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Improvement of the thermal performance of pulse tube refrigerator by using a general principle for enhancing energy transport and conversion processes

机译:通过使用通用原理增强能量传输和转换过程来改善脉冲管制冷机的热性能

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摘要

In engineering fields there are such energy transport and/or conversion processes in which the resulting quantity is expressed by the dot production of two vectors. For such processes, the reduction of the intersection angle (or phase angle shift) between the tow vectors is the most fundamental way for enhancing the processes (field synergy principle). For a pulse tube refrigerator (PTR) its cooling capacity at the hot end is shown to be proportional to the dot production of velocity vector and pressure vector. Detailed numerical analyses are conducted for the PTR to reveal the variation of its cooling capacity with the phase angle shift between the velocity wave and pressure wave. Numerical results clearly reveal the size effect of the orifice and double inlet valve of the PTR on the phase angle shift, and hence, on the PTR cooling capacity. The field synergy principle is further used to determine the optimum length to diameter ratio of the pulse tube and the optimal molar percentage of helium for a PTR using hydrogen/helium mixture as a working medium. Simulation results definitely show that the field synergy principle is a powerful guide to enhance energy conversion and transport processes.
机译:在工程领域中,存在这样的能量传输和/或转换过程,其中通过两个矢量的点产生来表达所产生的数量。对于这样的过程,两个矢量之间的相交角(或相角偏移)的减小是增强过程的最基本方法(场协同原理)。对于脉冲管制冷机(PTR),其热端的冷却能力显示为与速度矢量和压力矢量的点生成成比例。对PTR进行了详细的数值分析,以揭示其冷却能力随速度波和压力波之间的相角变化而变化。数值结果清楚地显示了PTR的节流孔和双入口阀的尺寸对相角偏移的影响,因此对PTR的冷却能力也有影响。场协同原理还用于确定使用氢/氦混合物作为工作介质的PTR的最佳脉冲管长径比和最佳氦气摩尔百分比。仿真结果明确表明,场协同原理是增强能量转换和传输过程的有力指南。

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