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A capacitance based axial position sensor for cryocoolers

机译:基于电容的低温冷却器轴向位置传感器

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In order achieve turnkey operation, we plan to use cryocoolers to cool a AQUID magnetometer system. To minimize the magnetical and mechanical interference from to coolers, we intend to switch them off during the actual measurements. Consequently, a thermal storage unit (TSU) is required with sufficient capacity at an appropriate temperature (<77K). In a feasibility study, we consider a load of 0.5w from the SQUID sensor unit and an operating time of 10h. To account for an increased load caused by the TSU itself, an overall capacity of 15Wh is aimed at. The nitrogen triple-point is chosen because of the large latent heat involved in the transition from solid to liquid and the corresponding well-suited temperature (63 K). Futher more, any safety risks involved with the use of nitrogen are small compared to alternatives. To contain the nitrogen, highly porous alumina is used. A structure was made in which layers of copper and porous material alternate, Thus establishing a good thermal contact between the nitrogen and the casting of the TSU. Experiments show an overall capacity of the system around 85 percent of the expected theoretical value. Suggestions for improvements are given so as to arrive at a TSU capacity of 15Wh.
机译:为了实现交钥匙操作,我们计划使用低温冷却器来冷却AQUID磁力计系统。为了最大程度地减少对冷却器的电磁干扰,我们打算在实际测量期间将其关闭。因此,需要在适当温度(<77K)下具有足够容量的蓄热单元(TSU)。在可行性研究中,我们考虑来自SQUID传感器单元的负载为0.5w,工作时间为10h。为了解决由TSU自身引起的负载增加,目标是15Wh的总容量。之所以选择氮三点,是因为从固体到液体的转变涉及大量的潜热以及相应的合适温度(63 K)。此外,与其他方式相比,使用氮气所涉及的任何安全风险都较小。为了包含氮,使用了高度多孔的氧化铝。制成了其中铜和多孔材料层交替的结构,从而在氮气和TSU的铸件之间建立了良好的热接触。实验表明,该系统的总容量约为预期理论值的85%。提出了改进建议,以使TSU容量达到15Wh。

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