空气耦合侧向致动静电体模微机电系统的等效电路建模

Tony Merrien;Pierre Didier;Emmanuelle Algré
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摘要

本文描述了超声横向传导静电体模空气耦合谐振微机电系统(MEMS)的线性叠加元件等效电路模型(ECM)。单晶硅 (SCS) 方板与 T 形拴绳被视为具有单面静电驱动的相关几何形状。这种传感器可用于空气颗粒的灵敏质量传感,并具有较大的活动表面,在超声波频率范围内具有面内振动模式。首先,利用分析方程获得了问题的特征解和特征向量,并与有限元建模(FEM)解进行了比较。其次,通过模态分析,减少了自由度的数量,并为每种振动模式提供了单独的解决方案,从而得出各种有效质量、刚度和阻尼。通过对施加在谐振器上的电流方程和静电力进行一阶泰勒展开,可以获得与膜致动相关的附加刚度和电动机械转换系数的表达式。根据这些结果,利用电子机械和巴特沃斯-范戴克(BVD)方法建立了单输入单输出(SISO)等效电路。不同面内振动模式产生的电导纳模拟结果与有限元模拟结果非常吻合。最后,描述了一个数值质量传感应用,以评估模型和谐振器设计作为微天平的相关性。所提出的模型可用于设计、预测、分析和优化高灵敏度空气耦合超声波体模 SCS MEMS 的行为,适用于各种物理应用。
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Equivalent Circuit Modeling of Air-Coupled Laterally Actuated Electrostatic Bulk-Mode MEMS
In this paper, a linear lumped-element equivalent circuit model (ECM) for ultrasonic laterally transduced electrostatic bulk-mode air-coupled resonant micro-electro-mechanical systems (MEMS) is described. A single-crystal silicon (SCS) square plate with T-shaped tethers is considered as the geometry of interest with a one-sided electrostatic actuation. This type of sensor can be used for sensitive mass sensing of airborne particles and possesses a large active surface with in-plane vibration modes in the ultrasonic frequency range. Firstly, the eigensolutions and eigenvectors of the problem are obtained using analytical equations and compared with finite-element modeling (FEM) solutions. Secondly, using modal analysis, the number of degrees of freedom is reduced and individual solutions are provided for each vibration mode, leading to various effective masses, stiffnesses and dampings. The first order Taylor expansion of both the electrical current equation and the electrostatic force applied on the resonator allows one to obtain expressions for the additional stiffness and the electro-mechanical transformation coefficient linked to the membrane actuation. Based on theses results, single-input single output (SISO) equivalent circuits are established using electro-mechanical and Butterworth-Van Dyke (BVD) approaches. Electrical admittance simulations resulting from different in-plane vibration modes are proven to be in excellent agreement with FEM simulations. Finally, a numerical mass sensing application is described to evaluate the relevance of both the model and the resonator design to act as a microbalance. The proposed model can be used to design, predict, analyze and optimize the behavior of highly sensitive air-coupled ultrasonic bulk-mode SCS MEMS for various physical applications.
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