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Numerical modelling of a coaxial Stirling pulse tube cryocooler with an active displacer for space applications

机译:具有空间应用中活性置换器的同轴斯特林脉冲管冷凝器的数值模型

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A numerical model for a coaxial Stirling pulse tube cryocooler with an active displacer has been developed. An active displacer, in place of an inertance tube, has already demonstrated good efficiency in an in-line pulse tube, but incorporating this design into a coaxial configuration permits better access to the cold head. A model of the coaxial cold head was developed to include the radial flow and cooling in this region. The sub-assembly models were validated with flow testing of the physical sub-units of the cryocooler. The performance has been predicted for the cryocooler as a function of: fill pressure, operating frequency, and phase angle between the position of the linear compressor and displacer. The projected difference in performance and efficiency of the coaxial configuration was compared to the in-line design. The coaxial cryocooler numerically simulates 6 W of cooling at 80 K with an input power of 85 W, at a fill pressure of 28 bar, an operating frequency of 60 Hz, and a compressor-displacer phase angle of 41 degrees. Overall, the coaxial cryocooler outperforms the in-line design in terms of cooling power, but not in terms of efficiency.
机译:开发了一种具有活性置换器的同轴旋转脉冲管冷凝器的数值模型。一种活性置换器代替惯性管,已经在线脉冲管中已经证明了良好的效率,而是将该设计纳入同轴配置允许更好地进入冷头。开发了一种同轴冷头的模型,包括该区域的径向流动和冷却。子组件模型验证了低温冷却器的物理子单元的流动测试。作为以下函数的函数预测了性能:填充线性压缩机和置换器位置之间的压力,工作频率和相位角。将同轴配置的性能和效率的预计差异与在线设计进行了比较。同轴冷冻机以85W的输入功率在数值上模拟在80 k下冷却,以28巴的填充压力,60Hz的工作频率,以及41度的压缩机 - 置换器相角。总的来说,同轴冷冻机在冷却功率方面优于在线设计,但不是在效率方面。

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