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Energy Dissipation Contribution Modeling of Vibratory Behavior for Silicon Micromachined Gyroscope

机译:硅微机械陀螺仪振动行为的能量耗散贡献模型

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Energy dissipation contribution of micro-machined Coriolis vibratory gyroscope (MCVG) is modeled, numerically simulated, and experimentally verified in this paper. First, the amount of independent damping dissipation consisting of thermoelastic loss, anchor loss, surface loss, Akhiezer loss, and air damping loss during vibration is obtained by simulation model, PML-based method, and numerical calculation, respectively. Then, temperature and pressure dependence characteristic of the corresponding quality factor (Q) for the MCVG are obtained. Meanwhile, dominant sources of damping dissipation are determined, which paves the way to improve Q. Finally, the temperature-dependent and pressure-dependent characteristics of the total Q are measured with errors of less than 10% and 18% compared with the simulated total Q, respectively, in which accuracy is acceptable for predicting the damping dissipation behavior of MCVG in design stage before high-cost fabrication.
机译:本文对微加工科里奥利振动陀螺仪(MCVG)的能量耗散贡献进行了建模,数值模拟和实验验证。首先,通过仿真模型,基于PML的方法和数值计算,分别获得了由热弹性损耗,锚固损耗,表面损耗,Akhiezer损耗和空气阻尼损耗组成的独立阻尼耗散量。然后,获得MCVG的相应品质因数(Q)的温度和压力依赖性特性。同时,确定了阻尼耗散的主要来源,这为改善Q铺平了道路。最后,测量了总Q的温度相关和压力相关特性,与模拟总和相比,其误差分别小于10%和18%。分别为Q,其中精度对于在高成本制造之前的设计阶段预测MCVG的阻尼耗散行为是可以接受的。

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