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Rapid Prototyping of Inertial MEMS Devices through Structural Optimization

机译:通过结构优化的惯性MEMS器件的快速原型设计

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摘要

In this paper, we propose a novel design and optimization environment for inertial MEMS devices based on a computationally efficient schematization of the structure at the a device level. This allows us to obtain a flexible and efficient design optimization tool, particularly useful for rapid device prototyping. The presented design environment—feMEMSlite—handles the parametric generation of the structure geometry, the simulation of its dynamic behavior, and a gradient-based layout optimization. The methodology addresses the design of general inertial MEMS devices employing suspended proof masses, in which the focus is typically on the dynamics associated with the first vibration modes. In particular, the proposed design tool is tested on a triaxial beating-heart MEMS gyroscope, an industrially relevant and adequately complex example. The sensor layout is schematized by treating the proof masses as rigid bodies, discretizing flexural springs by Timoshenko beam finite elements, and accounting for electrostatic softening effects by additional negative spring constants. The MEMS device is then optimized according to two possible formulations of the optimization problem, including typical design requirements from the MEMS industry, with particular focus on the tuning of the structural eigenfrequencies and on the maximization of the response to external angular rates. The validity of the proposed approach is then assessed through a comparison with full FEM schematizations: rapidly prototyped layouts at the device level show a good performance when simulated with more complex models and therefore require only minor adjustments to accomplish the subsequent physical-level design.
机译:在本文中,我们提出了一种基于设备级结构的计算有效的惯性MEMS器件的新颖设计和优化环境。这使我们能够获得灵活高效的设计优化工具,特别适用于快速设备原型设计。呈现的设计环境 - Fememslite - 处理结构几何的参数生成,模拟其动态行为,以及基于梯度的布局优化。该方法一般地址惯性MEMS器件的设计采用悬浮质量块,其中,所述焦点通常位于与第一振动模式相关联的动态。特别地,所提出的设计工具在三轴跳动心脏MEMS陀螺仪上测试,工业相关和充分复杂的例子。传感器布局通过用刚性体处理检测质量,通过Timoshenko梁有限元分开弯曲弹簧,并通过附加的负弹簧常数占静电软化效果。然后根据优化问题的两种可能的制剂进行优化MEMS器件,包括来自MEMS行业的典型设计要求,特别侧重于结构特征频道的调整以及对外部角度率的响应的最大化。然后通过与全部有限元素符号的比较进行评估所提出的方法的有效性:在使用更复杂的模型的模拟时,设备级别的快速原型布局显示出良好的性能,因此只需要微小的调整以完成随后的物理级设计。

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