gas turbine system including a compressor, a combustion system, and a gas turbine, the method comprising:providing a working fluid source, said working fluid source comprising at least one of a compressed gas storage vessel and a liquefied gas storage vessel, each said vessel containing and storing a first gas; operatively coupling said vessel via a working fluid flow control valve to a fluid flow path extending between said compressor and said gas turbine; and causing said transient plant boost by selectively adding, during said transient, said first gas in gaseous form to fluid flowing through said fluid flow path at a point downstream of said compressor and upstream of said gas turbine.
- 2. A method as in claim 1, wherein said working fluid source comprises a liquefied gas storage vessel and further comprising vaporizing the liquefied gas intermediate said liquefied gas storage vessel and said gas turbine system.
- 3. A method as in claim 2, wherein said step of vaporizing comprises passing said liquefied gas through a heat exchanger.
- 4. A method as in claim 3, wherein the liquefied gas is vaporized by heat exchange with air.
- 5. A method as in claim 3, wherein said liquefied gas is vaporized by heat exchange with water.
- 6. A method as in claim 2, further comprising a vessel for storing compressed gas downstream of said liquefied gas storage vessel and upstream of said gas turbine system, and further comprising storing compressed gas in said compressed gas storage vessel in advance of said adding step.
- 7. A method as in claim 2, further comprising the step of pumping said liquefied gas for increasing a pressure of said liquefied gas.
- 8. A method as in claim 1, wherein said first gas contains nitrogen.
- 9. A method for generating a transient plant power boost in a gas turbine combined cycle system comprising:providing a gas turbine system including a compressor, a combustion system, and a gas turbine; a stream turbine system; a heat recovery steam generator for receiving exhaust gas from the gas turbine for generating steam for the steam turbine; providing a working fluid source comprising at least one of a compressed gas storage vessel and a liquefied gas storage vessel, each said vessel containing and storing a first gas; operatively coupling said vessel via a working fluid flow control valve to a fluid flow path extending between said compressor and said gas turbine; and causing said transient plant boost by selectively adding, during said transient, said first gas in gaseous form to fluid flowing through said fluid flow path at a point downstream of said compressor and upstream of said gas turbine.
- 10. A method as in claim 9, wherein said working fluid source comprises a liquefied gas storage vessel and further comprising vaporizing the liquefied gas intermediate said liquefied gas storage vessel and said gas turbine system.
- 11. A method as in claim 10, wherein said step of vaporizing comprises passing said liquefied gas through a heat exchanger.
- 12. A method as in claim 11, wherein the liquefied gas is vaporized by heat exchange with air.
- 13. A method as in claim 11, wherein said liquefied gas is vaporized by heat exchange with water.
- 14. A method as in claim 10, further comprising a vessel for storing compressed gas downstream of said liquefied gas storage vessel and upstream of said gas turbine system and further comprising storing compressed gas in said compressed gas storage vessel in advance of said adding step.
- 15. A method as in claim 10, further comprising the step of pumping said liquefied gas for increasing a pressure of said liquefied gas.
- 16. A method as in claim 9, wherein said first gas contains nitrogen.
- 17. A method as in claim 11, further comprising condensing exhaust steam from the steam turbine to water and wherein said heat recovery steam generator receives water from said condenser and converts said water into steam for return to the steam turbine and further comprising supplying coolant to said condenser, said coolant supply flowing through said heat exchanger whereby said coolant supply is cooled and said liquefied gas is vaporized.
- 18. A method as in claim 9, further comprising a step of increasing a pressure of said liquefied gas.
- 19. A method as in claim 18, wherein the pressure of said liquefied gas is
Parent Case Info
This application is a division of application Ser. No. 09/691,585, filed Oct. 18, 2000 U.S. Pat. No. 6,474,069 the entire content of which is hereby incorporated by reference in this application.
US Referenced Citations (21)
Foreign Referenced Citations (10)
Number |
Date |
Country |
26 42 347 |
Apr 1977 |
DE |
197 57 588 |
Jul 1998 |
DE |
2 125 680 |
Sep 1972 |
FR |
2-89901 |
Mar 1990 |
JP |
2-259301 |
Oct 1990 |
JP |
3-282102 |
Dec 1991 |
JP |
10-131716 |
May 1998 |
JP |
10-131717 |
May 1998 |
JP |
10-131718 |
May 1998 |
JP |
10-131719 |
May 1998 |
JP |
Non-Patent Literature Citations (1)
Entry |
Patent Abstracts of Japan; vol. 008, No. 016; JP 58 176407; Oct. 15, 1983. |