WO2015075537A2 - Cascaded power plant using low and medium temperature source fluid - Google Patents
Cascaded power plant using low and medium temperature source fluid Download PDFInfo
- Publication number
- WO2015075537A2 WO2015075537A2 PCT/IB2014/002518 IB2014002518W WO2015075537A2 WO 2015075537 A2 WO2015075537 A2 WO 2015075537A2 IB 2014002518 W IB2014002518 W IB 2014002518W WO 2015075537 A2 WO2015075537 A2 WO 2015075537A2
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- WO
- WIPO (PCT)
- Prior art keywords
- power plant
- fluid
- vaporizer
- source fluid
- module
- Prior art date
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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
- 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
Definitions
- the present invention relates to the field of power plants. More particularly, the invention relates to a cascaded closed Rankine cycle power plant.
- Source fluids of the type described are those fluids with a temperature less than about 177°C (350°F), such as geothermal fluids obtained from many production wells, and industrial liquids produced by various industrial processes.
- the East Mesa Development Project located in the Imperial Valley of Southern California near Holtville has been producing about 4 million pounds per hour of geothermal fluid at about 162"C (324° F).
- geothermal fluid is an example of source fluid of the type described.
- Electricity is generally produced from source fluids of the type described using a closed Rankine cycle heat engine whose operating fluid is an organic fluid (e.g., Freon), such system being termed a power plant of the type described.
- a source fluid of the type described is applied to a vaporizer of a power plant of the type described containing liquid organic fluid whereby the latter is converted into a vapor.
- the vapor is expanded in a turbogenerator that converts some of the heat in the vapor to work and produces heat depleted organic vapor that is condensed in a condenser.
- the condensed organic fluid is returned to the vaporizer, and the cycle is repeated.
- the condenser rejects the remaining heat in the heat depleted vapor into ambient air, if an air-cooled condenser is involved, or into cooling water, if a water-cooled condenser is used.
- the vaporizer is operated at a pressure that produces saturated or only slightly superheated vapor because the pressures involved are relatively low and the design of the heat exchanger that constitutes the vaporizer, the piping for conveying the vapor, and the turbine, are simplified.
- the temperature drop of the source fluid across the entire heat exchanger system of the power plant, and the evaporization temperature in the vaporizer must be optimized.
- Prior art cascaded power plants utilizes a plurality of closed Rankine cycle power plant modules each having an associated heat exchanger, the source fluid being serially applied to the heat exchangers of each module. Whatever system is used, maximizing the net power produced by the system is of paramount importance.
- One technique for increasing the power is to extract more heat from the source fluid by increasing its temperature drop. With either a single stage or cascaded system, however, increasing the amount of heat extracted from the source fluid by increasing the temperature drop of the source fluid across the heat exchanger system has the effect of decreasing efficiency of the power plant because the mean temperature of the source fluid is reduced. This results in a reduction of the evapovization temperature of the operating fluid in the heat exchanger, thus reducing the Carnot efficiency of the power plant.
- a prior art power plant is operated by serially applying the source fluid to the vaporizers of the modules for producing heat depleted source fluid.
- a preheater is provided for each vaporizer, and the heat depleted source fluid is applied to all of the preheaters in parallel.
- the present invention provides a cascaded closed Rankine cycle power plant using low and medium temperature source fluid which advantageously can produce an increased power level relative to that produced by prior art power plants.
- the present invention provides a method for operating a plurality of independent, closed cycle power plant modules each having a vaporizer comprising the steps of
- the source fluid is geothermal fluid.
- the source fluid is fluid generated from an industrial process.
- each of the power plant modules is operated at different temperatures.
- each of the power plant modules is operated at different pressures.
- the motive fluid for the power plant modules is organic fluid.
- each module is based on a Rankine cycle.
- the present invention is also directed to a power plant of the type having a plurality of independent, closed cycle power plant modules each of which comprising a vaporizer to which a medium or low temperature source fluid ia serially applied for producing heat depleted fluid, and a primary preheater for each of said vaporizers, each of said primary preheaters adapted to preheat motive fluid condensate by means of said heat depleted fluid which is supplied to all of said preheaters in parallel, the improvement, comprising a secondary preheater to which said source Quid is serially applied from a first vaporizer and from which said source fluid is supplied to a terminal vaporizer, said secondary preheater adapted to preheat motive fluid condensate exiting from a first primary preheater before being introduced to a corresponding first vaporizer.
- Each module advantageously comprises a vaporizer responsive to the source fluid for converting the motive fluid condensate to vapor; a turbogenerator responsive to motive fluid vapor produced by said vaporizer for generating power and producing expanded motive fluid vapor; and a condenser for condensing said expanded motive fluid and producing liquid motive fluid condensate that is supplied to the primary preheater associated with said vaporizer.
- the condenser may be water cooled or air cooled.
- Fig. 1 is a block diagram of a cascaded power plant, according to one embodiment of the present invention.
- FIG. 1A is a block diagram of a cascaded power plant, according to another embodiment of the present invention.
- - Fig. 2 shows an example of temperature-heat diagrams for the power plant modules
- FIG. 3 is a block diagram of a cascaded power plant, according to the embodiment of the present invention described with reference to Fig. 3. Note that similar reference numerals refer to similar components.
- the present invention is an improved cascaded power plant using low and medium temperature source fluid (hereinafter the "source fluid").
- One prior art power plant is operated by serially applying the source fluid to the vaporizers of the modules for producing heat depleted source fluid.
- a preheater is provided for each vaporizer, and the heat depleted source fluid is applied to all of the preheaters in parallel.
- Such power plant systems are described in US 4,578,953, the disclosure of which is incorporated by reference.
- US 4,700,543 discloses a similar cascaded power plant haying a plurality of modules each of which being arranged in a plurality of levels. The disclosure of US 4,700,543 is also incorporated by reference.
- an additional preheater is applied to one of the vaporizers. The temperature of the corresponding vaporized organic motive fluid is therefore increased, enabling more vapors to be extracted and to increase the power output of the power plant by the order of about 1-2%.
- US 5,531,073 discloses a similar cascaded power plant having a plurality of modules each of which being arranged in a plurality of levels. The disclosure of US 5,531,073 is also incorporated by reference.
- Fig. 1 illustrates a cascaded power plant generally designated as 10, according to one embodiment of the present invention.
- Power plant 10 comprises a plurality of independent closed, Rankine cycle organic fluid power plant modules e.g. module 5A, module 5B and module 5C. Three such power plant modules are shown; but the invention is applicable to two or more independent power plant modules. Each of these modules is similar and as a consequence, only module 5C is described in detail.
- Module 5C has a piping system 3C indicated by a thick line, through which the organic fluid circulates. Heated organic liquid is delivered to vaporizer 13C and is vaporized by means of heat from the source fluid introduced from inlet I and flowing through source fluid piping system 11. The organic liquid contained within vaporizer 13C is vaporized producing essentially saturated or slightly superheated vapor which is applied to turbine 16C of turbogenerator 15C. The vapor expands in turbine 16C, and work is produced so that electric generator 17C driven by turbine 16C produces electric power. The vapor exhausted from turbine 16C is applied to condenser 18C wherein the vapor is condensed into liquid by the application to the condenser of cooling water that flows through line 9C. Alternatively, an air cooled condenser can be used.
- condensate produced by condenser 18C is supplied via line 3C into preheater 19C that may be a physical part of, or separate from vaporizer 13C.
- Heat depleted source fluid obtained from the outlet from vaporizer 13C, is applied to preheater 19C, to heat the organic fluid condensate. If the source fluid is geothermal, the cooled source fluid that exits preheater 19C may be supplied to a rejection well; or, if the source fluid is an industrial chemical, the cooled fluid may be transferred back to the process.
- the organic fluid that is heated in pre-heater 19C by the heat depleted source fluid is delivered to vaporizer 13C.
- the source fluid After being injected into piping system 11 at inlet I, the source fluid is first delivered to vaporizer 13 A of module 5A.
- the source fluid that exits vaporizer 13A is delivered to vaporizer 13B of module 5B, and the source fluid that exits from vaporizer 13B is applied to intermediate preheater 19A1 of module 5A.
- preheater 19A1 can be portion of vaporizer 13A where it can operate as a preheater zone.
- the source fluid that exits intermediate preheater 19A1 is delivered to vaporizer 13C of module 5C.
- the source fluid that exits from vaporizer 13C is termed heat depleted source fluid because of the heat extracted from each of vaporizers 13A, 13B and 13C as well as preheater 19A1.
- This heat depleted fluid is applied to each of the preheaters 19A2, 19B and 19C, in parallel. That is to say, the present invention provides for sez'ially applying a source fluid from inlet I to vaporizer 13A, vaporizer 13B, intermediate preheater 19A1, and vaporizer 13C and for applying heat depleted source fluid to each preheater 19A2, 19B, and 19C in parallel.
- the source fluid that exits from each of the preheaters 19A2, 19B, and 19C can be conveyed, as shown, to a rejection well if the source fluid is geothermal.
- the motive fluid condensate produced by condenser 18A is delivered to fu-st stage preheater 19A2 via line 3A, additionally heated by intermediate preheater 19A1 and then vaporized by vaporizer 13A and the motive fluid vapor produced is supplied to vapor turbine 16A for producing power using electric generator 17A run by vapor turbine 16A.
- a recuperator can be used for utilizing heat present in the organic vapor exiting vapor turbine 16A to heat motive fluid condensate produced by condenser 18A before it is delivered to first stage preheater 19A2.
- an electric generator can be used for producing electric power from vapor turbines 16A and 16B.
- a recuperator can also be used in power plant module 5B so that organic vapor exiting vapor turbine 16B heats motive fluid condensate produced by condenser 18B before it is delivered to preheater 19B. In such a case, less heat can be extracted from the heat depleted heat source fluid. This can be advantageous particularly which geothermal fluid such as liquid or brine is used as the heat source fluid since, under such a situation, a further power plant module can be used to utilize heat still present therein.
- Figs. 2A, 2B and 2C illustrate an example of a typical temperature- heat diagram for the three power plant modules 5A-C shown in Fig. 1. From these Figures it can be seen that due to the additional pre-heating stage or pre-heater used in power plant module 5A, a higher boiling or vaporizing temperature can be achieved. As a consequence, a higher overall power plant efficiency level can be achieved in power plant module 5A.
- the secondary preheater of the first power plant module such that the medium or low temperature source fluid exiting the vaporizer in the first power plant module be supplied to the secondary preheater of the first power plant module prior to supplying it to the vaporizer of the second power plant module (see Fig. lA).
- the heat transfer from the medium or low temperature source fluid can be optimized.
- steam e.g. geothermal steam, can be used in the secondary preheater of the first power plant module to competently increase the amount of heat transferred to the motive fluid in the secondary preheater of the first power plant module.
- heat depleted medium or low temperature source fluid exiting the vaporizer in the second power plant module can be advantangeous supplied in parallel to the primary preheaters in the first power plant and second module.
- either water cooled or air cooled condensers can be used.
- two single pass condensers connected in series can be used in each of the first and second power plant modules (see Fig. 3) to facilitate and optimize operation of the power plant modules at relatively low
- temperatures of the medium or low temperature source fluid e.g. about 260°F
- an organic motive fluid such as butane, e.g. n-butane, iso-butane etc.
- air cooled condensers are referred to. In such two single pass condensers connected in series, the use of drainage of the motive fluid condensate between the first pass and the second pass shown
- each power plant module has a separate electric generator, advantageously, both turbines ⁇ and T2' respectively can run a joint electric generator which can be interposed between the turbines.
- recuperator could be used in the first power plant module described with reference to Fig. 3.
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Priority Applications (1)
Application Number | Priority Date | Filing Date | Title |
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MX2016006210A MX367965B (en) | 2013-11-21 | 2014-11-20 | Cascaded power plant using low and medium temperature source fluid. |
Applications Claiming Priority (2)
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US14/086,655 US9341086B2 (en) | 2011-07-25 | 2013-11-21 | Cascaded power plant using low and medium temperature source fluid |
US14/086,655 | 2013-11-21 |
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WO2015075537A2 true WO2015075537A2 (en) | 2015-05-28 |
WO2015075537A3 WO2015075537A3 (en) | 2015-09-11 |
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PCT/IB2014/002518 WO2015075537A2 (en) | 2013-11-21 | 2014-11-20 | Cascaded power plant using low and medium temperature source fluid |
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WO (1) | WO2015075537A2 (en) |
Cited By (1)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
WO2020023062A1 (en) * | 2018-07-27 | 2020-01-30 | Cleaver-Brooks, Inc. | Modular heat recovery steam generator system for rapid installation |
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Publication number | Priority date | Publication date | Assignee | Title |
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US1780781A (en) * | 1926-04-28 | 1930-11-04 | Elliott Co | Condenser |
US4700543A (en) * | 1984-07-16 | 1987-10-20 | Ormat Turbines (1965) Ltd. | Cascaded power plant using low and medium temperature source fluid |
US7320221B2 (en) * | 2004-08-04 | 2008-01-22 | Oramt Technologies Inc. | Method and apparatus for using geothermal energy for the production of power |
US8667799B2 (en) * | 2011-07-25 | 2014-03-11 | Ormat Technologies Inc. | Cascaded power plant using low and medium temperature source fluid |
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2014
- 2014-11-20 MX MX2016006210A patent/MX367965B/en active IP Right Grant
- 2014-11-20 WO PCT/IB2014/002518 patent/WO2015075537A2/en active Application Filing
Cited By (2)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
WO2020023062A1 (en) * | 2018-07-27 | 2020-01-30 | Cleaver-Brooks, Inc. | Modular heat recovery steam generator system for rapid installation |
US11209157B2 (en) | 2018-07-27 | 2021-12-28 | The Clever-Brooks Company, Inc. | Modular heat recovery steam generator system for rapid installation |
Also Published As
Publication number | Publication date |
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MX367965B (en) | 2019-09-11 |
WO2015075537A3 (en) | 2015-09-11 |
MX2016006210A (en) | 2016-08-08 |
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