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Modeling and optimization of a side-implanted piezoresistive shear stress sensor

机译:侧嵌入压阻剪切应力传感器的建模与优化

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This paper presents the modeling and design optimization of a micromachined floating element piezoresistive shear stress sensor for the time-resolved, direct measurement of fluctuating wall shear stress in a turbulent flow. The sensor structure integrates side-implanted diffused resistors into the silicon tethers for piezoresistive detection. A theoretical nonlinear mechanical model is combined with a piezoresistive model to determine the electromechanical sensitivity. Lumped element modeling (LEM) is used to estimate the resonant frequency. Finite element modeling is employed to verify the mechanical models and LEM results. Two dominant noise sources, 1/f noise and thermal noise, were considered to determine the noise floor. These models were then leveraged to obtain optimal sensor designs for several sets of specifications. The cost function is the minimum detectable shear stress that is formulated in terms of sensitivity and noise floor. This cost function is subjected to the constraints of geometry, linearity, bandwidth, power and resistance. The results indicate the possibility of designs possessing dynamic ranges of greater than 85dB.
机译:本文介绍了用于时间分辨的微机械浮动元件压阻剪切应力传感器的建模和设计优化,直接测量湍流中的波动壁剪切应力的直接测量。传感器结构将侧嵌入的扩散电阻集成到用于压阻检测的硅系上。理论非线性机械模型与压阻模型组合以确定机电敏感性。集总元素建模(LEM)用于估计谐振频率。有限元建模用于验证机械模型和LEM结果。两种主导噪声源,1 / F噪声和热噪声被认为是确定噪声底板。然后利用这些模型来获得几套规格的最佳传感器设计。成本函数是在灵敏度和噪声地板方面配制的最小可检测剪切应力。这种成本函数受到几何形状,线性,带宽,功率和电阻的约束。结果表明,具有大于85dB的动态范围的设计的可能性。

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