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Design and optimization of a two-stage 28 K Joule–Thomson microcooler

机译:两级28 K焦耳-汤姆森微冷却器的设计和优化

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Micro Joule–Thomson (JT) coolers made from glass wafers have been investigated for many years at the University of Twente. After successful realization of a single-stage JT microcooler with a cooling capacity of about 10mW at 100 K, a two-stage microcooler is being researched to attain a lower temperature of about 30 K. By maximizing the coefficient of performance (COP) of the two-stage microcooler, nitrogen is selected as the optimum working fluid for the first stage and hydrogen as that for the second stage. A dynamic finite-element model is developed for analyzing the cooler performance and to calculate the smallest cooler geometry. The optimized overall cooler dimensions are 20.4×85.8×0.72 mm for a net cooling power of 50mW at 97 K at the first stage and 20mW at 28 K at the second stage. The cool-down time to 28 K is calculated to be about 1.7 h with mass-flow rates of 14.0 mg/s for nitrogen and 0.94 mg/s for hydrogen at steady state.
机译:由玻璃圆片制成的微型焦耳-汤姆森(JT)冷却器已在特温特大学进行了多年研究。成功实现单级JT微型冷却器在100 K时的冷却能力约为10mW之后,正在研究两级微型冷却器以达到约30 K的较低温度。通过最大程度地提高制冷机的性能系数(COP),两级微冷却器,选择氮气作为第一阶段的最佳工作流体,选择氢气作为第二阶段的最佳工作流体。建立了动态​​有限元模型,用于分析冷却器性能并计算最小的冷却器几何形状。对于第一阶段97 K时50mW的净冷却功​​率和第二阶段28 K时20mW的净冷却功​​率,优化的整体冷却器尺寸为20.4×85.8×0.72 mm。稳态下,冷却至28 K的冷却时间约为1.7 h,氮气的质量流量为14.0 mg / s,氢气的质量流量为0.94 mg / s。

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