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Model Validation and Performance Prediction in the Design of Micro Systems

机译:微型系统设计中的模型验证和性能预测

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Micro Electro Mechanical Systems are among the new and emerging technologies of the future and have many applications in different disciplines. Predicting the performance of such systems early in the design process can significantly impact the design cost and also improve the quality of the design. This study presents the model validation techniques integrated with some design methodologies to predict the performance of the micro systems. A two-dimensional micro scanner mirror was chosen as the case study to demonstrate the developed methodologies. The model validation methodology includes the verification of the finite element model using an experimental modal analysis setup for measuring the out-of-plane vibrations of the micro devices. The setup includes a laser doppler vibrometer, a microscope, a camera, a laser positioning system, and a data acquisition system to acquire the data. An experimental procedure was developed to collect the vibration data and then modal analysis was performed to determine the modal frequencies, mode shapes, and modal damping coefficients. The finite element analysis and experimental results were compared to identify the inaccuracies in the modeling assumptions. A validated finite element model was used to obtain the state space representation of the micro scanner mirror to proceed further with additional design studies. The state space model was used for disturbance analysis that was performed using Lyapunov approach to obtain root mean square values of the mirror rotation angle under the effect of a disturbance torque. The disturbance analysis framework was combined with the sensitivity analysis to determine the critical design parameters for improving the system performance. In addition to the disturbance sensitivity analysis, modal sensitivities of the design parameters were also investigated. This analysis was performed by perturbing the design parameters and investigating the change in the modal frequencies.
机译:微机电系统是未来的新兴技术,并且在不同学科中有许多应用。在设计过程的早期预测此类系统的性能可能会极大地影响设计成本,并提高设计质量。这项研究提出了与某些设计方法集成在一起的模型验证技术,以预测微系统的性能。选择了二维微扫描仪镜作为案例研究,以证明所开发的方法。模型验证方法包括使用实验模态分析设置对有限元模型进行验证,以测量微型设备的平面外振动。该设置包括激光多普勒测振仪,显微镜,照相机,激光定位系统和数据采集系统以采集数据。开发了一个实验程序来收集振动数据,然后进行模态分析以确定模态频率,模态形状和模态阻尼系数。比较了有限元分析和实验结果,以识别建模假设中的不准确性。经过验证的有限元模型用于获得微扫描仪镜的状态空间表示,以便进一步进行其他设计研究。使用状态空间模型进行干扰分析,该分析使用Lyapunov方法执行,以在干扰扭矩的作用下获得反射镜旋转角的均方根值。干扰分析框架与灵敏度分析相结合,以确定改善系统性能的关键设计参数。除了干扰灵敏度分析之外,还研究了设计参数的模态灵敏度。通过扰动设计参数并调查模态频率的变化来执行此分析。

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