Combined experimental and numerical study on the performance of thermoacoustic refrigeration system

M. Khan, Tahmid Rakin Siddiqui, M. Rahman
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引用次数: 3

Abstract

Thermoacoustic science focuses on the interaction between sound energy and heat energy and the thermoacoustic refrigeration system uses sound wave to attain a temperature gradient along a porous solid medium (stack). It is an emerging technology to replace conventional refrigeration system with the benefit of having no moving parts. In the present study, the effects of the material, length, and position of the stack inside the resonator tube on cooling effect across the stack are examined. Three different materials-nylon, ABS plastic and wood are used as stack material which yield a cooling effect in the range of 2-5°C across the resonator tube (length of 60 cm) depending upon the stack position at resonant frequency (145 Hz). Three samples of each stack (length of 3, 6, and 9 cm) are placed at a spacing of 10 cm inside the resonator tube. Operating frequency is constant at 145 Hz which is resonant frequency. Highest temperature difference is obtained for ABS plastic stack of 3 cm length at the closed end of the tube at resonant frequency. The maximum cooling load is observed at the closed end of resonator tube, but the coefficient of performance (COP) is found to be maximum at the open end (driver end) of the tube. The performance of the thermoacoustic system is numerically analyzed using DeltaEC software for the same set of operating conditions and is compared with the experimental findings.Thermoacoustic science focuses on the interaction between sound energy and heat energy and the thermoacoustic refrigeration system uses sound wave to attain a temperature gradient along a porous solid medium (stack). It is an emerging technology to replace conventional refrigeration system with the benefit of having no moving parts. In the present study, the effects of the material, length, and position of the stack inside the resonator tube on cooling effect across the stack are examined. Three different materials-nylon, ABS plastic and wood are used as stack material which yield a cooling effect in the range of 2-5°C across the resonator tube (length of 60 cm) depending upon the stack position at resonant frequency (145 Hz). Three samples of each stack (length of 3, 6, and 9 cm) are placed at a spacing of 10 cm inside the resonator tube. Operating frequency is constant at 145 Hz which is resonant frequency. Highest temperature difference is obtained for ABS plastic stack of 3 cm length at the closed end...
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热声制冷系统性能的实验与数值结合研究
热声科学关注的是声能和热能之间的相互作用,热声制冷系统利用声波沿多孔固体介质(堆栈)获得温度梯度。它是一项新兴的技术,以取代传统的制冷系统,其优点是没有运动部件。在本研究中,考察了材料、长度和谐振管内堆的位置对整个堆的冷却效果的影响。三种不同的材料-尼龙,ABS塑料和木材被用作堆叠材料,根据共振频率(145赫兹)的堆叠位置,在谐振器管(长度为60厘米)的范围内产生2-5°C的冷却效果。每个堆栈的三个样本(长度为3,6和9厘米)以10厘米的间隔放置在谐振管内。工作频率恒定在145赫兹,即谐振频率。在谐振频率下,在管的封闭端,长度为3cm的ABS塑料堆的温差最大。谐振腔管的闭合端冷负荷最大,而谐振腔管的开启端(驱动端)的性能系数(COP)最大。利用DeltaEC软件对相同工况下热声系统的性能进行了数值分析,并与实验结果进行了比较。热声科学关注的是声能和热能之间的相互作用,热声制冷系统利用声波沿多孔固体介质(堆栈)获得温度梯度。它是一项新兴的技术,以取代传统的制冷系统,其优点是没有运动部件。在本研究中,考察了材料、长度和谐振管内堆的位置对整个堆的冷却效果的影响。三种不同的材料-尼龙,ABS塑料和木材被用作堆叠材料,根据共振频率(145赫兹)的堆叠位置,在谐振器管(长度为60厘米)的范围内产生2-5°C的冷却效果。每个堆栈的三个样本(长度为3,6和9厘米)以10厘米的间隔放置在谐振管内。工作频率恒定在145赫兹,即谐振频率。当ABS塑料堆的封闭端长度为3cm时,温差最大。
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