US20120000201A1 - System and method for generating and storing transient integrated organic rankine cycle energy - Google Patents
System and method for generating and storing transient integrated organic rankine cycle energy Download PDFInfo
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- US20120000201A1 US20120000201A1 US12/827,510 US82751010A US2012000201A1 US 20120000201 A1 US20120000201 A1 US 20120000201A1 US 82751010 A US82751010 A US 82751010A US 2012000201 A1 US2012000201 A1 US 2012000201A1
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- 230000001052 transient effect Effects 0.000 title claims abstract description 28
- 238000000034 method Methods 0.000 title abstract description 4
- 239000012530 fluid Substances 0.000 claims abstract description 33
- 239000012809 cooling fluid Substances 0.000 claims abstract description 25
- 238000003860 storage Methods 0.000 claims description 18
- 229920006395 saturated elastomer Polymers 0.000 claims description 16
- 238000002485 combustion reaction Methods 0.000 claims description 10
- 238000001816 cooling Methods 0.000 claims description 7
- 230000006641 stabilisation Effects 0.000 abstract 2
- 238000011105 stabilization Methods 0.000 abstract 2
- 239000007789 gas Substances 0.000 description 9
- 239000002826 coolant Substances 0.000 description 6
- 238000004519 manufacturing process Methods 0.000 description 6
- 239000007788 liquid Substances 0.000 description 4
- 230000007423 decrease Effects 0.000 description 3
- XLYOFNOQVPJJNP-UHFFFAOYSA-N water Substances O XLYOFNOQVPJJNP-UHFFFAOYSA-N 0.000 description 3
- 238000004146 energy storage Methods 0.000 description 2
- 230000004048 modification Effects 0.000 description 2
- 238000012986 modification Methods 0.000 description 2
- 238000013486 operation strategy Methods 0.000 description 2
- 239000011555 saturated liquid Substances 0.000 description 2
- 230000005611 electricity Effects 0.000 description 1
- 238000003306 harvesting Methods 0.000 description 1
- 238000010438 heat treatment Methods 0.000 description 1
- 238000005086 pumping Methods 0.000 description 1
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Classifications
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F01—MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
- F01K—STEAM ENGINE PLANTS; STEAM ACCUMULATORS; ENGINE PLANTS NOT OTHERWISE PROVIDED FOR; ENGINES USING SPECIAL WORKING FLUIDS OR CYCLES
- F01K23/00—Plants characterised by more than one engine delivering power external to the plant, the engines being driven by different fluids
- F01K23/02—Plants characterised by more than one engine delivering power external to the plant, the engines being driven by different fluids the engine cycles being thermally coupled
- F01K23/06—Plants characterised by more than one engine delivering power external to the plant, the engines being driven by different fluids the engine cycles being thermally coupled combustion heat from one cycle heating the fluid in another cycle
- F01K23/065—Plants characterised by more than one engine delivering power external to the plant, the engines being driven by different fluids the engine cycles being thermally coupled combustion heat from one cycle heating the fluid in another cycle the combustion taking place in an internal combustion piston engine, e.g. a diesel engine
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F01—MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
- F01K—STEAM ENGINE PLANTS; STEAM ACCUMULATORS; ENGINE PLANTS NOT OTHERWISE PROVIDED FOR; ENGINES USING SPECIAL WORKING FLUIDS OR CYCLES
- F01K23/00—Plants characterised by more than one engine delivering power external to the plant, the engines being driven by different fluids
- F01K23/02—Plants characterised by more than one engine delivering power external to the plant, the engines being driven by different fluids the engine cycles being thermally coupled
- F01K23/06—Plants characterised by more than one engine delivering power external to the plant, the engines being driven by different fluids the engine cycles being thermally coupled combustion heat from one cycle heating the fluid in another cycle
- F01K23/10—Plants characterised by more than one engine delivering power external to the plant, the engines being driven by different fluids the engine cycles being thermally coupled combustion heat from one cycle heating the fluid in another cycle with exhaust fluid of one cycle heating the fluid in another cycle
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F01—MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
- F01K—STEAM ENGINE PLANTS; STEAM ACCUMULATORS; ENGINE PLANTS NOT OTHERWISE PROVIDED FOR; ENGINES USING SPECIAL WORKING FLUIDS OR CYCLES
- F01K25/00—Plants or engines characterised by use of special working fluids, not otherwise provided for; Plants operating in closed cycles and not otherwise provided for
- F01K25/08—Plants or engines characterised by use of special working fluids, not otherwise provided for; Plants operating in closed cycles and not otherwise provided for using special vapours
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F01—MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
- F01K—STEAM ENGINE PLANTS; STEAM ACCUMULATORS; ENGINE PLANTS NOT OTHERWISE PROVIDED FOR; ENGINES USING SPECIAL WORKING FLUIDS OR CYCLES
- F01K3/00—Plants characterised by the use of steam or heat accumulators, or intermediate steam heaters, therein
- F01K3/004—Accumulation in the liquid branch of the circuit
Definitions
- This invention relates generally to organic Rankine cycle (ORC) plants, and more particularly to methods and apparatus for using the thermal mass of the ORC, the working fluid, the oil loop, the water loop and all components, to provide additional transient power.
- ORC organic Rankine cycle
- Rankine cycles use a working fluid in a closed cycle to gather heat from a heating source or a hot reservoir by generating a hot gaseous stream that expands through a turbine to generate power.
- the expanded stream is condensed in a condenser by rejecting the heat to a cold reservoir.
- the working fluid in a Rankine cycle follows a closed loop and is re-used constantly.
- Electric grids do not incorporate any intrinsic storage capability. Demand and supply therefore are required to be balanced at every moment. This characteristic requires power plants constantly follow the electric grid load. Since not all types of power plants are able to achieve such tracking, some power plants operate at constant load, and provide a so-called base-load. Power plants that are able to accommodate such fast changing power requirements are called peaking power plants. Peak power is more expensive to generate and is of high value since it ensured the grid stability. Peak power plants therefore provide a technical and economic advantage over base-load power plants.
- ORC plants are presently either base-load power plants, or strictly follow the heat input from a heat source. Such ORC plants are able to provide only a base load to the electric grid, and thus generate relatively low revenue for the generated electricity.
- ORC plant with an improved operation strategy that is capable of operating with varying temperatures and pressures to enable the production of transient power.
- the ORC plant should be capable of generating power corresponding to the demand on an electric grid, thus providing a more economical and profitable power system and helping to stabilize the electric grid.
- an organic Rankine cycle (ORC) plant comprises:
- an internal combustion engine or gas turbine (engine/turbine) cooling fluid loop configured to transfer engine/turbine cooling fluid heat to a low temperature (LT) ORC loop, the engine/turbine cooling loop and the LT ORC loop together configured to generate transient power via at least one LT expander;
- thermal oil loop configured to transfer heat generated via the engine/turbine to a high temperature (HT) ORC loop, the thermal oil loop and the HT ORC loop together configured to generate transient power via at least one HT expander.
- HT high temperature
- an organic Rankine cycle (ORC) plant comprises an internal combustion engine or gas turbine (engine/turbine) cooling fluid loop configured to transfer engine/turbine cooling fluid heat from an engine/turbine to a low temperature (LT) ORC loop working fluid, the engine/turbine cooling loop and the LT ORC loop together configured to generate transient power via at least one LT expander.
- engine/turbine gas turbine
- LT low temperature
- an organic Rankine cycle (ORC) plant comprises a thermal oil loop configured to transfer heat from an internal combustion engine or gas turbine (engine/turbine) to a high temperature (HT) ORC loop working fluid, the thermal oil loop and the HT ORC loop together configured to generate transient power via at least one HT expander.
- ORC organic Rankine cycle
- FIG. 1 illustrates an organic Rankine cycle (ORC) plant according to one embodiment
- FIG. 2 illustrates an organic Rankine cycle plant according to another embodiment
- FIG. 3 illustrates an organic Rankine cycle plant according to yet another embodiment.
- FIG. 1 illustrates an organic Rankine cycle (ORC) plant 10 according to one embodiment.
- the ORC plant 10 comprises a thermal oil loop 12 and an internal combustion engine/gas turbine (engine/turbine) fluid cooling loop 14 .
- the ORC plant 10 further comprises a high temperature (HT) ORC loop 16 and a low temperature (LT) ORC loop 18 .
- the working fluid in each loop is pumped (ideally isentropically) from a low pressure to a high pressure by a corresponding loop pump. Pumping the working fluid from a low pressure to a high pressure requires a power input (for example mechanical or electrical).
- an engine/turbine 20 generates an exhaust gas 22 at a high temperature (e.g. 450° C.) that is received by a heat exchanger 24 that cools the exhaust gas by transferring at least some of its heat to a thermal oil 26 passing through the heat exchanger 24 .
- the heated thermal oil 26 enters an evaporator 28 where it is re-cooled as it transfers heat to the HT ORC loop 16 working fluid to generate a saturated vapor stream 38 that may have a temperature for example, of about 210° C. according to one embodiment.
- Common heat sources for organic Rankine cycles are exhaust gases from combustion systems (power plants or industrial processes), hot liquid or gaseous streams from industrial processes or renewable thermal sources such as geothermal or solar thermal.
- the cooled thermal oil re-enters a thermal oil pump 30 to generate the high-pressure thermal oil, and the thermal oil loop cycle repeats.
- the resultant HT ORC loop 16 saturated vapor stream 38 expands through a high temperature expander (turbine) 32 that forms part of the HT ORC loop 16 to generate output power. In one embodiment, this expansion is isentropic and the output power is sufficient to produce about 190 KW of electrical output power. The expansion decreases the temperature and pressure of the vapor stream.
- the resultant vapor stream 40 then enters a condenser 34 where it is cooled to generate a liquid stream 36 by transferring residual heat to the LT ORC 18 working fluid. This liquid stream 36 re-enters a pump 42 to generate the high-pressure HT ORC loop 16 working fluid, and the cycle repeats.
- the engine/turbine 20 heats a known cooling fluid such as water to a high temperature (e.g. 90° C.) that is subsequently received by a pre-heater unit 44 that re-cools the engine/turbine cooling fluid by transferring at least some of its heat to the LT ORC loop 18 working fluid 46 passing through the pre-heater 44 .
- the heated working fluid 48 enters the evaporator 34 where it is further heated via resultant vapor stream 40 to generate a saturated vapor stream 50 that may have a temperature for example, of about 90° C. according to one embodiment.
- Common heat sources for organic Rankine cycles are exhaust gases from combustion systems (power plants or industrial processes), hot liquid or gaseous streams from industrial processes or renewable thermal sources such as geothermal or solar thermal, as stated herein.
- the resultant LT ORC loop 18 saturated vapor stream 50 expands through a low temperature expander (turbine) 52 that forms part of the LT ORC loop 18 to generate output power. In one embodiment, this expansion is isentropic and is sufficient to produce about 183 KW of electrical output power. The expansion decreases the temperature and pressure of the vapor stream.
- the resultant vapor stream 54 then enters a condenser 56 (e.g. air blown finned tubes) where it is re-cooled to generate a saturated liquid stream 58 .
- This saturated liquid stream 58 re-enters a pump 60 to generate the high-pressure LT ORC loop 18 working fluid, and the cycle repeats.
- FIG. 2 illustrates an organic Rankine cycle plant 70 according to another embodiment.
- ORC plant 70 operates in similar fashion to ORC plant 10 described herein with reference to FIG. 1 .
- ORC plant 70 also comprises a thermal oil storage tank 72 and an engine coolant storage tank 74 .
- Other embodiments may, for example, comprise only one or more thermal oil storage tanks 72 or only one or more engine coolant storage tanks 74 .
- Thermal oil storage tank 72 provides additional thermal storage capacity for thermal oil that is heated via heat exchanger 24 that forms part of the thermal oil loop 12 .
- Engine coolant storage tank 74 provides additional thermal storage capacity for engine coolant that is heated via pre-heater 44 that forms part of the engine cooling loop 14 .
- Thermal oil storage tank 72 and engine coolant storage tank 74 provide for extended transient operation of the corresponding ORC plant by providing increased energy storage capability. This increased energy storage capability allows the ORC plant to respond to increased power grid loading in a fashion similar to that provided via peak load power plants.
- the additional resources that may include one or more thermal oil storage tanks 72 , one or more engine coolant storage tanks 74 , one or more oversized ORC loops 16 , 18 , one or more additional expanders 82 , 84 , or combinations of the foregoing additional resources.
- Such additional resources are particularly useful in applications where several engines 20 are connected to several ORCs 16 , 18 to provide further economical advantages when operating under peak grid loading conditions.
- the embodiments described herein advantageously provide backup power capability in the case of a grid loss event.
- the ORCs can immediately provide power for systems during the time periods when engines need to start-up. Such time periods can be, for example, up to about ten minutes for large Jenbacher engines.
- the thermal energy stored from previous engine operations or from other industrial heat sources can provide the requisite backup power capability using the principles described herein.
- the embodiments described herein are particularly useful for maintaining operation of an ORC plant, even during short periods of time while the heat source, e.g. internal combustion engine, gas turbine, and the like, is already turned off.
- the embodiments are also useful to provide additional thermal peak power from a thermo oil loop if required by the ORC plant operation.
- the embodiments described herein are further particularly useful in island applications, to supply auxiliary power if the power plant is off.
- Embodiments described herein are capable of providing short time increases and/or decreases of output power if demanded from the grid side when operated according to the principles described herein. Further, the foregoing embodiments can compensate for power fluctuations due to day/night ambient temperature fluctuations.
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Abstract
A system and method are provided for using the thermal mass of an ORC, the working fluid, the oil loop, the cooling fluid loop and all components, to provide additional transient power to an electrical grid. A pre-heater transfers heat from the cooling fluid to a low temperature (LT) ORC loop working fluid. A LT ORC loop expander generates transient power to support stabilization of the electrical grid. A heat exchanger transfers heat from the thermal oil to a high temperature (HT) ORC loop working fluid. A HT ORC loop expander generates transient power to support stabilization of the electrical grid.
Description
- This invention relates generally to organic Rankine cycle (ORC) plants, and more particularly to methods and apparatus for using the thermal mass of the ORC, the working fluid, the oil loop, the water loop and all components, to provide additional transient power.
- Rankine cycles use a working fluid in a closed cycle to gather heat from a heating source or a hot reservoir by generating a hot gaseous stream that expands through a turbine to generate power. The expanded stream is condensed in a condenser by rejecting the heat to a cold reservoir. The working fluid in a Rankine cycle follows a closed loop and is re-used constantly.
- Electric grids do not incorporate any intrinsic storage capability. Demand and supply therefore are required to be balanced at every moment. This characteristic requires power plants constantly follow the electric grid load. Since not all types of power plants are able to achieve such tracking, some power plants operate at constant load, and provide a so-called base-load. Power plants that are able to accommodate such fast changing power requirements are called peaking power plants. Peak power is more expensive to generate and is of high value since it ensured the grid stability. Peak power plants therefore provide a technical and economic advantage over base-load power plants.
- ORC plants are presently either base-load power plants, or strictly follow the heat input from a heat source. Such ORC plants are able to provide only a base load to the electric grid, and thus generate relatively low revenue for the generated electricity.
- In view of the foregoing, it would be advantageous to provide an ORC plant with an improved operation strategy that is capable of operating with varying temperatures and pressures to enable the production of transient power. The ORC plant should be capable of generating power corresponding to the demand on an electric grid, thus providing a more economical and profitable power system and helping to stabilize the electric grid.
- According to one embodiment, an organic Rankine cycle (ORC) plant comprises:
- an internal combustion engine or gas turbine (engine/turbine) cooling fluid loop configured to transfer engine/turbine cooling fluid heat to a low temperature (LT) ORC loop, the engine/turbine cooling loop and the LT ORC loop together configured to generate transient power via at least one LT expander; and
- a thermal oil loop configured to transfer heat generated via the engine/turbine to a high temperature (HT) ORC loop, the thermal oil loop and the HT ORC loop together configured to generate transient power via at least one HT expander.
- According to another embodiment, an organic Rankine cycle (ORC) plant comprises an internal combustion engine or gas turbine (engine/turbine) cooling fluid loop configured to transfer engine/turbine cooling fluid heat from an engine/turbine to a low temperature (LT) ORC loop working fluid, the engine/turbine cooling loop and the LT ORC loop together configured to generate transient power via at least one LT expander.
- According to yet another embodiment, an organic Rankine cycle (ORC) plant comprises a thermal oil loop configured to transfer heat from an internal combustion engine or gas turbine (engine/turbine) to a high temperature (HT) ORC loop working fluid, the thermal oil loop and the HT ORC loop together configured to generate transient power via at least one HT expander.
- These and other features, aspects, and advantages of the present invention will become better understood when the following detailed description is read with reference to the accompanying drawing, wherein:
-
FIG. 1 illustrates an organic Rankine cycle (ORC) plant according to one embodiment; -
FIG. 2 illustrates an organic Rankine cycle plant according to another embodiment; and -
FIG. 3 illustrates an organic Rankine cycle plant according to yet another embodiment. - While the above-identified drawing figure sets forth a particular embodiment, other embodiments of the present invention are also contemplated, as noted in the discussion. In all cases, this disclosure presents illustrated embodiments of the present invention by way of representation and not limitation. Numerous other modifications and embodiments can be devised by those skilled in the art which fall within the scope and spirit of the principles of this invention.
-
FIG. 1 illustrates an organic Rankine cycle (ORC)plant 10 according to one embodiment. TheORC plant 10 comprises athermal oil loop 12 and an internal combustion engine/gas turbine (engine/turbine)fluid cooling loop 14. TheORC plant 10 further comprises a high temperature (HT)ORC loop 16 and a low temperature (LT)ORC loop 18. The working fluid in each loop is pumped (ideally isentropically) from a low pressure to a high pressure by a corresponding loop pump. Pumping the working fluid from a low pressure to a high pressure requires a power input (for example mechanical or electrical). - Looking now at
thermal oil loop 12, an engine/turbine 20 generates anexhaust gas 22 at a high temperature (e.g. 450° C.) that is received by aheat exchanger 24 that cools the exhaust gas by transferring at least some of its heat to athermal oil 26 passing through theheat exchanger 24. The heatedthermal oil 26 enters anevaporator 28 where it is re-cooled as it transfers heat to the HTORC loop 16 working fluid to generate asaturated vapor stream 38 that may have a temperature for example, of about 210° C. according to one embodiment. Common heat sources for organic Rankine cycles are exhaust gases from combustion systems (power plants or industrial processes), hot liquid or gaseous streams from industrial processes or renewable thermal sources such as geothermal or solar thermal. The cooled thermal oil re-enters athermal oil pump 30 to generate the high-pressure thermal oil, and the thermal oil loop cycle repeats. - The resultant
HT ORC loop 16saturated vapor stream 38 expands through a high temperature expander (turbine) 32 that forms part of theHT ORC loop 16 to generate output power. In one embodiment, this expansion is isentropic and the output power is sufficient to produce about 190 KW of electrical output power. The expansion decreases the temperature and pressure of the vapor stream. Theresultant vapor stream 40 then enters acondenser 34 where it is cooled to generate aliquid stream 36 by transferring residual heat to the LT ORC 18 working fluid. Thisliquid stream 36 re-enters apump 42 to generate the high-pressureHT ORC loop 16 working fluid, and the cycle repeats. - Moving now to the engine/turbine
cooling fluid loop 14, the engine/turbine 20 heats a known cooling fluid such as water to a high temperature (e.g. 90° C.) that is subsequently received by apre-heater unit 44 that re-cools the engine/turbine cooling fluid by transferring at least some of its heat to the LTORC loop 18 workingfluid 46 passing through the pre-heater 44. The heated workingfluid 48 enters theevaporator 34 where it is further heated viaresultant vapor stream 40 to generate asaturated vapor stream 50 that may have a temperature for example, of about 90° C. according to one embodiment. Common heat sources for organic Rankine cycles are exhaust gases from combustion systems (power plants or industrial processes), hot liquid or gaseous streams from industrial processes or renewable thermal sources such as geothermal or solar thermal, as stated herein. - The resultant
LT ORC loop 18saturated vapor stream 50 expands through a low temperature expander (turbine) 52 that forms part of theLT ORC loop 18 to generate output power. In one embodiment, this expansion is isentropic and is sufficient to produce about 183 KW of electrical output power. The expansion decreases the temperature and pressure of the vapor stream. Theresultant vapor stream 54 then enters a condenser 56 (e.g. air blown finned tubes) where it is re-cooled to generate a saturatedliquid stream 58. This saturatedliquid stream 58 re-enters apump 60 to generate the high-pressureLT ORC loop 18 working fluid, and the cycle repeats. - In summary explanation, techniques for using the thermal mass of an ORC, the working fluid, the oil loop, the water loop and all components, to provide additional transient power to an electrical grid according to particular embodiments have been described herein. The embodiments described herein provide for improved ORC operation strategies in response to varying temperatures and pressures to enable the production of transient power. More power can be produced by, e.g. further cooling down heat transfer fluids for a limited period of time. Thus, when less power is demanded from the grid, the ORC can follow the demand and help to stabilize the grid. Transient power in the range of up to a few minutes can be produced when using all the flexibility of the ORC. According to one embodiment, the thermal oil loop provides about two minutes of power to drive the ORC at full power.
-
FIG. 2 illustrates an organic Rankinecycle plant 70 according to another embodiment. ORCplant 70 operates in similar fashion to ORCplant 10 described herein with reference toFIG. 1 . ORCplant 70 however, also comprises a thermaloil storage tank 72 and an enginecoolant storage tank 74. Other embodiments may, for example, comprise only one or more thermaloil storage tanks 72 or only one or more enginecoolant storage tanks 74. Thermaloil storage tank 72 provides additional thermal storage capacity for thermal oil that is heated viaheat exchanger 24 that forms part of thethermal oil loop 12. Enginecoolant storage tank 74 provides additional thermal storage capacity for engine coolant that is heated via pre-heater 44 that forms part of theengine cooling loop 14. Thermaloil storage tank 72 and enginecoolant storage tank 74 provide for extended transient operation of the corresponding ORC plant by providing increased energy storage capability. This increased energy storage capability allows the ORC plant to respond to increased power grid loading in a fashion similar to that provided via peak load power plants. - Harvesting the incentives for peak power can be more easily achieved using the principles described herein by increasing the size and capacity of one or
more ORC loops turbines FIG. 3 . The additional resources that may include one or more thermaloil storage tanks 72, one or more enginecoolant storage tanks 74, one or moreoversized ORC loops additional expanders several engines 20 are connected toseveral ORCs - The embodiments described herein advantageously provide backup power capability in the case of a grid loss event. The ORCs can immediately provide power for systems during the time periods when engines need to start-up. Such time periods can be, for example, up to about ten minutes for large Jenbacher engines. The thermal energy stored from previous engine operations or from other industrial heat sources can provide the requisite backup power capability using the principles described herein.
- The embodiments described herein are particularly useful for maintaining operation of an ORC plant, even during short periods of time while the heat source, e.g. internal combustion engine, gas turbine, and the like, is already turned off. The embodiments are also useful to provide additional thermal peak power from a thermo oil loop if required by the ORC plant operation. The embodiments described herein are further particularly useful in island applications, to supply auxiliary power if the power plant is off. Embodiments described herein are capable of providing short time increases and/or decreases of output power if demanded from the grid side when operated according to the principles described herein. Further, the foregoing embodiments can compensate for power fluctuations due to day/night ambient temperature fluctuations.
- While the invention has been described in terms of various specific embodiments, those skilled in the art will recognize that the invention can be practiced with modification within the spirit and scope of the claims.
Claims (27)
1. An organic Rankine cycle (ORC) plant comprising:
an internal combustion engine or gas turbine (engine/turbine) cooling fluid loop configured to transfer engine/turbine cooling fluid heat to a low temperature (LT) ORC loop working fluid, the engine/turbine cooling loop and the LT ORC loop together configured to generate transient power via at least one LT expander; and
a thermal oil loop configured to transfer heat generated via the engine/turbine to a high temperature (HT) ORC loop working fluid, the thermal oil loop and the HT ORC loop together configured to generate transient power via at least one HT expander.
2. The ORC plant according to claim 1 , wherein the thermal oil loop comprises a heat exchanger configured to receive an engine/turbine exhaust gas and transfer heat from the engine/turbine exhaust gas to the thermal oil.
3. The ORC plant according to claim 2 , wherein the thermal oil loop further comprises an evaporator configured to receive the heated thermal oil and transfer heat to the HT ORC loop working fluid to generate a HT ORC loop saturated vapor stream.
4. The ORC plant according to claim 3 , wherein the HT ORC loop comprises a HT expander configured to receive the HT ORC loop saturated vapor stream and generate transient output power there from as the temperature and pressure of the HT ORC loop saturated vapor stream exiting the HT expander is reduced.
5. The ORC plant according to claim 4 , wherein the HT ORC loop further comprises a condenser configured to receive the reduced pressure and reduced temperature HT ORC loop vapor stream exiting the HT expander and re-generate the HT ORC loop working fluid there from.
6. The ORC plant according to claim 1 , wherein the engine/turbine cooling fluid loop comprises a pre-heater configured to receive engine/turbine cooling fluid heated via the engine/turbine and transfer heat from the engine/turbine cooling fluid to the LT ORC loop working fluid.
7. The ORC plant according to claim 6 , wherein the LT ORC loop comprises an evaporator configured to receive the heated cooling fluid from the pre-heater and transfer heat to the LT ORC loop working fluid to generate a LT ORC loop saturated vapor stream.
8. The ORC plant according to claim 7 , wherein the LT ORC loop further comprises a LT expander configured to receive the LT ORC loop saturated vapor stream and generate transient output power there from as the temperature and pressure of the LT ORC loop saturated vapor stream exiting the LT expander is reduced.
9. The ORC plant according to claim 8 , wherein the LT ORC loop further comprises a condenser configured to receive the reduced pressure and reduced temperature LT ORC loop vapor stream exiting the LT expander and re-generate the LT ORC loop working fluid there from.
10. The ORC plant according to claim 9 , wherein the LT ORC loop condenser comprises a plurality of air blown finned tubes.
11. The ORC plant according to claim 1 , further comprising one or more storage facilities selected from one or more thermal oil storage tanks configured to receive and store heated thermal oil, one or more cooling fluid storage tanks configured to receive and store heated cooling fluid, and combinations thereof, such that sufficient thermal energy is stored to provide for corresponding ORC loop extended transient operation to supply additional power to a power grid during periods of increased power grid loading or power grid loss events.
12. The ORC plant according to claim 11 , wherein at least one ORC loop comprises a plurality of expanders configured to generate transient output power to the power grid there from in response to the stored thermal energy.
13. An organic Rankine cycle (ORC) plant comprising an internal combustion engine or gas turbine (engine/turbine) cooling fluid loop configured to transfer engine/turbine cooling fluid heat from an engine/turbine to a low temperature (LT) ORC loop working fluid, the engine/turbine cooling loop and the LT ORC loop together configured to generate transient power via a LT expander.
14. The ORC plant according to claim 13 , wherein the engine/turbine cooling fluid loop comprises a pre-heater configured to receive engine/turbine cooling fluid heated via the engine/turbine and transfer heat from the engine/turbine cooling fluid to the LT ORC loop working fluid.
15. The ORC plant according to claim 14 , wherein the LT ORC loop comprises an evaporator configured to receive the heated cooling fluid from the pre-heater and transfer heat to the LT ORC loop working fluid to generate a LT ORC loop saturated vapor stream.
16. The ORC plant according to claim 15 , wherein the LT ORC loop further comprises at least one LT expander configured to receive the LT ORC loop saturated vapor stream and generate transient output power there from as the temperature and pressure of the LT ORC loop saturated vapor stream exiting the LT expander is reduced.
17. The ORC plant according to claim 16 , wherein the LT ORC loop further comprises a condenser configured to receive the reduced pressure and reduced temperature LT ORC loop vapor stream exiting the LT expander and re-generate the LT ORC loop working fluid there from.
18. The ORC plant according to claim 17 , wherein the LT ORC loop condenser comprises a plurality of air blown finned tubes.
19. The ORC plant according to claim 13 , further comprising one or more cooling fluid storage tanks configured to receive and store heated cooling fluid, such that sufficient thermal energy is stored to provide for corresponding ORC loop extended transient operation to supply additional power to a power grid during periods of increased power grid loading or power grid loss events.
20. The ORC plant according to claim 19 , wherein the ORC loop comprises a plurality of expanders configured to generate transient output power to the power grid there from in response to the stored thermal energy.
21. An organic Rankine cycle (ORC) plant comprising a thermal oil loop configured to transfer heat from an internal combustion engine or gas turbine (engine/turbine) to a high temperature (HT) ORC loop working fluid, the thermal oil loop and the HT ORC loop together configured to generate transient power via at least one HT expander.
22. The ORC plant according to claim 21 , wherein the thermal oil loop comprises a heat exchanger configured to receive an engine/turbine exhaust gas and transfer heat from the engine/turbine exhaust gas to the thermal oil.
23. The ORC plant according to claim 22 , wherein the thermal oil loop further comprises an evaporator configured to receive the heated thermal oil and transfer heat to the HT ORC loop working fluid to generate a HT ORC loop saturated vapor stream.
24. The ORC plant according to claim 23 , wherein the HT ORC loop comprises at least one HT expander configured to receive the HT ORC loop saturated vapor stream and generate transient output power there from as the temperature and pressure of the HT ORC loop saturated vapor stream exiting the HT expander is reduced.
25. The ORC plant according to claim 24 , wherein the HT ORC loop further comprises a condenser configured to receive the reduced pressure and reduced temperature HT ORC loop vapor stream exiting at least one HT expander and re-generate the HT ORC loop working fluid there from.
26. The ORC plant according to claim 21 , further comprising one or more thermal oil storage tanks configured to receive and store heated thermal oil, such that sufficient thermal energy is stored to provide for corresponding ORC loop extended transient operation to supply additional power to a power grid during periods of increased power grid loading or power grid loss events.
27. The ORC plant according to claim 26 , wherein the ORC loop comprises a plurality of expanders configured to generate transient output power to the power grid there from in response to the stored thermal energy.
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US12/827,510 US20120000201A1 (en) | 2010-06-30 | 2010-06-30 | System and method for generating and storing transient integrated organic rankine cycle energy |
EP11727078.5A EP2588719A2 (en) | 2010-06-30 | 2011-06-09 | System and method for generating and storing transient integrated organic rankine cycle energy |
PCT/US2011/039692 WO2012005859A2 (en) | 2010-06-30 | 2011-06-09 | System and method for generating and storing transient integrated organic rankine cycle energy |
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US12/827,510 US20120000201A1 (en) | 2010-06-30 | 2010-06-30 | System and method for generating and storing transient integrated organic rankine cycle energy |
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TWI469166B (en) * | 2012-12-25 | 2015-01-11 | Compal Electronics Inc | Bottom structure |
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WO2014072104A3 (en) * | 2012-11-06 | 2015-02-26 | Siemens Aktiengesellschaft | Energy conversion arrangement, thermodynamic system and method for increasing the efficiency of an integrated orc process |
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WO2017065683A1 (en) | 2015-10-16 | 2017-04-20 | Climeon Ab | Methods to store and recover electrical energy |
US20190010893A1 (en) * | 2017-07-05 | 2019-01-10 | Cummins Inc. | Systems and methods for waste heat recovery for internal combustion engines |
US11193395B2 (en) * | 2016-06-27 | 2021-12-07 | Fives Stein | Method and facility for recovering thermal energy on a furnace with tubular side members and for converting same into electricity by means of a turbine producing the electricity by implementing a rankine cycle |
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WO2012005859A3 (en) | 2014-03-13 |
EP2588719A2 (en) | 2013-05-08 |
WO2012005859A2 (en) | 2012-01-12 |
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