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MEMS Flow Sensors Based on Self-Heated aGe-Thermistors in a Wheatstone Bridge

机译:基于惠斯通电桥中自热aGe热敏电阻的MEMS流量传感器

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A thermal flow transduction method combining the advantages of calorimetric and hot-film transduction principles is developed and analyzed by Finite Element Method (FEM) simulations and confirmed experimentally. The analyses include electrothermal feedback effects of current driven NTC thermistors. Four thin-film germanium thermistors acting simultaneously as heat sources and as temperature sensors are embedded in a micromachined silicon-nitride membrane. These devices form a self-heated Wheatstone bridge that is unbalanced by convective cooling. The voltage across the bridge and the total dissipated power are exploited as output quantities. The used thin-film thermistors feature an extremely high temperature sensitivity. Combined with properly designed resistance values, a power demand in sub-1mW range enables efficient gas-flow transduction, as confirmed by measurements. Two sensor configurations with different arrangements of the membrane thermistors were examined experimentally. Moreover, we investigated the influence of different layouts on the rise time, the sensitivity, and the usable flow range by means of two-dimensional finite element simulations. The simulation results are in reasonable agreement with corresponding measurement data confirming the basic assumptions and modeling approach.
机译:开发了一种结合了量热法和热膜法原理的优点的热流法,并通过有限元方法(FEM)模拟进行了分析,并通过实验进行了验证。分析包括电流驱动的NTC热敏电阻的电热反馈效应。四个同时用作热源和温度传感器的薄膜锗热敏电阻被嵌入微机械氮化硅膜中。这些设备形成了自热的惠斯通电桥,对流冷却不平衡。桥上的电压和总耗散功率被用作输出量。所使用的薄膜热敏电阻具有极高的温度敏感性。测量结果证实,结合适当设计的电阻值,低于1mW的功率需求可实现高效的气流转换。通过实验检查了具有不同膜热敏电阻布置的两种传感器配置。此外,我们通过二维有限元模拟研究了不同布局对上升时间,灵敏度和可用流量范围的影响。仿真结果与相应的测量数据合理吻合,证实了基本假设和建模方法。

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