Nonlinear Dynamics of the Primary Oscillation Circuit of a Mems Gyroscope Under the Action of Phase-locked Loop and Automatic Gain Control Systems
Author(s):
Vasilisa Sergeevna Igumnova
postgraduate student of the Higher School of Mechanics and Control Processes,
Institute of Physics and Mechanics, SPbPU
igumnovavs@mail.ru
Alexey Vyacheslavovich Lukin
PhD, Associate Professor of the Higher School of Mechanics and Control Processes,
Institute of Physics and Mechanics, SPbPU
lukin_av@spbstu.ru
Ivan Alekseevich Popov
Leading Engineer of the Advanced Engineering School "Digital Engineering"
popov_ia@spbstu.ru
Nikolay Vladimirovich Kuznetsov
Doctor of physico-mathematical sciences, Head of the Department of Applied Cybernetics, St. Petersburg State University,
Head of the Laboratory of Information and Control Systems of the Institute for Problems in
Mechanical Engineering of the Russian Academy of Sciences (IPMash RAS)
nkuznetsov239@mail.ru
Mikhail Yurievich Lobachev
postgraduate student, Department of Applied Cybernetics,
Faculty of Mathematics and Mechanics, St. Petersburg State University
Yakov Valerievich Belyaev
PhD, Head of department, Concern "CSRI Elektropribor"
ybelyaev@eprib.ru
Abstract:
In this work, we study the dynamics of primary oscillations of a high-Q micromechanical resonator -
a sensitive element of an RR-type MEMS gyroscope - under the action of various implementations of a phase-locked loop system
operating in conjunction with an automatic gain control system for an electrostatic drive. The study of the dynamics
of the object is carried out both numerically and analytically - using the averaging method. Conditions for the stability
of a stationary regime in a linear approximation are obtained. The questions of accuracy of various methods of numerical solution
of differential equations of the circuit of primary oscillations are considered. The influence of the mechanical nonlinearity
of the resonator on the dynamics of the resonator and the control system has been studied. An implementation of a low-order PLL circuit
that does not contain a double-frequency spurious signal at the output of the phase detector is proposed. The output characteristics
of control systems (speed, capture bandwidth, etc.) are analyzed and qualitative conclusions are drawn about the features of the interaction
between the dynamics of a mechanical oscillatory link and the PLL-ARC circuit.
Keywords
- AGC
- MEMS gyroscope
- PLL
- primary oscillations
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