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Characterization of a novel micromachined gyroscope under varying ambient pressure conditions

机译:新型微机械陀螺仪在变化的环境压力条件下的特性

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This paper reports on a novel micromachined angular rate sensor with optimized mechanical suspension, targeted for automotive applications. The eigenfrequencies and the mode shapes of the sensor element were calculated both analytically and by using finite element method simulations. Furthermore, the Q-factors of the drive and sense frequencies were determined experimentally as a function of ambient pressure levels in a custom-built setup. The sensitivity of the sensor element was measured in the range of up to 1000 degrees/s applying different excitation voltages (and) for different ambient pressure levels. The main issue of this work is to characterize the device below excitation voltages of 10 V-2 in an ambient pressure regime between 100 and 1000 Pa which represents boundary conditions typically applied to micromachined gyroscopes for automotive applications. From these measurements, the corresponding quadrature errors were determined varying both parameters systematically. (c) 2007 Elsevier B.V. All rights reserved.
机译:本文报道了针对汽车应用的,具有优化机械悬架的新型微机械角速率传感器。解析地和通过使用有限元方法仿真来计算传感器元件的本征频率和模式形状。此外,在定制设置中,根据环境压力水平通过实验确定了驱动频率和感测频率的Q因子。传感器元件的灵敏度在高达1000度/秒的范围内,针对不同的环境压力水平施加了不同的激励电压(和)。这项工作的主要目的是在100至1000 Pa的环境压力范围内表征10 V-2激发电压以下的设备,这代表了通常应用于汽车应用的微机械陀螺仪的边界条件。从这些测量中,系统地改变两个参数来确定相应的正交误差。 (c)2007 Elsevier B.V.保留所有权利。

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