脉冲管式制冷机的数值研究以及改变再生器负载对温度的影响

Sarah Taher, Y. Al-lami, A. A. Al‐Hamadani
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引用次数: 0

摘要

基于斯特林循环的低温冷却装置包括脉管制冷机。它们经常被用于各种应用,包括空间探索、超导和低温研究,在这些应用中需要小而可靠的低温冷却。一种工作气体,通常是氦气,在一个封闭的系统内循环压缩和膨胀,以操作脉管制冷机。脉管制冷机理论研究的目的是了解系统的热力学行为和性能特点。为了获得更高的冷却效率和更低的温度,这些研究都在努力改进设计参数和运行条件。为了预测系统的性能,理论模型考虑了许多变量,包括传热、压降、气体动力学和流体特性。结果显示了系统的温度梯度。利用ansys软件进行热模拟,并利用solidworks绘制几何图形设计,温度梯度为3w /m2,达到47k。随着温度的升高,热负荷增大,在[3、4、5、6、8、10]W/m2时,热负荷达到[43、58、79、90、11、156、]K。在一阶温度梯度为88.034k,二阶温度梯度为340 k的情况下,模拟方法表明最佳方案达到105 k。热负荷差异的最佳例子是在3 W/m2时,达到108K,结果表明脉冲管温度下降的错误率为5%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical studies on Pulse tube refrigerator and the effect of changing the load of the regenerator on temperatures
Devices for cryogenic cooling based on the Stirling cycle include pulse tube refrigerators. They are often employed in a variety of applications, including space exploration, superconductivity, and cryogenic research, where small and dependable cryogenic cooling is necessary. A working gas, commonly helium, is compressed and expanded in cycles within a closed system to operate a pulse tube refrigerator. The goal of theoretical research on pulse tube refrigerators is to comprehend the system's thermodynamic behavior and performance characteristics. In order to obtain greater cooling efficiency and lower temperatures, these studies are strivinge to improve the design parameters and operating conditions. To forecast the system's performance, theoretical models are taking into account a number of variables, including heat transfer, pressure drop, gas dynamics, and fluid characteristics. The outcome demonstrates how a system's temperature gradient. The ansys program was used to conduct a thermal simulation, as well use solidworks to draw geometry design the temperature gradient is 3 W/m2, reaching 47 K. The heat load increases as the temperature rises, reaching [43,58,79,90,111,156,] K at [3,4,5,6,8,10] W/m2. With a temperature gradient of 88.034k in the first order and 340 k in the second order, the simulation approach demonstrates that the best scenario achieved   105 K. The best example with a difference in heat load was at 3 W/m2, reaching 108K, Results revealed a 5% error rate temperature decline at the pulse tube.
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