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Self-induced parametric amplification arising from nonlinear elastic coupling in a micromechanical resonating disk gyroscope

机译:微机械谐振式磁盘陀螺仪中非线性弹性耦合引起的自感应参量放大

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摘要

Parametric amplification, resulting from intentionally varying a parameter in a resonator at twice its resonant frequency, has been successfully employed to increase the sensitivity of many micro- and nano-scale sensors. Here, we introduce the concept of self-induced parametric amplification, which arises naturally from nonlinear elastic coupling between the degenerate vibration modes in a micromechanical disk-resonator, and is not externally applied. The device functions as a gyroscope wherein angular rotation is detected from Coriolis coupling of elastic vibration energy from a driven vibration mode into a second degenerate sensing mode. While nonlinear elasticity in silicon resonators is extremely weak, in this high quality-factor device, ppm-level nonlinear elastic effects result in an order-of-magnitude increase in the observed sensitivity to Coriolis force relative to linear theory. Perfect degeneracy of the primary and secondary vibration modes is achieved through electrostatic frequency tuning, which also enables the phase and frequency of the parametric coupling to be varied, and we show that the resulting phase and frequency dependence of the amplification follow the theory of parametric resonance. We expect that this phenomenon will be useful for both fundamental studies of dynamic systems with low dissipation and for increasing signal-to-noise ratio in practical applications such as gyroscopes.
机译:由于有意地以两倍于其共振频率的频率改变共振器中的参数而导致的参数放大,已经成功地用于提高许多微米和纳米级传感器的灵敏度。在这里,我们介绍自感应参量放大的概念,它是由微机械圆盘谐振器中简并振动模式之间的非线性弹性耦合自然产生的,并没有在外部应用。该装置用作陀螺仪,其中从弹性振动能量从驱动振动模式到第二简并感测模式的科里奥利耦合检测角旋转。尽管硅谐振器中的非线性弹性非常弱,但在这种高质量因子设备中,相对于线性理论,ppm级的非线性弹性效应导致观察到的对科里奥利力的灵敏度增加了一个数量级。通过静电频率调谐可以实现一次和二次振动模式的完美简并性,这也可以使参量耦合的相位和频率发生变化,并且我们证明了放大后得到的相位和频率依赖性遵循了参量共振理论。我们希望这种现象将对低功耗动态系统的基础研究以及在陀螺仪等实际应用中提高信噪比均有用。

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