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    Dry Cooled Supercritical CO2 Power for Advanced Nuclear Reactors

    Source: Journal of Engineering for Gas Turbines and Power:;2015:;volume( 137 ):;issue: 001::page 12901
    Author:
    Conboy, T. M.
    ,
    Carlson, M. D.
    ,
    Rochau, G. E.
    DOI: 10.1115/1.4028080
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Currently, waste heat rejection from electrical power systems accounts for the largest fraction of water withdrawals from the U.S. fresh water table. Siting of nuclear power plants is limited to areas with access to a large natural supply of fresh or sea water. Due to a rise in energy needs and increased concern over environmental impact, dry air cooling systems are poised to play a large role in the future energy economy. In practice, the implementation of dry aircooled condensing systems at steam plants has proven to be capitalintensive and requires the power cycle to take a significant efficiency penalty. These shortcomings are fundamental to dryair steam condensation, which must occur at a fixed temperature. Closedcycle gas turbines are an alternative to the conventional steam Rankine plant that allows for much improved dry heat rejection compatibility. Recent research into advanced nuclear energy systems has identified the supercritical CO2 (sCO2) Brayton cycle in particular as a viable candidate for many proposed reactor types. The sCO2 Brayton cycle can maintain superior thermal efficiency over a wide range of ambient temperatures, making these power systems ideally suited for dry air cooling, even in warm climates. For a sodium fast reactor (SFR) operating at 550 آ°C, thermal efficiency is calculated to be 43% with a 50 آ°C compressor inlet temperature. This is achieved by raising CO2 compressor inlet pressure in response to rising ambient temperatures. Preliminary design studies have shown that sCO2 power cycle hardware will be compact and therefore wellmatched to nearterm and advanced integral small modular reactor (SMR) designs. These advantages also extend to the cooling plant, where it is estimated that dry cooling towers for an SFRcoupled sCO2 power cycle will be similar in cost and scale to the evaporative cooling tower for a lightwater reactor (LWR). The projected benefits of the sCO2 power cycle coupled to dry air heat rejection may enable the longawaited rise of nextgeneration nuclear energy systems, while redrawing the map for siting of small and large nuclear energy systems.
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      Dry Cooled Supercritical CO2 Power for Advanced Nuclear Reactors

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    https://yetl.yabesh.ir/yetl1/handle/yetl/157851
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    contributor authorConboy, T. M.
    contributor authorCarlson, M. D.
    contributor authorRochau, G. E.
    date accessioned2017-05-09T01:17:28Z
    date available2017-05-09T01:17:28Z
    date issued2015
    identifier issn1528-8919
    identifier othergtp_137_01_012901.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/157851
    description abstractCurrently, waste heat rejection from electrical power systems accounts for the largest fraction of water withdrawals from the U.S. fresh water table. Siting of nuclear power plants is limited to areas with access to a large natural supply of fresh or sea water. Due to a rise in energy needs and increased concern over environmental impact, dry air cooling systems are poised to play a large role in the future energy economy. In practice, the implementation of dry aircooled condensing systems at steam plants has proven to be capitalintensive and requires the power cycle to take a significant efficiency penalty. These shortcomings are fundamental to dryair steam condensation, which must occur at a fixed temperature. Closedcycle gas turbines are an alternative to the conventional steam Rankine plant that allows for much improved dry heat rejection compatibility. Recent research into advanced nuclear energy systems has identified the supercritical CO2 (sCO2) Brayton cycle in particular as a viable candidate for many proposed reactor types. The sCO2 Brayton cycle can maintain superior thermal efficiency over a wide range of ambient temperatures, making these power systems ideally suited for dry air cooling, even in warm climates. For a sodium fast reactor (SFR) operating at 550 آ°C, thermal efficiency is calculated to be 43% with a 50 آ°C compressor inlet temperature. This is achieved by raising CO2 compressor inlet pressure in response to rising ambient temperatures. Preliminary design studies have shown that sCO2 power cycle hardware will be compact and therefore wellmatched to nearterm and advanced integral small modular reactor (SMR) designs. These advantages also extend to the cooling plant, where it is estimated that dry cooling towers for an SFRcoupled sCO2 power cycle will be similar in cost and scale to the evaporative cooling tower for a lightwater reactor (LWR). The projected benefits of the sCO2 power cycle coupled to dry air heat rejection may enable the longawaited rise of nextgeneration nuclear energy systems, while redrawing the map for siting of small and large nuclear energy systems.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleDry Cooled Supercritical CO2 Power for Advanced Nuclear Reactors
    typeJournal Paper
    journal volume137
    journal issue1
    journal titleJournal of Engineering for Gas Turbines and Power
    identifier doi10.1115/1.4028080
    journal fristpage12901
    journal lastpage12901
    identifier eissn0742-4795
    treeJournal of Engineering for Gas Turbines and Power:;2015:;volume( 137 ):;issue: 001
    contenttypeFulltext
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