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Numerical study on the working performance of a G-M cryocooler with a mechanically driven displacer

机译:机械驱动置换器的G-M制冷机工作性能的数值研究

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Single stage G-M cryocoolers (GMCs) with high cooling capacity at 20-50 K provide significant benefit for the field of high temperature superconductors, however, their working efficiency can still be improved for commercial applications. Numerical simulations can serve as a valuable guide for precise optimization of the GMC because they allow one to study its internal operating characteristics. In this research, a two-dimensional, transient model of a single stage GMC with a mechanically driven displacer is built and studied using computational fluid dynamics (CFD) simulation. The modelling method has been tested and experimentally verified. It enables a view of the instantaneous non-uniform flow and temperature distributions inside the GMC. Additionally, the effects of cold end channels on the heat transfer efficiency of the cold heat exchanger while operating at a large cooling power are analyzed. The results show that during certain periods of a cycle, most of the regenerator near the cold end remains at almost the same low temperature with no temperature gradient due to the small heat capacity of the materials compared to that of the helium gas; while most of the pressure drop occurs in the region near the hot end due to the high viscosity of helium-4. For a good cooling performance at low temperatures, the cold end channels should be distributed uniformly to guarantee a uniform flow and temperature distribution in the regenerator; while for a high output cooling power at high temperatures, they should be designed to enhance the heat exchange between the gas and the cold heat exchanger as much as possible.
机译:单级G-M低温制冷器(GMC)具有20-50 K的高制冷量,为高温超导体领域提供了显着优势,但是对于商业应用而言,它们的工作效率仍然可以提高。数值模拟可以用作精确优化GMC的有价值的指南,因为它们允许人们研究GMC的内部运行特性。在这项研究中,使用计算流体动力学(CFD)模拟来构建和研究带有机械驱动置换器的单级GMC的二维瞬态模型。该建模方法已经过测试和实验验证。它可以查看GMC内部的瞬时非均匀流量和温度分布。此外,分析了冷端通道对以较大冷却功率运行时冷热交换器的传热效率的影响。结果表明,在一定周期内,由于与氦气相比材料的热容小,大多数靠近冷端的蓄热室保持在几乎相同的低温且没有温度梯度。由于He-4的高粘度,大多数压降发生在热端附近。为了在低温下具有良好的冷却性能,冷端通道应均匀分布,以确保蓄热室中的流量和温度分布均匀。对于高温下的高输出冷却功率,应将其设计为尽可能提高气体与冷热交换器之间的热交换。

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