120赫兹脉冲管制冷机快速冷却的建模与实验

S. Vanapalli, M. Lewis, G. Grossman, Z. Gan, R. Radebaugh, H. T. Brake
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引用次数: 12

摘要

脉冲管制冷机的高频操作导致再生器体积减少,从而导致热容量减少和冷却时间缩短。脉冲管制冷机工作频率为120hz,平均压力为3.5 MPa,空载温度为50k。80k时的冷却功率约为3.35 W,从285 K到80 K的冷却时间约为5.5分钟,尽管由于法兰、螺丝、加热器和温度计在冷端产生的额外热质量是蓄热器的4.2倍。这种快速冷却速度比典型的脉冲管制冷机快两到四倍,对许多应用都非常有吸引力。在本研究中,我们测量了不同冷端质量的冷却时间至80 K,并推断冷端质量为零。本文还建立了不同冷端质量冷却时间的解析模型,并与实验结果进行了比较。模型和外推的实验结果表明,当冷端为零时,
本文章由计算机程序翻译,如有差异,请以英文原文为准。
MODELING AND EXPERIMENTS ON FAST COOLDOWN OF A 120 Hz PULSE TUBE CRYOCOOLER
High frequency operation of a pulse tube cryocooler leads to reduced regenerator volume, which results in a reduced heat capacity and a faster cooldown time. A pulse tube cryocooler operating at a frequency of 120 Hz and an average pressure of 3.5 MPa achieved a no-load temperature of 50 K. The cooling power at 80 K was about 3.35 W with a cooldown time from 285 K to 80 K of about 5.5 minutes, even though the additional thermal mass at the cold end due to flanges, screws, heater, and thermometer was 4.2 times that of the regenerator. This fast cooldown is about two to four times faster than that of typical pulse tube cryocoolers and is very attractive to many applications. In this study we measure the cooldown time to 80 K for different cold-end masses and extrapolate to zero cold-end mass. We also present an analytical model for the cooldown time for different cold-end masses and compare the results with the experiments. The model and the extrapolated experimental results indicate that with zero cold-end...
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