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Acoustic field characteristics and performance analysis of a looped travelling-wave thermoacoustic refrigerator

机译:环形行波热声制冷机的声场特性及性能分析

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This paper focuses on a looped travelling-wave thermoacoustic refrigerator powered by thermal energy. Based on a simplified model for the regenerator, key issues for a highly efficient thermoacoustic conversion, including both thermal-to-acoustic and heat-pumping processes, are summarized. A looped travelling-wave thermoacoustic refrigerator with one engine stage and one refrigerator stage is proposed, with emphasis on high normalized acoustic impedance, sufficient volumetric velocity and appropriate phase relation close to travelling wave in the regenerators of both engine and refrigerator. Simulation results indicate that for the ambient temperature of 30 degrees C, the looped travelling-wave thermoacoustic refrigerator can be powered by the heat at 210-250 degrees C to achieve the refrigeration at -3 degrees C with the overall coefficient of performance above 0.4 and the relative Carnot coefficient of performance over 13%. The characteristics of the acoustic field inside the loop configuration are analyzed in detail to reveal the operation mechanism of the looped travelling-wave thermoacoustic refrigerator. Additional analyses are conducted on the impact of the cooling and the heating temperatures, which are of great concern to the refrigeration applications and the utilization of low-grade thermal energy. (C) 2016 Elsevier Ltd. All rights reserved.
机译:本文重点研究由热能驱动的环形行波热声制冷机。基于再生器的简化模型,总结了高效热声转换的关键问题,包括热声转换和热泵过程。提出了一种具有一个发动机级和一个制冷机级的环形行波热声制冷机,其重点是在发动机和制冷机的蓄热器中具有高归一化的声阻抗,足够的体积速度和接近行波的适当相位关系。仿真结果表明,在环境温度为30摄氏度的情况下,可以通过210-250摄氏度的热量为环形行波热声制冷机提供动力,从而在-3摄氏度下实现制冷,整体性能系数高于0.4,并且相对卡诺性能系数超过13%。详细分析了回路结构内部的声场特性,以揭示回路行波热声制冷机的运行机理。对冷却和加热温度的影响进行了额外的分析,这对于制冷应用和低级热能的利用非常重要。 (C)2016 Elsevier Ltd.保留所有权利。

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