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Optimization of thermoacoustic engine driven thermoacoustic refrigerator using response surface methodology

机译:使用响应表面方法的热声发动机驱动热声冰箱优化

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Thermoacoustic engines (TAEs) are devices which convert heat energy into useful acoustic work whereas thermoacoustic refrigerators (TARs) convert acoustic work into temperature gradient. These devices work without any moving component. Study presented here comprises of a combination system i.e. thermoacoustic engine driven thermoacoustic refrigerator (TADTAR). This system has no moving component and hence it is easy to fabricate but at the same time it is very challenging to design and construct optimized system with comparable performance. The work presented here aims to apply optimization technique to TADTAR in the form of response surface methodology (RSM). Significance of stack position and stack length for engine stack, stack position and stack length for refrigerator stack are investigated in current work. Results from RSM are compared with results from simulations using Design Environment for Low- amplitude Thermoacoustic Energy conversion (DeltaEC) for compliance.
机译:热声发动机(Taes)是将热能转换为有用的声学工作的装置,而热声冰箱(Tars)将声学工作转换为温度梯度。这些设备在没有任何移动组件的情况下工作。本文提出的研究包括组合系统I.E.热声发动机驱动的热声冰箱(TADTAR)。该系统没有移动组件,因此易于制造,但同时设计和构造具有可比性的优化系统非常具有挑战性。此处提出的工作旨在以响应面方法(RSM)的形式应用于Tadtar的优化技术。在当前工作中研究了发动机堆叠,堆叠位置和堆叠长度的堆叠位置和堆叠长度的意义。 RSM的结果与模拟使用设计环境的模拟结果进行比较,以便合规性的低幅度热声能量转换(DeltaEC)。

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