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Designing piezoresistive plate-based sensors with distribution of piezoresistive material using topology optimization

机译:使用拓扑优化设计具有压阻材料分布的压阻板式传感器

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摘要

Piezoresistive sensors are commonly made of a piezoresistive membrane attached to a flexible substrate, a plate. They have been widely studied and used in several applications. It has been found that the size, position and geometry of the piezoresistive membrane may affect the performance of the sensors. Based on this remark, in this work, a topology optimization methodology for the design of piezoresistive plate-based sensors, for which both the piezoresistive membrane and the flexible substrate disposition can be optimized, is evaluated. Perfect coupling conditions between the substrate and the membrane based on the layerwise theory for laminated plates, and a material model for the piezoresistive membrane based on the solid isotropic material with penalization model, are employed. The design goal is to obtain the configuration of material that maximizes the sensor sensitivity to external loading, as well as the stiffness of the sensor to particular loads, which depend on the case (application) studied. The proposed approach is evaluated by studying two distinct examples: the optimization of an atomic force microscope probe and a pressure sensor. The results suggest that the performance of the sensors can be improved by using the proposed approach.
机译:压阻传感器通常由连接至柔性基板(板)的压阻膜制成。它们已被广泛研究并用于多种应用中。已经发现,压阻膜的尺寸,位置和几何形状可能影响传感器的性能。基于这一点,在这项工作中,评估了一种用于压阻板式传感器设计的拓扑优化方法,该方法可同时优化压阻膜和柔性基板的布置。基于层合板的分层理论,确定了基底与膜之间的理想耦合条件,并基于具有罚分模型的基于固体各向同性材料的压阻膜材料模型。设计目标是获得一种材料配置,以使传感器对外部负载的灵敏度最大化,以及传感器对特定负载的刚度,具体取决于所研究的案例(应用)。通过研究两个不同的示例来评估所提出的方法:优化原子力显微镜探针和压力传感器。结果表明,使用所提出的方法可以提高传感器的性能。

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