不同3D打印蓄热器在热声冷却器中的冷凝实验研究

Aibek Bekkulov, Andrew Luthen, Ben Xu
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引用次数: 0

摘要

热声学(TA)研究的是热与声的相互转换。利用声波功将能量从低温储层转移到高温储层的装置被称为TA冷却器(TAC)。典型TA装置的主要部件是一个谐振器、一个蓄热器(平行板的堆叠)和两个热交换器。当沿再生器(即平行于声波传播方向)施加的非零温度梯度与声波振荡相互作用时,就会发生热声现象。TAC寒冷处的低温可以用来凝结空气中的湿气,也可以减少一些潮湿地区空气中的水分。在目前的研究中,扬声器产生的高强度声波驱动TA冷却器在18℃左右的低温下产生冷却功率。蓄热器内冷凝水的排出是系统性能的关键,因为如果多孔结构被冷凝水堵塞,蓄热器内就不会发生TA现象。本研究旨在探讨在TAC中产生的温度梯度对冷凝增强的影响。利用3D打印机设计制作了不同结构的蓄热器,并对不同结构的蓄热器进行了系统制冷量的测量和比较。讨论了各种类型蓄热器的能量平衡。本研究的潜在应用可能是一种用于干旱地区集水的自主热声冷却器系统。这项工作可用于评估如果使用潮湿空气作为工作流体,冷凝如何影响TA效应。
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Experimental Study of Condensation in Different 3D Printed Regenerators in a Thermoacoustic Cooler
Thermoacoustics (TA) deals with the conversion of heat into sound and vice versa. The device that transfers energy from a low temperature reservoir to a high temperature one by utilizing acoustic work is called TA cooler (TAC). The main components of a typical TA device are a resonator, a regenerator (stack of parallel plates) and two heat exchangers. The thermoacoustic phenomenon takes place in the stack when a nonzero temperature gradient imposed along the regenerator (i.e. parallel to the direction of the sound wave propagation) interacts with the sound wave oscillations. The low temperature at the cold of TAC can be used to condense humid water from the air and also reduce the moisture in the air at some humid areas. In the current study, the high intensity sound waves was produced by the speaker to drive a TA cooler to produce cooling power at a cold temperature of around 18°C. The drainage of condensate in the regenerator is the key for the system performance, because if the porous structure will be blocked by the condensate, TA phenomenon cannot take place in the regenerator. This work is dedicated to investigate the effect from temperature gradient created in TAC for condensation enhancement. 3D printer was used to design and fabricate different structures of regenerator, and then the systematic cooling capacity was measured and compared with different designs of regenerators. Energy balance was also discussed for each type of regenerator. The potential application of this investigation can be an autonomous thermoacoustic cooler system for water harvesting in arid areas. This work can be used to evaluate how the TA effect can be affected by the condensation if humid air is used as the working fluid.
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