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首页> 外文期刊>Journal of Microelectromechanical Systems >Mechanical Superheterodyne and Its Use for Low Frequency Vibrations Sensing
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Mechanical Superheterodyne and Its Use for Low Frequency Vibrations Sensing

机译:机械超差差及其用于低频振动感应的用途

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Mechanical micro and nano scale devices are being increasingly used for realizing signal processing and logic or computing functions, which until recently were traditionally performed by electronics. Extremely low-power consumption and robustness make mechanical micro structures attractive for implementation in autonomous distributed sensing systems. Heterodyning is one of the most important and indispensable signal processing techniques. In microelectromechanical heterodynes, the frequency mixing is commonly achieved using nonlinear forces, which often limits scalability and the operational range of the device and may lead to undesired dynamic behavior. In this paper, we introduce an approach allowing purely mechanical realization of the superheterodyne principle. The frequency mixing is based on the inertial coupling between two vibratory modes of the device. The architecture is distinguished by linearity of the mixing term with respect to the input inertial and the local oscillator signals. We demonstrate the mixing effect both theoretically and experimentally, using the devices fabricated from a silicon on insulator (SOI) wafer by deep reactive ion etching (DRIE). We show the applicability of the device as a mechanical low frequency vibration sensor. The substrate vibration frequencies down to 25 Hz were measured using a device with a fundamental mode frequency of 4700 Hz.
机译:机械微型和纳米尺度装置越来越多地用于实现信号处理和逻辑或计算功能,直到最近传统上由电子设备执行。极低功耗和稳健性使机械微结构在自主分布式传感系统中实现有吸引力。自差是最重要和最不可或缺的信号处理技术之一。在微机电杂交杂交中,通常使用非线性力来实现频率混合,这通常会限制可扩展性和装置的操作范围,并且可能导致不希望的动态行为。在本文中,我们介绍了一种允许纯机械实现超差异的方法。变频器基于装置的两个振动模式之间的惯性耦合。该架构通过混合项的线性相对于输入惯性和本地振荡器信号来区分。我们通过深反应离子蚀刻(DRIE)使用由绝缘体(SOI)晶片上的硅制成的硅(SOI)晶片制成的器件来证明它们在理论上和实验中展示了混合效果。我们展示了该装置的适用性作为机械低频振动传感器。使用具有4700Hz的基本频率的器件测量低至25Hz的基板振动频率。

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