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    Thermodynamic Cycles for a Small Particle Heat Exchange Receiver Used in Concentrating Solar Power Plants

    Source: Journal of Solar Energy Engineering:;2011:;volume( 133 ):;issue: 003::page 31014
    Author:
    Kyle Kitzmiller
    ,
    Fletcher Miller
    DOI: 10.1115/1.4004270
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Gas-cooled solar receivers for concentrating solar power plants are capable of providing high temperature, pressurized gas for electrical power generation via a Brayton cycle. This can be accomplished by expanding hot, pressurized gas directly through a turbine, or through using a heat exchanger to indirectly heat pressurized air. Gas-cooled receivers can be divided into two basic technologies. In tube based solar receivers, thermal energy is transferred to air through convection with the heated tube wall. This limits receiver efficiency since the tube wall needs to be substantially hotter than the gas inside due to the relatively poor gas heat transfer coefficient. In volumetric receivers, solar energy is absorbed within a volume, rather than on a surface. The absorption volume can be filled with ceramic foam, wires, or particles to act as the absorbing medium. In a small particle heat exchange receiver, for example, submicron sized particles absorb solar radiation and transfer this energy as heat to a surrounding fluid. This effectively eliminates any thermal resistance, allowing for higher receiver efficiencies. However, mechanical considerations limit the size of volumetric, pressurized gas-cooled receivers.In order to solve this problem, several thermodynamic cycles have been investigated, each of which is motivated by key physical considerations in volumetric receivers. The cyclic efficiencies are determined by a new MATLAB code based on previous Brayton cycle modeling conducted by Sandia National Laboratories. The modeling accounts for pressure drops and temperature losses in various components, and parameters such as the turbine inlet temperature and pressure ratio are easily modified to run parametric cases.The performance of a gas-cooled solar receiver is largely a function of its ability to provide process gas at a consistent temperature or pressure, regardless of variations in solar flux, which can vary due to cloud transients or apparent sun motion throughout the day. Consistent output can be ensured by combusting fuel within the cycle, effectively making a solar/fossil fuel hybrid system. Several schemes for hybridization with natural gas are considered here, including externally fired concepts and combined receiver/combustor units. Because the efficiency of hybridized cycles is a function of the solar thermal input, the part load behavior of the recuperated cycle is examined. However, off-design models are simplistic in this research, as the goal of the work is an introductory evaluation of different potential cycles.
    keyword(s): Temperature , Particulate matter , Combustion chambers , Gas turbines , Solar energy , Turbines , Cycles , Heat , Pressure AND Thermodynamic cycles ,
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      Thermodynamic Cycles for a Small Particle Heat Exchange Receiver Used in Concentrating Solar Power Plants

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    https://yetl.yabesh.ir/yetl1/handle/yetl/147561
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    contributor authorKyle Kitzmiller
    contributor authorFletcher Miller
    date accessioned2017-05-09T00:46:49Z
    date available2017-05-09T00:46:49Z
    date copyrightAugust, 2011
    date issued2011
    identifier issn0199-6231
    identifier otherJSEEDO-28444#031014_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/147561
    description abstractGas-cooled solar receivers for concentrating solar power plants are capable of providing high temperature, pressurized gas for electrical power generation via a Brayton cycle. This can be accomplished by expanding hot, pressurized gas directly through a turbine, or through using a heat exchanger to indirectly heat pressurized air. Gas-cooled receivers can be divided into two basic technologies. In tube based solar receivers, thermal energy is transferred to air through convection with the heated tube wall. This limits receiver efficiency since the tube wall needs to be substantially hotter than the gas inside due to the relatively poor gas heat transfer coefficient. In volumetric receivers, solar energy is absorbed within a volume, rather than on a surface. The absorption volume can be filled with ceramic foam, wires, or particles to act as the absorbing medium. In a small particle heat exchange receiver, for example, submicron sized particles absorb solar radiation and transfer this energy as heat to a surrounding fluid. This effectively eliminates any thermal resistance, allowing for higher receiver efficiencies. However, mechanical considerations limit the size of volumetric, pressurized gas-cooled receivers.In order to solve this problem, several thermodynamic cycles have been investigated, each of which is motivated by key physical considerations in volumetric receivers. The cyclic efficiencies are determined by a new MATLAB code based on previous Brayton cycle modeling conducted by Sandia National Laboratories. The modeling accounts for pressure drops and temperature losses in various components, and parameters such as the turbine inlet temperature and pressure ratio are easily modified to run parametric cases.The performance of a gas-cooled solar receiver is largely a function of its ability to provide process gas at a consistent temperature or pressure, regardless of variations in solar flux, which can vary due to cloud transients or apparent sun motion throughout the day. Consistent output can be ensured by combusting fuel within the cycle, effectively making a solar/fossil fuel hybrid system. Several schemes for hybridization with natural gas are considered here, including externally fired concepts and combined receiver/combustor units. Because the efficiency of hybridized cycles is a function of the solar thermal input, the part load behavior of the recuperated cycle is examined. However, off-design models are simplistic in this research, as the goal of the work is an introductory evaluation of different potential cycles.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleThermodynamic Cycles for a Small Particle Heat Exchange Receiver Used in Concentrating Solar Power Plants
    typeJournal Paper
    journal volume133
    journal issue3
    journal titleJournal of Solar Energy Engineering
    identifier doi10.1115/1.4004270
    journal fristpage31014
    identifier eissn1528-8986
    keywordsTemperature
    keywordsParticulate matter
    keywordsCombustion chambers
    keywordsGas turbines
    keywordsSolar energy
    keywordsTurbines
    keywordsCycles
    keywordsHeat
    keywordsPressure AND Thermodynamic cycles
    treeJournal of Solar Energy Engineering:;2011:;volume( 133 ):;issue: 003
    contenttypeFulltext
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