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Method for Determining the Stability Regions of Stationary Oscillations of a Nonlinear MEMS Resonator under the Action of Phase-Locked-Loop and Automatic Gain Control Systems

机译:在锁相环和自动增益控制系统的作用下确定非线性MEMS谐振器的固定振荡稳定区域的方法

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The work is devoted to the study of the dynamics of a micromechanical resonator under the action of systems of phase-locked loop of the generator frequency and stabilization of the oscillation amplitude. Particular attention is directed to the study of the nonlinearity factor of the elastic restoring force of the resonator. It was found that the choice of control system parameters based on the analysis of the stability of the operating resonance mode for a mechanically linear model, in the general case, does not provide the required resonant phase adjustment and stabilization of the oscillation amplitude. Stable multifrequency modes of oscillations are found, an analytical study of the mechanisms of their appearance and evolution is carried out when the key parameters of the system change. The real regions of stable operation of the control system are determined (which do not coincide, as was found, with the regions of stability of the operating resonance mode, due to the presence of hidden attractors in the phase space of the system). A methodology for identifying such areas of stable operation has been developed. A significant complication of the structure of possible motions in the system with an increase in the Q-factor of the resonator is noted.
机译:该工作致力于在发电机频率的锁相环系统的作用下研究微机械谐振器的动态和振动幅度的稳定化。特别注意涉及谐振器弹性恢复力的非线性因子的研究。结果发现,基于对机械线性模型的操作谐振模式的稳定性的控制系统参数的选择,在一般情况下,不提供所需的谐振相位调整和振荡振幅的稳定。发现稳定的振荡模式,当系统改变的关键参数时,执行其外观和演化机制的分析研究。确定控制系统的稳定操作的实际区域(如发现的那样,由于在系统的相位空间中存在隐藏的吸引子,并且由于在操作谐振模式的稳定性区域的情况下,而不是相一致的。已经开发了一种用于识别稳定操作区域的方法。注意到系统中可能运动结构的结构的显着并发作用,随着谐振器的Q系数的增加。

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