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The Effects of Stack Parameters on the Performances of Acoustic-refrigeration Thermoacoustic Conversion System

机译:堆参数对声学 - 制冷热声转换系统性能的影响

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摘要

In this research, the acoustic-refrigeration thermoacoustic conversion system numerical model was constructed, the combined influences of structural and positional parameters of stack on the temperature difference at two ends (DT) and the coefficient of performance (COP) were analyzed. Besides, the acoustic-refrigeration thermoacoustic conversion test system was built up. Finally, experiments were performed to testify the calculation results of the conversion system. The results showed that within the common ranges of the parameters values, the porosity of stack affected the COP slightly while the temperature difference seriously, the temperature difference at the two ends of stack increased with the increase of the porosity of stack; for stacks which have the same porosity and gaps between each parallel plate, two values for the center position of stack were exist of which one could make the temperature difference get to the best value, the other one made the COP achieve the maximum value; when the porosity and the center position of stack remained constant, the temperature difference increased first and decreased afterwards with the increase of the gaps height between each parallel plate. In the selected model, the temperature difference at the ends of stack got an ideal value when 2y_0=0.45 mm (the gaps height between each parallel plate was nearly about 2.4 times than thermal penetration depth). The results provided the theoretical basis and experimental evidences for improving the performance of acoustic-refrigeration thermoacoustic conversion system.
机译:在本研究中,构建了声学制冷热声转换系统数值模型,分析了堆叠结构和位置参数对两端温差(DT)和性能系数(COP)的综合影响。此外,建立了声学制冷热声转换测试系统。最后,进行实验以证明转换系统的计算结果。结果表明,在参数值的常见范围内,堆叠的孔隙率略微影响警察,同时温差严重,堆叠两端的温差随着叠层的孔隙率的增加而增加;对于具有相同孔隙率和每个平行板之间的间隙的堆叠,存在堆叠中心位置的两个值,其中一个可以使温差得到最佳值,另一个使COP达到最大值;当堆叠的孔隙率和中心位置保持恒定时,在每个平行板之间的间隙高度的增加,温度差首先增加并随后减小。在所选模型中,当2Y_0 = 0.45mm(每个平行板之间的间隙高度比热穿透深度接近约2.4次)时,堆叠末端的温差得到了理想值。结果为改善声学 - 制冷热声转换系统的性能提供了理论依据和实验证据。

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