During the past two decades the thermoacoustic refrigeration and prime mover cycles gained importance in a variety of refrigeration applications. Acoustic work, sound, can be used to generate temperature differences that allow the transport of heat from a low temperature reservoir to an ambient at higher temperature, thus forming a thermoacoustic refrigeration system. The thermoacoustic energy pumping cycle can also be reversed: temperature difference imposed along the stack plates can lead to sound generation. In this situation the thermoacoustic system operates as a prime mover. Sound generated by means of this thermoacoustic energy conversion process can be utilized to drive different types of refrigeration devices that require oscillatory flow for their operation, such as thermoacoustic refrigerators, pulse tubes and Stirling engines. In order for a thermoacoustic refrigeration or prime mover system as well as a thermoacoustic prime mover driving a non-thermoacoustic refrigeration system to be competitive on the current market, it has to be optimized in order to improve its overall performance. Optimization can involve improving the performance of the entire system as well as its components. The paper addresses some of the thermodynamic and heat transfer issues relevant in improving the performance of the thermoacoustic system, such as optimization for maximum COP, maximum cooling load and the role of the heat exchangers. Results obtained using the two optimization criteria are contrasted in the paper to illustrate the complexity of the optimization process.
机构:
Wuhan Inst Technol, Sch Opt Informat & Energy Engn, Wuhan 430205, Peoples R China
Wuhan Inst Technol, Inst Thermal Sci & Power Engn, Wuhan 430205, Peoples R ChinaWuhan Inst Technol, Sch Opt Informat & Energy Engn, Wuhan 430205, Peoples R China
Qing, E.
Wu, Feng
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Wuhan Inst Technol, Sch Opt Informat & Energy Engn, Wuhan 430205, Peoples R China
Wuhan Inst Technol, Inst Thermal Sci & Power Engn, Wuhan 430205, Peoples R ChinaWuhan Inst Technol, Sch Opt Informat & Energy Engn, Wuhan 430205, Peoples R China
Wu, Feng
Chen, Lin-gen
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Wuhan Inst Technol, Inst Thermal Sci & Power Engn, Wuhan 430205, Peoples R ChinaWuhan Inst Technol, Sch Opt Informat & Energy Engn, Wuhan 430205, Peoples R China
Chen, Lin-gen
Qiu, Yi-nan
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State Key Lab Technol Space Cryogen Propellants, Beijing 100028, Peoples R ChinaWuhan Inst Technol, Sch Opt Informat & Energy Engn, Wuhan 430205, Peoples R China
机构:
Pontificia Univ Catolica Rio de Janeiro, Dept Engn Mech, BR-22453900 Rio De Janeiro, BrazilPontificia Univ Catolica Rio de Janeiro, Dept Engn Mech, BR-22453900 Rio De Janeiro, Brazil
Parise, JAR
Marques, RP
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Pontificia Univ Catolica Rio de Janeiro, Dept Engn Mech, BR-22453900 Rio De Janeiro, BrazilPontificia Univ Catolica Rio de Janeiro, Dept Engn Mech, BR-22453900 Rio De Janeiro, Brazil
机构:
Univ Ulster, Energy Res Ctr, Coleraine BT52 1SA, Londonderry, North IrelandUniv Ulster, Energy Res Ctr, Coleraine BT52 1SA, Londonderry, North Ireland
McMullan, JT
INTERNATIONAL JOURNAL OF REFRIGERATION-REVUE INTERNATIONALE DU FROID,
2002,
25
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: 89
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