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引用次数: 1

摘要

本文介绍了mems驱动柔性结构评估平台的实验结果。结合三维柔性设计,采用控制刚度的聚合物3D打印。模块化系统设计方法允许交换和组合不同的驱动悬臂、弯曲和结构设计,以最小的装配要求作为独立的测试部件实现。性能评估方法包括同步电激励和光学位移测量,允许运动放大,动态响应以及驱动功率传输的表征。作为演示,在平台上设计、制造和测试了一个单杆柔性结构,以研究几何形状和材料刚度对性能的影响。实验结果表明,选择合适的弯曲高度和材料组合可以显著改善放大比和绝对相位滞后。这种结合实验评估和定制3D设计和打印的方法有望优化具有放大或平移运动能力的MEMS传感器,致动器和能量传感器的柔性结构设计。
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Evaluation Platform for MEMS-Actuated 3D-Printed Compliant Structures
This paper presents experimental results on an evaluation platform for MEMS-actuated compliant structures. A combination of 3 dimensional (3D) flexure design, 3D printing of polymers with controlled stiffness is employed. A modular system design approach allows the interchange and combination of different actuation cantilevers, flexures and structure designs implemented as standalone test parts with minimal assembly requirements. The performance evaluation method includes synchronised electrical excitation and optical displacement measurements, allowing characterisation of motion amplification, dynamic response as well as actuating power transfer. As a demonstrator, a single lever compliant structure was designed, fabricated and tested on the platform to investigate how geometry and material stiffness affect performance. The experimental results reveal that significant improvement of amplification ratio and absolute phase lag can be achieved by selecting a flexure height and material composition suitable for a given application. This method of combined experimental evaluation and custom 3D design and printing is promising for optimising the design of compliant structures for MEMS sensors, actuators and energy transducers with amplified or translated motion capability.
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