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Ceramic-Chromium Hall Sensors for Environments with High Temperatures and Neutron Radiation

机译:陶瓷 - 铬霍尔传感器适用于高温和中子辐射的环境

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摘要

Ceramic-chromium Hall sensors represent a temperature and radiation resistant alternative to Hall sensors based on semiconductors. Demand for these sensors is presently motivated by the ITER and DEMO nuclear fusion projects. The developed ceramic-chromium Hall sensors were tested up to a temperature of 550 °C and a magnetic field of 14 T. The magnitude of the sensitivity of the tested sensor was 6.2 mV/A/T at 20 °C and 4.6 mV/A/T at 500 °C. The sensitivity was observed to be weakly dependent on a temperature above 240 °C with an average temperature coefficient of 0.014%/°C and independent of the magnetic field with a relative average deviation below the measurement accuracy of 0.086%. A simulation of a neutron-induced transmutation was performed to assess changes in the composition of the chromium. After 5.2 operational years of the DEMO fusion reactor, the transmuted fraction of the chromium sensitive layer was found to be 0.27% at the most exposed sensor location behind the divertor cassette with a neutron fluence of 6.08 × 1025 n/m2. The ceramic-chromium Hall sensors show the potential to be suitable magnetic sensors for environments with high temperatures and strong neutron radiation.
机译:陶瓷 - 铬霍尔传感器代表基于半导体的霍尔传感器的温度和辐射替代。目前,对这些传感器的需求由ITER和演示核聚变项目为动机。研发的陶瓷 - 铬霍尔传感器高达550℃的温度,磁场为14t。测试传感器的灵敏度的大小为20°C和4.6 mV / a的6.2mV / A / T. / t在500°C。观察到敏感性弱依赖于240℃以上的温度,平均温度系数为0.014%/℃,并且与相对平均偏差的磁场无关,低于测量精度为0.086%。进行中子诱导的嬗变的模拟以评估铬的组成的变化。 5.2在演示融合反应器的运行年后,发现铬敏感层的透射分数为0.27%,位于转丝器盒后面的最暴露的传感器位置,中子流量为6.08×1025n / m 2。陶瓷 - 铬霍尔传感器显示有适合具有高温和强大中子辐射的环境的合适磁传感器。

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