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Performance analysis of irreversible quantum Stirling cryogenic refrigeration cycles and their parametric optimum criteria

机译:不可逆量子斯特林低温制冷循环的性能分析及其参数优化准则

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摘要

The influence of both the quantum degeneracy and the finite-rate heat transfer between the working substance and the heat reservoirs on the optimal performance of an irreversible Stirling cryogenic refrigeration cycle using an ideal Fermi or Bose gas as the working substance is investigated, based on the theory of statistical mechanics and thermodynamic properties of ideal quantum gases. The inherent regeneration losses of the cycle are analysed. Expressions for several important performance parameters such as the coefficient of performance, cooling rate and power input are derived. By using numerical solutions, the cooling rate of the cycle is optimized for a given power input. The maximum cooling rate and the corresponding parameters are calculated numerically. The optimal regions of the coefficient of performance and power input are determined. In particular, the optimal performance of the cycle in the strong and weak gas degeneracy cases and the high temperature limit are discussed in detail. The analytic expressions of some optimized parameters are derived. Some optimum criteria are given. The distinctions and connections between the Stirling refrigeration cycles working with the ideal quantum and classical gases are revealed.
机译:基于理想的费米或玻色气体作为工作物质,研究了量子简并和工作物质与储热器之间的有限速率传热对不可逆斯特林低温制冷循环最佳性能的影响。统计力学理论和理想量子气体的热力学性质。分析了循环的固有再生损失。得出了几个重要性能参数的表达式,例如性能系数,冷却速率和功率输入。通过使用数值解,循环冷却速率针对给定的功率输入进行了优化。最大冷却速度和相应的参数通过数值计算。确定性能和功率输入系数的最佳区域。尤其是,详细讨论了在强和弱气体简并情况和高温极限条件下循环的最佳性能。推导了一些优化参数的解析表达式。给出了一些最佳标准。揭示了使用理想量子气体和经典气体的斯特林制冷循环之间的区别和联系。

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