Agrawal Deepak K, Woodhouse Jim, Seshia Ashwin A
IEEE Trans Ultrason Ferroelectr Freq Control. 2013 Aug;60(8):1646-59. doi: 10.1109/TUFFC.2013.2747.
We present a mathematical model of a microelectromechanical system (MEMS) oscillator that integrates the nonlinearities of the MEMS resonator and the oscillator circuitry in a single numerical modeling environment. This is achieved by transforming the conventional nonlinear mechanical model into the electrical domain while simultaneously considering the prominent nonlinearities of the resonator. The proposed nonlinear electrical model is validated by comparing the simulated amplitude-frequency response with measurements on an open-loop electrically addressed flexural silicon MEMS resonator driven to large motional amplitudes. Next, the essential nonlinearities in the oscillator circuit are investigated and a mathematical model of a MEMS oscillator is proposed that integrates the nonlinearities of the resonator. The concept is illustrated for MEMS transimpedance-amplifier- based square-wave and sine-wave oscillators. Closed-form expressions of steady-state output power and output frequency are derived for both oscillator models and compared with experimental and simulation results, with a good match in the predicted trends in all three cases.
我们提出了一种微机电系统(MEMS)振荡器的数学模型,该模型在单一数值建模环境中整合了MEMS谐振器和振荡器电路的非线性特性。这是通过将传统的非线性力学模型转换到电学领域,同时考虑谐振器的显著非线性特性来实现的。通过将模拟的幅频响应与在驱动至大运动幅度的开环电寻址挠性硅MEMS谐振器上的测量结果进行比较,验证了所提出的非线性电学模型。接下来,研究了振荡器电路中的基本非线性特性,并提出了一个整合谐振器非线性特性的MEMS振荡器数学模型。针对基于MEMS互阻放大器的方波和正弦波振荡器阐述了这一概念。推导了两种振荡器模型的稳态输出功率和输出频率封闭形式表达式,并与实验和仿真结果进行比较,在所有三种情况下预测趋势均匹配良好。