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On the design and implementation of a novel impedance chamber based variable temperature regulator at liquid helium temperatures

机译:基于新型阻抗室的液氦温度可变温度调节器的设计与实现

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A novel variable temperature regulator (VTR) based on the use of a fine impedance capillary to control the flow rate of cold helium gas into the VTR chamber is described. The capillary has a diameter of just 200 μm and the flow rate of cold helium gas through the capillary can be effectively controlled to the desired value by heating the capillary to a preset temperature and by controlling the pressure in the VTR chamber to a preset pressure using automated control circuits. Excellent temperature stability (about ±1 mK at 10 K and ±2 mK at 100 K) has been demonstrated in this setup with uniform rates of heating or cooling by an optimal choice of parameters. Compared to the more conventional VTR designs based on the use of mechanical long stem valves in the liquid helium reservoir to control the flow rate of liquid helium into the VTR chamber, and the use of a needle valve at the top of the cryostat to control the exchange gas pressure in the thermal isolation chamber, the present design enables temperature stability at any user desired temperature to be attained with uniform rates of cooling/heating with minimum consumption of liquid helium. The VTR has been successfully incorporated in the high field superconducting quantum interference device magnetometer setup developed in-house. It can also be incorporated in any low temperature physical property measurement system in which the temperature has to be varied in a controlled manner from 4.2 to 300 K and vice versa with uniform rates of heating and cooling. © 2010 American Institute of Physics Article Outline INTRODUCTION PRINCIPLE AND OPERATION OF THE VTR FABRICATION OF VTR CHARACTERIZATION OF THE VTR CONCLUSION
机译:描述了一种新颖的可变温度调节器(VTR),该调节器基于使用细阻抗毛细管来控制冷氦气进入VTR腔室的流速。毛细管的直径仅为200μm,通过将毛细管加热到预设温度并将VTR室中的压力控制到预设压力,可以有效地将冷氦气通过毛细管的流量控制到所需值自动控制电路。在这种设置中,通过优化的参数选择,以均匀的加热或冷却速率展示了出色的温度稳定性(在10 K时约为±1 mK,在100 K时约为±2 mK)。与更传统的VTR设计相比,该设计基于在液氦储罐中使用机械长杆阀来控制液氦进入VTR腔室的流量,并在低温恒温器顶部使用针形阀来控制液氦。在热隔离室中交换气体压力时,本设计能够以最小的液氦消耗量以均匀的冷却/加热速率实现在任何用户所需温度下的温度稳定性。 VTR已成功整合到内部开发的高场超导量子干扰设备磁力计中。它也可以并入任何低温物理性质测量系统中,在该系统中,温度必须以受控方式从4.2 K改变到300 K,反之亦然,并且加热和冷却的速率必须均匀。 ©2010美国物理研究所文章大纲VTR的介绍原理和操作VTR的特征VTR的特征结论

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