Mechanical design and optimization of a suspension of multi-function sensing probes

Yanling Tian, J. Tian
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Abstract

Multi-function probing systems are of significant importance for characterization of surface properties and in situ surface topography at the micro and nanometer level. This paper presents the mechanical design and parameter optimization of the flexure-based suspension system for multi-function sensing probes. By evaluating several topological structures, the proposed threefold-symmetric beam shows the best results and is therefore preferred. Finite Element Analysis is adopted to perform the parameter optimization due to its high accuracy in modeling complex compliant systems. The FEM analysis shows that the proposed threefold-symmetric beam assembly has a working range in excess of 20 μm in Z axis, with a linear stiffness of 750 N/m in Z axis and a natural frequency of 426 Hz in Z axis. The proposed threefold-symmetric beam has wide potentials in multi-function sensing probing applications.
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多功能传感探头悬架的机械设计与优化
多功能探测系统对于表征微纳米水平的表面特性和原位表面形貌具有重要意义。介绍了多功能传感探头挠性悬架系统的机械设计和参数优化。通过对几种拓扑结构的评价,提出的三重对称梁显示出最好的结果,因此是首选的。由于有限元分析对复杂柔顺系统的建模精度较高,因此采用有限元方法进行参数优化。有限元分析表明,该三对称梁组件在Z轴上的工作范围大于20 μm, Z轴线性刚度为750 N/m, Z轴固有频率为426 Hz。所提出的三重对称光束在多功能传感探测中具有广阔的应用前景。
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