EP3002535B1 - Single and multi-pressure condensation system - Google Patents

Single and multi-pressure condensation system Download PDF

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Publication number
EP3002535B1
EP3002535B1 EP14187017.0A EP14187017A EP3002535B1 EP 3002535 B1 EP3002535 B1 EP 3002535B1 EP 14187017 A EP14187017 A EP 14187017A EP 3002535 B1 EP3002535 B1 EP 3002535B1
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EP
European Patent Office
Prior art keywords
condenser
needle
inlet
extraction line
pressure
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Active
Application number
EP14187017.0A
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German (de)
French (fr)
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EP3002535A1 (en
Inventor
Francisco Blangetti
Lucas Borobia
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General Electric Technology GmbH
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General Electric Technology GmbH
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by General Electric Technology GmbH filed Critical General Electric Technology GmbH
Priority to EP14187017.0A priority Critical patent/EP3002535B1/en
Priority to US14/868,588 priority patent/US20160090996A1/en
Priority to RU2015141425A priority patent/RU2706094C2/en
Priority to CN201510635101.0A priority patent/CN105466233B/en
Publication of EP3002535A1 publication Critical patent/EP3002535A1/en
Application granted granted Critical
Publication of EP3002535B1 publication Critical patent/EP3002535B1/en
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Anticipated expiration legal-status Critical

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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04FPUMPING OF FLUID BY DIRECT CONTACT OF ANOTHER FLUID OR BY USING INERTIA OF FLUID TO BE PUMPED; SIPHONS
    • F04F5/00Jet pumps, i.e. devices in which flow is induced by pressure drop caused by velocity of another fluid flow
    • F04F5/44Component parts, details, or accessories not provided for in, or of interest apart from, groups F04F5/02 - F04F5/42
    • F04F5/46Arrangements of nozzles
    • F04F5/461Adjustable nozzles
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F28HEAT EXCHANGE IN GENERAL
    • F28BSTEAM OR VAPOUR CONDENSERS
    • F28B9/00Auxiliary systems, arrangements, or devices
    • F28B9/10Auxiliary systems, arrangements, or devices for extracting, cooling, and removing non-condensable gases
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04FPUMPING OF FLUID BY DIRECT CONTACT OF ANOTHER FLUID OR BY USING INERTIA OF FLUID TO BE PUMPED; SIPHONS
    • F04F5/00Jet pumps, i.e. devices in which flow is induced by pressure drop caused by velocity of another fluid flow
    • F04F5/14Jet pumps, i.e. devices in which flow is induced by pressure drop caused by velocity of another fluid flow the inducing fluid being elastic fluid
    • F04F5/24Jet pumps, i.e. devices in which flow is induced by pressure drop caused by velocity of another fluid flow the inducing fluid being elastic fluid displacing liquids, e.g. containing solids, or liquids and elastic fluids
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F28HEAT EXCHANGE IN GENERAL
    • F28BSTEAM OR VAPOUR CONDENSERS
    • F28B1/00Condensers in which the steam or vapour is separate from the cooling medium by walls, e.g. surface condenser
    • F28B1/02Condensers in which the steam or vapour is separate from the cooling medium by walls, e.g. surface condenser using water or other liquid as the cooling medium

Definitions

  • the present disclosure relates generally to single pressure and multi-pressure condensation systems for condensing steam exhausted from low pressure steam turbines and more specifically to extraction system for extracting non-condensable gases from such condensing system.
  • a steam condenser In a steam turbine power plant, a steam condenser has a function to condense exhausted steam from a steam turbine and collect condensed water thereof.
  • a steam condenser has a body connected to a steam exhaust port of the steam turbine.
  • the body includes a heat transfer region that comprises an array of heat transfer tubes through which a cooling medium, such as water is directed.
  • the steam is first cooled by the cooling medium flowing through the heat transfer tubes, and then condensed. While being condensed, at the condensing surface of the tubes, the temperature of steam is at its saturation temperature at its corresponding partial pressure of steam.
  • EP 2 010 852 discusses one solution that utilities a plurality of vents lanes to extract gas from various regions of the condenser and direct them to an air cooling zone where non-condensables are discharged with the assistance of a suction pump or ejector connect to the exit of the air cooling zone. While it is advantageous to remove non-condensables, excessive extraction can result in decreased net plant efficiency.
  • DE 199 49 761 A1 discusses another method that involves a manifold with inlets located in strategic locations in the condenser that are joined by a manifold in which an ejector is located. By using pressure differences in the condenser to drive the ejectors, extraction can be designed to consider the different pressure regions of the condenser.
  • DE 199 49 761 A1 discloses a condenser according to the preamble of claim 1.
  • a single- and multi-pressure condensation system is disclosed that can be adapted to compensate for varying non-condensable concentration at different extraction pressures.
  • the disclosure is based on the general idea of adapting a multi-pressure condenser system with an adjustable ejector that is configured to enable the control of relative pressure in different pressure sections of the condenser which may resulting in a local pressure change of 5-10 mbar.
  • One general aspect includes a condenser with a condensing steam flow path.
  • the condenser also includes a plurality of cooling tubes, extending transversely to the steam flow path, for containing and directing a cooling water flow and an extraction system.
  • the extraction system including a first extraction line with a first inlet, a second extraction line, with a second inlet located in a region of the condenser that, in operation, is configured to be at a lower pressure than a region of the first inlet an adjustable ejector.
  • the adjustable ejector includes nozzle having an opening connected to the first extraction line and adapted to so as enable fluid extracted through the first extraction line to be used as a motive fluid for the adjustable ejector.
  • the condenser also includes a suction inlet connected to the second extraction line so as to enable evacuation of the second extraction line by the adjustable ejector.
  • the adjustable ejector can therefore be understood to be a device for pressure reduction and at the same time, as vacuum booster.
  • the condenser further includes a flow means for varying a flow rate of the motive fluid.
  • the proposed solution can be applied to single pressure condensers with large cooling water temperature rise, such as multi-pass condensers, as the problems caused by non-condensables in single pressure condensers is similar to that of multi-pressure condensers.
  • the second inlet of the second extraction lines displaced from the first inlet of the first extraction line in a direction of extension of one of the cooling tubes.
  • the adjustable ejector includes a needle with a first end having a variable diameter in a longitudinal direction extending from the first end.
  • the condenser may also include an actuator that is connected to the needle and adapted to adjustably displace the needle in the nozzle opening such that the variable diameter of the needle varies an area of the nozzle opening thereby varying the flow of the motive fluid.
  • the condenser in which the variable diameter is a portion of the needle that has an increasing diameter in the direction extending away from the first end along at least a partial longitudinal length of the needle.
  • the condenser is a multi-pressure condenser.
  • Fig. 1 shows a condenser 10 with a plurality of cooling tubes 11 that extend transversely to a steam flow path.
  • An extraction duct 12 for extracting non-condensables is located next adjacent the plurality of cooling tubes 11 along the direction of extension of one of the cooling tubes 11 of the plurality of cooling tubes 11. That is, the extraction duct 12 extends in across the condenser 10 which is transverse the steam flow path through the condenser (10).
  • the extraction duct 12 comprises a series of orifices 13 of different sizes, a high pressure extraction line 14, a low pressure extraction line 18 and an adjustable ejector 20.
  • the different sizes of the orifices 13 enable course control of the relative extraction at different points of the condenser 10 that cannot be adjusted based on operating conditions.
  • inlets 15, 19 of the extraction lines 14, 18 are directly connected to different pressure regions of the condenser 10.
  • an inlet 15 of the high pressure extraction line 14 and an inlet 15 of the low pressure extraction line 18 connect different regions of the extraction duct 12 to the adjustable ejector 20.
  • the inlet 15 of the high pressure extraction line 14 and inlet 19 of the low pressure extraction line 18 are connected directly to different pressure regions of the condenser 10.
  • the adjustable ejector 20 is fluidly located between different pressure regions of the condenser 10 so as to enable the adjustable ejector 20 to preferentially extract gas from one regions of the condenser as compared to another region of the condenser 10.
  • the adjustable ejector 20 is an adjustable ejector 20 with a nozzle 26 and suction inlet 24.
  • the adjustable ejector 20 the nozzle 26 is connected to the high pressure extraction line 14 while the suction inlet 24 is connected to the low pressure extraction line 18. In this way, extracted gas from the condenser 10 passing through the high pressure extraction line 14 and then through the nozzle 26 so that the gas can be used as the motive fluid for the adjustable ejector 20 to provide suction in the low pressure extraction line 18.
  • the adjustable ejector 20 is configured as a adjustable ejector 20 by comprising a nozzle 26 having an opening 28 with an opening area and a needle 30 with a first end 31 having a variable diameter in a longitudinal direction extending from the first end 31, as shown in Fig. 3 .
  • the needle 30 is connected to an actuator 34 to enable the needle 30 to be displaced so that a first end 31 of the needle 30 adjustably enters the opening area of the nozzle 26.
  • the diameter of the needle 30 increases in the longitudinal direction away from the first end 31 such that the further the needle 30 is inserted in the nozzle opening 28 the smaller the effective opening area.
  • variable diameter of the needle 30 extends part way along the longitudinal length 32 of the needle 30 so as to vary the opening area of the nozzle 26 thereby enabling the adjustable ejector to operate as an adjustable ejector 20.
  • the nozzle area reduction allows to achieve different steam-mixture speeds at end of the expansion section of the adjustable ejector 20, ensuring that the speed remains below the sound velocity at the given downstream conditions, thus ensuring that the adjustable ejector 20 operates at subcritical conditions.
  • an extraction system is applied to a single pressure single pass condenser 10 with support baffles.
  • a high pressure extraction line 14 and low pressure extraction line 18 are connected at one end to an extraction duct 12 and at another end to an adjustable ejector 20.
  • an extraction system is applied to a single pressure two pass condenser 10.
  • a high pressure extraction line 14 is connected to higher pressure regions of condenser 10 corresponding to the return cooling water flow path having a high cooling water temperature which reduces in lower condensation rates.
  • a low pressure extraction line 18 is connected to lower pressure regions corresponding to the cooling water inlet having a low cooling water temperature and thus higher condensation rates.

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  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Physics & Mathematics (AREA)
  • Fluid Mechanics (AREA)
  • Extraction Or Liquid Replacement (AREA)
  • Jet Pumps And Other Pumps (AREA)
  • Fixed Capacitors And Capacitor Manufacturing Machines (AREA)

Description

    TECHNICAL FIELD
  • The present disclosure relates generally to single pressure and multi-pressure condensation systems for condensing steam exhausted from low pressure steam turbines and more specifically to extraction system for extracting non-condensable gases from such condensing system.
  • BACKGROUND INFORMATION
  • In a steam turbine power plant, a steam condenser has a function to condense exhausted steam from a steam turbine and collect condensed water thereof. In general, a steam condenser has a body connected to a steam exhaust port of the steam turbine. The body includes a heat transfer region that comprises an array of heat transfer tubes through which a cooling medium, such as water is directed.
  • Steam exhausted from the steam turbine flows down into the body of the steam condenser here it contacts the tube array. The steam is first cooled by the cooling medium flowing through the heat transfer tubes, and then condensed. While being condensed, at the condensing surface of the tubes, the temperature of steam is at its saturation temperature at its corresponding partial pressure of steam.
  • The lowering of the partial pressure of steam the lower the saturated temperature, and as a result the lower the temperature driving force between the steam and cooling water. As a result the greater degree of condensation the less efficient the localised condenser performance becomes. Besides the degree of condensation, which is affected by cooling water temperature as it increases along the length of the tube, the amount of non-condensables is an additional factor that may decrease steam partial pressure and therefore is another factor that has a detrimental effect on condenser performance. These non-condensables typically result for unavoidable air leakage, non-condensable gases generated by physicochemical treatments, or radiolytic generated gases in condensers associated with boiling water nuclear reactors, as well as changing condenser controls and thermal load variations. To overcome this problem caused by non-condensable various extraction process have been configured.
  • EP 2 010 852 discusses one solution that utilities a plurality of vents lanes to extract gas from various regions of the condenser and direct them to an air cooling zone where non-condensables are discharged with the assistance of a suction pump or ejector connect to the exit of the air cooling zone. While it is advantageous to remove non-condensables, excessive extraction can result in decreased net plant efficiency.
  • As cooling water flows through the condenser its temperature increases as it gains latent heat from condensing steam. As a result the temperature, driving force is greatest at the cooling water entry end of the condenser and decreases along the length of the cooling tubes. As a result, condensation and thus non-condensable concentrations vary not only in the steam flow direction, but also across the length of the cooling tubes. Particularly where baffles are located along the length of the cooling tubes a further pressure gradient may be created by the differing condensate rates. To adjust the rate of extraction of the non-condensable system based on regional conditions of the condenser, orifice or varying size may be place in inlets of the extraction system.
  • In a multi-pressure condenser, DE 199 49 761 A1 discusses another method that involves a manifold with inlets located in strategic locations in the condenser that are joined by a manifold in which an ejector is located. By using pressure differences in the condenser to drive the ejectors, extraction can be designed to consider the different pressure regions of the condenser. DE 199 49 761 A1 discloses a condenser according to the preamble of claim 1.
  • As steam load, cooling water temperature, and non-condensate concentration in the steam feed to the condenser vary the optimum extraction rate of non-condensables in difference zones of the condenser may also vary. For extractions systems that comprise fixed orifices or ejector sizes, such systems are not easily adaptable and so it may be difficult to optimise extraction across the condenser along the length of the condenser tube bundle. There is therefore a need to provide an easily adjustable system that can vary extraction across the condenser in response to varying condenser operating conditions.
  • SUMMARY
  • A single- and multi-pressure condensation system is disclosed that can be adapted to compensate for varying non-condensable concentration at different extraction pressures.
  • The disclosure attempts to address this problem by means of the subject matter of the independent claims. Advantageous embodiments are given in the dependent claims.
  • The disclosure is based on the general idea of adapting a multi-pressure condenser system with an adjustable ejector that is configured to enable the control of relative pressure in different pressure sections of the condenser which may resulting in a local pressure change of 5-10 mbar.
  • The situation is similar for single pressure condensers with high cooling water temperature rise, particularly those with two or more passes in steam room. The removing of non-condensables with a single evacuation system is in such cases is close to impossible without staggering of suction ducts.
  • One general aspect includes a condenser with a condensing steam flow path. The condenser also includes a plurality of cooling tubes, extending transversely to the steam flow path, for containing and directing a cooling water flow and an extraction system. The extraction system including a first extraction line with a first inlet, a second extraction line, with a second inlet located in a region of the condenser that, in operation, is configured to be at a lower pressure than a region of the first inlet an adjustable ejector. The adjustable ejector includes nozzle having an opening connected to the first extraction line and adapted to so as enable fluid extracted through the first extraction line to be used as a motive fluid for the adjustable ejector. The condenser also includes a suction inlet connected to the second extraction line so as to enable evacuation of the second extraction line by the adjustable ejector. In this way, steam from the high pressure region of the condenser can be used as the motive force for the adjustable ejector. The adjustable ejector can therefore be understood to be a device for pressure reduction and at the same time, as vacuum booster. The condenser further includes a flow means for varying a flow rate of the motive fluid.
  • The proposed solution can be applied to single pressure condensers with large cooling water temperature rise, such as multi-pass condensers, as the problems caused by non-condensables in single pressure condensers is similar to that of multi-pressure condensers.
  • Further aspects may include one or more of the following features. The second inlet of the second extraction lines displaced from the first inlet of the first extraction line in a direction of extension of one of the cooling tubes. The adjustable ejector includes a needle with a first end having a variable diameter in a longitudinal direction extending from the first end. The condenser may also include an actuator that is connected to the needle and adapted to adjustably displace the needle in the nozzle opening such that the variable diameter of the needle varies an area of the nozzle opening thereby varying the flow of the motive fluid. The condenser in which the variable diameter is a portion of the needle that has an increasing diameter in the direction extending away from the first end along at least a partial longitudinal length of the needle. The condenser is a multi-pressure condenser.
  • It is a further object of the invention to overcome or at least ameliorate the disadvantages and shortcomings of the prior art or provide a useful alternative.
  • The accompanying drawings by way of example illustrate exemplary embodiments of the present invention.
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • By way of example, an embodiment of the present disclosure is described more fully hereinafter with reference to the accompanying drawings, in which:
    • Figure 1 is an end view of a condenser with an extraction system
    • Figure 2 is a side view of an extraction system according to an exemplary embodiment of the disclosure;
    • Figure 3 is a sectional view an adjustable ejector of the extraction system of Fig. 2.
    • Figure 4 is a sectional view of a single pressure single pass condenser with an extraction system of Fig. 2; and
    • Figure 5 is a schematic of a single pressure two pass condenser with the extraction system of Fig. 2
    DETAILED DESCRIPTION
  • Exemplary embodiments of the present disclosure are now described with references to the drawings, wherein like reference numerals are used to refer to like elements throughout. In the following description, for purposes of explanation, numerous specific details are set forth to provide a thorough understanding of the disclosure. However, the present disclosure may be practiced without these specific details, and is not limited to the exemplary embodiment disclosed herein.
  • Fig. 1 shows a condenser 10 with a plurality of cooling tubes 11 that extend transversely to a steam flow path. An extraction duct 12 for extracting non-condensables is located next adjacent the plurality of cooling tubes 11 along the direction of extension of one of the cooling tubes 11 of the plurality of cooling tubes 11. That is, the extraction duct 12 extends in across the condenser 10 which is transverse the steam flow path through the condenser (10).
  • In an exemplary embodiment shown in Fig. 2 the extraction duct 12 comprises a series of orifices 13 of different sizes, a high pressure extraction line 14, a low pressure extraction line 18 and an adjustable ejector 20.
  • The different sizes of the orifices 13 enable course control of the relative extraction at different points of the condenser 10 that cannot be adjusted based on operating conditions.
  • In another not shown exemplary embodiment, inlets 15, 19 of the extraction lines 14, 18 are directly connected to different pressure regions of the condenser 10.
  • In an exemplary embodiment shown in Fig. 2 an inlet 15 of the high pressure extraction line 14 and an inlet 15 of the low pressure extraction line 18 connect different regions of the extraction duct 12 to the adjustable ejector 20. In another not shown exemplary embodiment the inlet 15 of the high pressure extraction line 14 and inlet 19 of the low pressure extraction line 18 are connected directly to different pressure regions of the condenser 10. In this way, the adjustable ejector 20 is fluidly located between different pressure regions of the condenser 10 so as to enable the adjustable ejector 20 to preferentially extract gas from one regions of the condenser as compared to another region of the condenser 10.
  • In an exemplary embodiment shown in Fig. 2, the adjustable ejector 20 is an adjustable ejector 20 with a nozzle 26 and suction inlet 24. In order to preferentially reduce the pressure, or at least vary the extraction rate in different regions of the condenser 10, the adjustable ejector 20 the nozzle 26 is connected to the high pressure extraction line 14 while the suction inlet 24 is connected to the low pressure extraction line 18. In this way, extracted gas from the condenser 10 passing through the high pressure extraction line 14 and then through the nozzle 26 so that the gas can be used as the motive fluid for the adjustable ejector 20 to provide suction in the low pressure extraction line 18.
  • In an exemplary embodiment, the adjustable ejector 20 is configured as a adjustable ejector 20 by comprising a nozzle 26 having an opening 28 with an opening area and a needle 30 with a first end 31 having a variable diameter in a longitudinal direction extending from the first end 31, as shown in Fig. 3. The needle 30 is connected to an actuator 34 to enable the needle 30 to be displaced so that a first end 31 of the needle 30 adjustably enters the opening area of the nozzle 26. To enable controllable pressure reduction the diameter of the needle 30 increases in the longitudinal direction away from the first end 31 such that the further the needle 30 is inserted in the nozzle opening 28 the smaller the effective opening area. In an exemplary embodiment shown in Fig. 3 the variable diameter of the needle 30 extends part way along the longitudinal length 32 of the needle 30 so as to vary the opening area of the nozzle 26 thereby enabling the adjustable ejector to operate as an adjustable ejector 20. The nozzle area reduction allows to achieve different steam-mixture speeds at end of the expansion section of the adjustable ejector 20, ensuring that the speed remains below the sound velocity at the given downstream conditions, thus ensuring that the adjustable ejector 20 operates at subcritical conditions.
  • In an exemplary embodiment shown in Fig. 4, an extraction system is applied to a single pressure single pass condenser 10 with support baffles. A high pressure extraction line 14 and low pressure extraction line 18 are connected at one end to an extraction duct 12 and at another end to an adjustable ejector 20.
  • In an exemplary embodiment shown in Fig. 5, an extraction system is applied to a single pressure two pass condenser 10. A high pressure extraction line 14 is connected to higher pressure regions of condenser 10 corresponding to the return cooling water flow path having a high cooling water temperature which reduces in lower condensation rates. A low pressure extraction line 18 is connected to lower pressure regions corresponding to the cooling water inlet having a low cooling water temperature and thus higher condensation rates.
  • REFERENCE NUMBERS
  • 10
    Condenser
    11
    Cooling tubes
    12
    Extraction duct
    13
    Orifice
    14
    High pressure extraction line
    15
    Inlet (high pressure extraction line)
    18
    Low pressure extraction line
    19
    Inlet (low pressure extraction line)
    20
    Adjustable ejector
    24
    Suction inlet
    26
    Nozzle
    28
    Nozzle opening
    30
    Needle
    31
    End
    32
    Longitudinal length
    34
    Actuator

Claims (9)

  1. A condenser (10) with a condensing steam flow path, comprising;
    a plurality of cooling tubes (11), extending transversely to the steam flow path, for containing and directing a cooling water flow; and
    an extraction system comprising:
    a first extraction line (14), with a first inlet (15);
    a second extraction line (18), with a second inlet (19) located in a region of the condenser (10) that, in operation is configured to be at a lower pressure than the first inlet (15);
    an ejector (20) with:
    a nozzle (26), having an opening (28), connected to the first extraction line (14) and adapted to enable fluid extracted through the first extraction line (14) to be used as a motive fluid for the adjustable ejector (20); and
    a suction inlet (24) connected to the second extraction line (18) so as to enable evacuation of the second extraction line (18) by the ejector (20) characterised by the ejector (20) being an adjustable ejector and having a flow means (30) to vary a flow of the motive fluid.
  2. The condenser 10 of claim 1 wherein the second inlet (19) is displaced from the first inlet (15) in a direction of extension of one of the cooling tubes (11).
  3. The condenser (10) of claim 1 or 2 wherein the flow means (30) comprises
    a needle (30) with a first end (31) having a variable diameter in a longitudinal direction extending from the first end (31); and
    an actuator (34), connected to the needle (30), adapted to adjustably displace the needle (30) in the nozzle opening (28) such that the variable diameter of the needle (30) varies an area of the nozzle opening (28) thereby varying the flow of the motive fluid.
  4. The condenser (10) of claim 3 wherein the variable diameter is a portion of the needle (30) that has an increasing diameter extending away from the first end (31) along at least a partial longitudinal length (32) of the needle (30).
  5. The condenser of any one of claims 1 to 4 wherein the condenser (10) is a single-pass condenser (10).
  6. The condenser of any one of claims 1 to 4 wherein the condenser (10) is a multi-pass condenser (10).
  7. The condenser of any one of claims 1 to 6 wherein the condenser (10) is a single-pressure condenser (10).
  8. The condenser of any one of claims 1 to 6 wherein the condenser (10) is a multi-pressure condenser (10).
  9. A steam turbine power plant comprising the condenser of any previous claim.
EP14187017.0A 2014-09-30 2014-09-30 Single and multi-pressure condensation system Active EP3002535B1 (en)

Priority Applications (4)

Application Number Priority Date Filing Date Title
EP14187017.0A EP3002535B1 (en) 2014-09-30 2014-09-30 Single and multi-pressure condensation system
US14/868,588 US20160090996A1 (en) 2014-09-30 2015-09-29 Single and multi-pressure condensation system
RU2015141425A RU2706094C2 (en) 2014-09-30 2015-09-29 Condensation system operating at one and different pressures
CN201510635101.0A CN105466233B (en) 2014-09-30 2015-09-30 Single pressure and multiple pressure power condensed system

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
EP14187017.0A EP3002535B1 (en) 2014-09-30 2014-09-30 Single and multi-pressure condensation system

Publications (2)

Publication Number Publication Date
EP3002535A1 EP3002535A1 (en) 2016-04-06
EP3002535B1 true EP3002535B1 (en) 2018-06-13

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Family Applications (1)

Application Number Title Priority Date Filing Date
EP14187017.0A Active EP3002535B1 (en) 2014-09-30 2014-09-30 Single and multi-pressure condensation system

Country Status (4)

Country Link
US (1) US20160090996A1 (en)
EP (1) EP3002535B1 (en)
CN (1) CN105466233B (en)
RU (1) RU2706094C2 (en)

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Publication number Priority date Publication date Assignee Title
US3441045A (en) * 1966-12-02 1969-04-29 Boeing Co Variable orifice nozzle mixing ejector
US4168030A (en) * 1976-10-22 1979-09-18 Timmerman Robert W Waste heat utilization system
US4524607A (en) * 1982-04-05 1985-06-25 Science Applications International Corporation System and method for locating leaking tubes
RU2099608C1 (en) * 1995-04-20 1997-12-20 Акционерное общество открытого типа "Ленинградский Металлический завод" Supply system of water-jet ejector for suction of steam-and-air mixture from steam turbine condenser
DE19949761B4 (en) * 1999-10-15 2009-04-02 Alstom More pressure condensation plant
JP4913206B2 (en) 2006-03-27 2012-04-11 バラット ヘビー エレクトリカルズ リミテッド Condenser with a two-pipe tube structure
RU2426916C1 (en) * 2009-12-22 2011-08-20 Государственное образовательное учреждение высшего профессионального образования "Северо-Кавказский государственный технический университет" Adjustable ejector
JP5506944B2 (en) * 2010-10-18 2014-05-28 三菱電機株式会社 Refrigeration cycle apparatus and refrigerant circulation method
WO2012092685A1 (en) * 2011-01-04 2012-07-12 Carrier Corporation Ejector
DK2718644T3 (en) * 2011-06-10 2020-11-30 Carrier Corp EJECTOR WITH DRIVING POWER VILLAGE

Non-Patent Citations (1)

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Title
None *

Also Published As

Publication number Publication date
CN105466233B (en) 2019-11-19
EP3002535A1 (en) 2016-04-06
RU2706094C2 (en) 2019-11-13
RU2015141425A (en) 2017-04-04
US20160090996A1 (en) 2016-03-31
RU2015141425A3 (en) 2019-03-18
CN105466233A (en) 2016-04-06

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