Claims
- 1. A method of operating a power generation system having a turbine for receiving a stream of first working fluid and expanding the first working fluid to produce power, a regenerative heat exchanger for receiving a stream of the expanded first working fluid from the turbine and a stream of second working fluid and for transferring heat from the expanded first working fluid to the second working fluid to heat the second working fluid and condense the expanded first working fluid, a boiler for receiving and vaporizing a stream of the condensed first working fluid, and a superheater for receiving and superheating the vaporized stream of first working fluid and the heated stream of second working fluid to form the stream of first working fluid, comprising the steps of:
- transferring first heat from the expanded first working fluid to the second working fluid to superheat the second working fluid and condense the expanded first working fluid;
- combining the condensed first working fluid from another stream of the condensed first working fluid with the superheated second working fluid to desuperheat the superheated second working fluid; and
- transferring second heat from the expanded first working fluid to the desuperheated second working fluid to heat the desuperheated second working fluid without condensing the expanded first working fluid to form the heated stream of second working fluid.
- 2. A method according to claim 1, further comprising the steps of:
- regulating a rate of flow of the stream of second working fluid received at the regenerative heat exchanger to control an amount of the condensed first working fluid; and
- regulating a rate of flow of the other stream of condensed first working fluid to control a state of the heated stream of second working fluid received at the superheater.
- 3. A method according to claim 1, further comprising the steps of:
- regulating a rate of flow of the stream of second working fluid received at the regenerative heat exchanger to be at a first flow rate; and
- regulating a rate of flow of the other stream of condensed first working fluid to be at a second flow rate corresponding to the first flow rate.
- 4. A method according to claim 1, wherein:
- the first and the second working fluids are formed of multiple components;
- the second working fluid has a first concentration of a first of the multiple components; and
- the expanded first working fluid has a second concentration, different from the first concentration, of the first component.
- 5. A method according to claim 4, wherein the multiple components are ammonia and water.
- 6. A method according to claim 1, further comprising the steps of:
- receiving information representing a state of the heated second working fluid; and
- adjusting a rate of flow of the other stream of condensed first working fluid to regulate the state of the heated stream of second working fluid.
- 7. A method according to claim 6, wherein the information is a pressure and a temperature of the heated second working fluid.
- 8. A power generation system, comprising:
- a turbine configured to receive a stream of first working fluid and expand the first working fluid to produce power;
- a regenerative heat exchanger configured to transfer first heat from a first portion of the expanded first working fluid to a second working fluid to thereby initially heat the second working fluid and condense the first portion of expanded first working fluid, to combine a first portion of the condensed first working fluid with the initially heated second working fluid to cool the initially heated second working fluid, and to transfer second heat from a second portion of the expanded first working fluid to the cooled second working fluid to heat the cooled second working fluid to form a heated second working fluid;
- a boiler configured to vaporize a second portion of the condensed first working fluid; and
- a superheater configured to superheat the vaporized first working fluid and the heated stream of second working fluid to form the first working fluid.
- 9. A system according to claim 8, further comprising:
- a first valve operable to adjust a rate of flow of the second working fluid to the regenerative heat exchanger; and
- a second valve operable to adjust a rate of flow of the first portion of condensed first working fluid.
- 10. A system according to claim 9, further comprising:
- a control device configured to generate a signal to the first valve, responsive to which the first valve operates to adjust the rate of flow to regulate an amount of the condensed first working fluid, and to generate a signal to the second valve, responsive to which the second valve operates to adjust the rate of flow to regulate a state of the heated second working fluid.
- 11. A system according to claim 9, further comprising:
- a control device configured to generate a signal to the first valve to control the rate of flow of the second working fluid to the regenerative heat exchanger to be at a first flow rate, and to generate a signal to the second valve to control the rate of flow of the first portion of condensed first working fluid to be at a second flow rate corresponding to the first flow rate.
- 12. A system according to claim 9, further comprising:
- a first sensing device configured to generate a first representing a state of the heated second working fluid; and
- a control device configured to control the rate of flow first portion of condensed first working fluid to regulate the state of the heated stream of second working fluid based upon the first signal.
- 13. A system according to claim 12, wherein:
- the information is a pressure and a temperature of the heated second working fluid.
- 14. A system according to claim 12, further comprising:
- a second sensing device configured to generate a second signal representing an amount of the condensed first working fluid;
- wherein the control device is further configured to control the rate of flow of the second working fluid to regulate the amount of condensed first working fluid based upon the second signal.
- 15. A system according to claim 8, wherein:
- the first and the second working fluids are formed of multiple components;
- the second working fluid has a first concentration of a first of the multiple components; and
- the expanded first working fluid has a second concentration, different than the first concentration, of the first component.
- 16. A system according to claim 15, wherein the multiple components are ammonia and water.
- 17. A regenerative heat exchanger, comprising:
- a first heat exchanger configured to receive a first working fluid and to transfer first heat from the first working fluid to a second working fluid to thereby initially heat the second working fluid and condense the first working fluid;
- flow tubes configured to combine the condensed first working fluid with the initially heated second working fluid to form a combined working fluid; and
- a second heat exchanger configured to transfer second heat from the first working fluid to the combined working fluid.
- 18. A regenerative heat exchanger according to claim 17, wherein:
- the flow tubes are configured such that the condensed first working fluid cools the initially heated second working fluid; and
- the transfer of second heat transforms the combined working fluid to a substantially fully saturated state.
- 19. A regenerative heat exchanger according to claim 17, further comprising:
- a first valve operable to adjust a rate of flow of condensed first working fluid.
- 20. A regenerative heat exchanger according to claim 19, further comprising:
- a second valve operable to adjust a rate of flow of the second working fluid to the first heat exchanger.
- 21. A regenerative heat exchanger according to claim 21, further comprising:
- a sensing device configured to detect an amount of the condensed first working fluid;
- wherein the second valve is operable to adjust the rate of flow of the second working fluid based upon the detected amount.
- 22. A regenerative heat exchanger according to claim 19, further comprising:
- a sensing device configured to detect a state of the heated combined working fluid;
- wherein the first valve is operable to adjust the rate of flow of the stream of condensed first working fluid to regulate the state of the heated combined working fluid based upon the detected state.
- 23. A regenerative heat exchanger according to claim 17, wherein:
- the first and the second working fluids are formed of multiple components;
- the second working fluid has a first concentration of a first of the multiple components; and
- the expanded first working fluid has a second concentration, different from the first concentration, of the first component.
CROSS REFERENCE TO RELATED APPLICATIONS
The present application relates to pending U.S. patent application Ser. No. 09/231,165, filed Jan. 12, 1999, for "TECHNIQUE FOR CONTROLLING REGENERATIVE SYSTEM CONDENSATION LEVEL DUE TO CHANGING CONDITIONS IN A KALINA CYCLE POWER GENERATION SYSTEM"; U.S. patent application Ser. No. 09/231,171, filed Jan. 12, 1999, for "TECHNIQUE FOR BALANCING REGENERATIVE REQUIREMENTS DUE TO PRESSURE CHANGES IN A KALINA CYCLE POWER GENERATION SYSTEM"; U.S. patent application Ser. No. 09/231,166, filed Jan. 12, 1999, for "TECHNIQUE FOR MAINTAINING PROPER DRUM LIQUID LEVEL IN A KALINA CYCLE POWER GENERATION SYSTEM"; U.S. patent application Ser. No. 09/229,629, filed Jan. 12, 1999, for "TECHNIQUE FOR CONTROLLING DCSS CONDENSATE LEVELS IN A KALINA CYCLE POWER GENERATION SYSTEM"; U.S. patent application Ser. No. 09/229,630, filed Jan. 12, 1999, for "TECHNIQUE FOR MAINTAINING PROPER FLOW IN PARALLEL HEAT EXCHANGERS IN A KALINA CYCLE POWER GENERATION SYSTEM"; U.S. patent application Ser. No. 09/229,631, filed Jan. 12, 1999; U.S. patent application Ser. No. 09/231,164, filed Jan. 12, 1999, for "WASTE HEAT KALINA CYCLE POWER GENERATION SYSTEM"; U.S. patent aplication Ser. No. 09/229,366, filed Jan. 12, 1999, for "MATERIAL SELECTION AND CONDITIONING TO AVOID BRITTLENESS CAUSED BY NITRIDING"; U.S. patent application Ser. No. 09/231,168, filed Jan. 12, 1999, for "REFURBISHING CONVENTIONAL POWER PLANTS FOR KALINA CYCLE OPERATION"; U.S. patent application Ser. No. 09/231,170, filed Jan. 12, 1999, for "STARTUP TECHNIQUE USING MULTIMODE OPERATION IN A KALINA CYCLE POWER GENERATION SYSTEM"; U.S. patent application Ser. No. 09/231,163, filed Jan. 12, 1999, for "TECHNIQUE FOR COOLING FURNACE WALLS IN A MULTICOMPONENT WORKING FLUID POWER GENERATION SYSTEM; U.S. patent application Ser. No. 09/229,632, filed Jan. 12, 1999, for "BLOWDOWN RECOVERY SYSTEM IN A KALINA CYCLE POWER GENERATION SYSTEM"; U.S. patent application Ser. No. 09/229,368, filed Jan. 12, 1999, for "REGENERATIVE SUBSYSTEM CONTROL IN A KALINA CYCLE POWER GENERATION SYSTEM"; U.S. patent application Ser. No. 09/229,363, filed Jan. 12, 1999, for "DISTILLATION AND CONDENSATION SUBSYSTEM (DCSS) CONTROL IN A KALINA CYCLE POWER GENERATION SYSTEM"; U.S. patent application Ser. No. 09/229,365, filed Jan. 12, 1999, for "VAPOR TEMPERATURE CONTROL IN A KALINA CYCLE POWER GENERATION SYSTEM"; U.S. patent application Ser. No. 09/229,367, filed Jan. 12, 1999, for "A HYBRID DUAL CYCLE VAPOR GENERATOR"; U.S. patent application Ser. No. 09/231,169, filed Jan. 12, 1999, for "FLUIDIZED BED FOR KALINA CYCLE POWER GENERATION SYSTEM"; U.S. patent application Ser. No. 09/231,167, filed Jan. 12, 1999, for "TECHNIQUE FOR RECOVERING WASTE HEAT USING A BINARY WORKING FLUID".
US Referenced Citations (14)
Non-Patent Literature Citations (8)
Entry |
Kalina Cycles for Efficient Direct Fired Application,--Alexander I. Kalina, Yakov Lerner, richard I. Pelletier, Exergy, Inc., Lawrence J. Peletz, Jr. ABB CE systems, Combustion engineering, Inc., --7pgs (No Date). |
Kalina Cycle Looks Good for Combined Cycle Generation--Dr. James C. Corman, Dr. robert W. Bjorge, GE Power Systems, Dr. Alexander Kalina, Exergy, Inc., Jul., 1995--3pgs. |
Power Perspective, The Kalina Cycle--More Electricity From Each BTU of Fuel--1995--3pgs. |
A Gas Turbine--Aqua Ammonia Combined Power Cycle--Irby Hicks, The Thermosorb Company--Mar. 25, 1996--6 pgs. |
Understanding the Kalina Cycle Fundamentals--H.A. Mlcak, P.E., ABB Lummus Crest--12 pgs (No Date). |
Direct--Fired Kalina Cycle: Overview--ABB--1994--13 pgs. |
Kalina Cycle System Advancements for Direct Fired Power Generation, Michael J. Davidson, Lawrence J. Peletz, ABB Combustion Engineering,--9 pgs (No Date). |
Kalina Cycles and System for Direct--Fired Power Plants, A.I. Kalina, Exergy, Inc., AES--vol. 25/HTD--vol. 191--7 pgs (No Date). |