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A Novel Frequency Stabilization Approach for Mass Detection in Nonlinear Mechanically Coupled Resonant Sensors

机译:一种新的非线性机械耦合谐振传感器质量检测的频率稳定方法

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摘要

Frequency stabilization can overcome the dependence of resonance frequency on amplitude in nonlinear microelectromechanical systems, which is potentially useful in nonlinear mass sensor. In this paper, the physical conditions for frequency stabilization are presented theoretically, and the influence of system parameters on frequency stabilization is analyzed. Firstly, a nonlinear mechanically coupled resonant structure is designed with a nonlinear force composed of a pair of bias voltages and an alternating current (AC) harmonic load. We study coupled-mode vibration and derive the expression of resonance frequency in the nonlinear regime by utilizing perturbation and bifurcation analysis. It is found that improving the quality factor of the system is crucial to realize the frequency stabilization. Typically, stochastic dynamic equation is introduced to prove that the coupled resonant structure can overcome the influence of voltage fluctuation on resonance frequency and improve the robustness of the sensor. In addition, a novel parameter identification method is proposed by using frequency stabilization and bifurcation jumping, which effectively avoids resonance frequency shifts caused by driving voltage. Finally, numerical studies are introduced to verify the mass detection method. The results in this paper can be used to guide the design of a nonlinear sensor.
机译:频率稳定可以克服共振频率对非线性微机电系统中的振幅的依赖性,这可能在非线性质量传感器中有用。在本文中,理论上呈现了频率稳定化的物理条件,分析了系统参数对频率稳定的影响。首先,设计非线性机械耦合的谐振结构,其设计有由一对偏置电压和交流(AC)谐波负载组成的非线性力。通过利用扰动和分岔分析,研究耦合模式振动并导出非线性方案中共振频率的表达。发现改善系统的质量因子至关重要,以实现频率稳定。通常,引入随机动态方程以证明耦合谐振结构可以克服电压波动对谐振频率的影响,提高传感器的鲁棒性。另外,通过使用频率稳定和分叉跳跃提出了一种新颖的参数识别方法,其有效地避免了由驱动电压引起的共振频率偏移。最后,引入了数值研究以验证质量检测方法。本文的结果可用于引导非线性传感器的设计。

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