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    Performance Characteristics of an Operating Supercritical CO2 Brayton Cycle

    Source: Journal of Engineering for Gas Turbines and Power:;2012:;volume( 134 ):;issue: 011::page 111703
    Author:
    Thomas Conboy
    ,
    Robert Fuller
    ,
    Steven Wright
    ,
    James Pasch
    ,
    Darryn Fleming
    ,
    Gary Rochau
    DOI: 10.1115/1.4007199
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Supercritical CO2 (S-CO2 ) power cycles offer the potential for better overall plant economics due to their high power conversion efficiency over a moderate range of heat source temperatures, compact size, and potential use of standard materials in construction. Sandia National Labs (Albuquerque, NM) and the U.S. Department of Energy (DOE-NE) are in the process of constructing and operating a megawatt-scale supercritical CO2 split-flow recompression Brayton cycle with contractor Barber-Nichols Inc. (Arvada, CO). This facility can be counted among the first and only S-CO2 power producing Brayton cycles anywhere in the world. The Sandia-DOE test-loop has recently concluded a phase of construction that has substantially upgraded the facility by installing additional heaters, a second recuperating printed circuit heat exchanger (PCHE), more waste heat removal capability, higher capacity load banks, higher temperature piping, and more capable scavenging pumps to reduce windage within the turbomachinery. With these additions, the loop has greatly increased its potential for electrical power generation, and its ability to reach higher temperatures. To date, the loop has been primarily operated as a simple recuperated Brayton cycle, meaning a single turbine, single compressor, and undivided flow paths. In this configuration, the test facility has begun to realize its upgraded capacity by achieving new records in turbine inlet temperature (650 °F/615 K), shaft speed (52,000 rpm), pressure ratio (1.65), flow rate (2.7 kg/s), and electrical power generated (20 kWe). Operation at higher speeds, flow rates, pressures, and temperatures has allowed a more revealing look at the performance of essential power cycle components in a supercritical CO2 working fluid, including recuperation and waste heat rejection heat exchangers (PCHEs), turbines and compressors, bearings and seals, as well as auxiliary equipment. In this report, performance of these components to date will be detailed, including a discussion of expected operational limits as higher speeds and temperatures are approached.
    keyword(s): Pressure , Flow (Dynamics) , Temperature , Compressors , Bearings , Design , Heat exchangers , Turbines , Brayton cycle , Turbomachinery , Cycles , Fluids AND Heat ,
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      Performance Characteristics of an Operating Supercritical CO2 Brayton Cycle

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    http://yetl.yabesh.ir/yetl1/handle/yetl/148708
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    contributor authorThomas Conboy
    contributor authorRobert Fuller
    contributor authorSteven Wright
    contributor authorJames Pasch
    contributor authorDarryn Fleming
    contributor authorGary Rochau
    date accessioned2017-05-09T00:49:50Z
    date available2017-05-09T00:49:50Z
    date copyrightNovember, 2012
    date issued2012
    identifier issn1528-8919
    identifier otherJETPEZ-926033#111703_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/148708
    description abstractSupercritical CO2 (S-CO2 ) power cycles offer the potential for better overall plant economics due to their high power conversion efficiency over a moderate range of heat source temperatures, compact size, and potential use of standard materials in construction. Sandia National Labs (Albuquerque, NM) and the U.S. Department of Energy (DOE-NE) are in the process of constructing and operating a megawatt-scale supercritical CO2 split-flow recompression Brayton cycle with contractor Barber-Nichols Inc. (Arvada, CO). This facility can be counted among the first and only S-CO2 power producing Brayton cycles anywhere in the world. The Sandia-DOE test-loop has recently concluded a phase of construction that has substantially upgraded the facility by installing additional heaters, a second recuperating printed circuit heat exchanger (PCHE), more waste heat removal capability, higher capacity load banks, higher temperature piping, and more capable scavenging pumps to reduce windage within the turbomachinery. With these additions, the loop has greatly increased its potential for electrical power generation, and its ability to reach higher temperatures. To date, the loop has been primarily operated as a simple recuperated Brayton cycle, meaning a single turbine, single compressor, and undivided flow paths. In this configuration, the test facility has begun to realize its upgraded capacity by achieving new records in turbine inlet temperature (650 °F/615 K), shaft speed (52,000 rpm), pressure ratio (1.65), flow rate (2.7 kg/s), and electrical power generated (20 kWe). Operation at higher speeds, flow rates, pressures, and temperatures has allowed a more revealing look at the performance of essential power cycle components in a supercritical CO2 working fluid, including recuperation and waste heat rejection heat exchangers (PCHEs), turbines and compressors, bearings and seals, as well as auxiliary equipment. In this report, performance of these components to date will be detailed, including a discussion of expected operational limits as higher speeds and temperatures are approached.
    publisherThe American Society of Mechanical Engineers (ASME)
    titlePerformance Characteristics of an Operating Supercritical CO2 Brayton Cycle
    typeJournal Paper
    journal volume134
    journal issue11
    journal titleJournal of Engineering for Gas Turbines and Power
    identifier doi10.1115/1.4007199
    journal fristpage111703
    identifier eissn0742-4795
    keywordsPressure
    keywordsFlow (Dynamics)
    keywordsTemperature
    keywordsCompressors
    keywordsBearings
    keywordsDesign
    keywordsHeat exchangers
    keywordsTurbines
    keywordsBrayton cycle
    keywordsTurbomachinery
    keywordsCycles
    keywordsFluids AND Heat
    treeJournal of Engineering for Gas Turbines and Power:;2012:;volume( 134 ):;issue: 011
    contenttypeFulltext
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