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Laboratory Testing of a MEMS Sensor System for In-Situ Monitoring of the Engineered Barrier in a Geological Disposal Facility

机译:MEMS传感器系统的实验室测试,用于对地质处置设施中的工程屏障进行现场监控

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Geological disposal facilities for radioactive waste pose significant challenges for robust monitoring of environmental conditions within the engineered barriers that surround the waste canister. Temperatures are elevated, due to the presence of heat generating waste, relative humidity varies from 20% to 100%, and swelling pressures within the bentonite barrier can typically be 2–10 MPa. Here, we test the robustness of a bespoke design MEMS sensor-based monitoring system, which we encapsulate in polyurethane resin. We place the sensor within an oedometer cell and show that despite a rise in swelling pressure to 2 MPa, our relative humidity (RH) measurements are unaffected. We then test the sensing system against a traditional RH sensor, using saturated bentonite with a range of RH values between 50% and 100%. Measurements differ, on average, by 2.87% RH, and are particularly far apart for values of RH greater than 98%. However, bespoke calibration of the MEMS sensing system using saturated solutions of known RH, reduces the measurement difference to an average of 1.97% RH, greatly increasing the accuracy for RH values close to 100%.
机译:放射性废物的地质处置设施对围绕废物罐的工程屏障内的环境条件进行有效监控提出了严峻的挑战。由于生热废料的存在,温度升高,相对湿度从20%到100%不等,膨润土屏障内的溶胀压力通常为2-10 MPa。在这里,我们测试了定制设计的基于MEMS传感器的监控系统的坚固性,该系统封装在聚氨酯树脂中。我们将传感器放置在里程表中,结果表明,尽管溶胀压力增加到2 MPa,我们的相对湿度(RH)的测量值也不受影响。然后,我们使用相对湿度值在50%至100%之间的饱和膨润土,对传统的RH传感器进行测试。平均而言,测量值相差2.87%RH,对于RH值大于98%的测量值尤其相距甚远。但是,使用已知RH的饱和溶液对MEMS传感系统进行定制校准,可以将测量差异减小到1.97%RH的平均值,从而大大提高了RH值接近100%的精度。

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