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Cool-down dynamics of a cryostat with a closed-cycle cryogenic refrigeratior

机译:带闭环低温制冷机的低温恒温器的冷却动力学

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A cryostat designed for a large-scale superconducting motor application is to be cooled by a reversed Brayton cycle cryogenic refrigerator. A set of four high-temperature superconducting (HTS) field winding coils reside in the cryostat. A nominal operating temperature of 33 K for these HTS coils of the synchronous motor is maintained by the refrigerator through circulating cold helium gas through a pair of cooling channels in the cryostat. As part of the rotor of the HTS motor, the cyyostat will be rotated at 1,800 rpm under normal operations. To reduce the thermal stress developed in the HTS coils and their supporting structure, the cool-down of the refrigerator and cryostat takes place simultaneously after being coupled by a pair of bayonets. Substantial variation of helium properties through the cool-down temperature range attributes to the dynamic behavior in hydrodynamics and heat transfer of helium gs in the cooling circuits. A numerical model is developed to simulate and characterize the cool-down process. Analytical results define optimal engine speeds at various temperature levels for maximum cooling capacity, which are compared to the design constraints of thermal stress level requirements. Potential hydrodynamic instability issues associated with the parallel cooling channels, typically during the cool-down, are also investigated and will be discussed in details.
机译:专为大型超导电机应用设计的低温恒温器将通过反向布雷顿循环低温制冷机进行冷却。低温恒温器中有一组四个高温超导(HTS)场绕组线圈。冰箱通过使低温氦气通过低温恒温器中的一对冷却通道循环,从而使同步电动机的这些HTS线圈的额定工作温度为33K。作为高温超导电机转子的一部分,在正常操作下,恒压器将以1800 rpm的速度旋转。为了减少高温超导线圈及其支撑结构中产生的热应力,冰箱和低温恒温器通过一对刺刀耦合后同时进行冷却。在冷却温度范围内,氦气特性的显着变化归因于流体动力学的动态行为以及冷却回路中氦气gs的热传递。开发了一个数值模型来模拟和表征冷却过程。分析结果定义了在各种温度水平下的最佳发动机转速,以实现最大的冷却能力,并将其与热应力水平要求的设计约束条件进行比较。还研究了与平行冷却通道相关的潜在流体动力学不稳定性问题,通常是在冷却过程中,并将对此进行详细讨论。

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