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Biomimetic strain-sensing microstructure for improved strain sensor: fabrication results and optical characterization

机译:用于改进应变传感器的仿生应变传感微观结构:制造结果和光学特性

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摘要

This paper describes the fabrication, and early optical characterization results of a new biomimetic strain-sensing microstructure. The microstructures were inspired from the campaniform sensillum, a highly sensitive strain sensor found in the exocuticle layer of insects. We investigate the natural strain-sensor characteristics by mimicking some of its simplest structural features. Blind-hole- and membrane-structural features were combined and fabricated as membrane-in-recess microstructure. To investigate the strain-sensing (or strain-amplifying) property of the microstructure, an optical characterization setup was devised based on the interference pattern formed by reflected laser beams from different surfaces of the microstructures. Preliminary qualitative analysis of the results obtained shows unsimilar intensity level changes as a function of spatial location on the membrane, thus indicated the biomimetic microstructure's strain-Amplifying property. This property could be utilized for future improvement of currently available planar-based conventional strain sensors.
机译:本文介绍了新型仿生应变传感微结构的制造和早期光学表征结果。微观结构的灵感来自钟形昆虫,这是一种在昆虫表皮层发现的高度敏感的应变传感器。我们通过模仿一些最简单的结构特征来研究自然应变传感器的特性。组合了盲孔和膜结构特征,并制成了隐膜式微结构。为了研究微结构的应变感测(或应变放大)特性,基于由来自微结构不同表面的反射激光束形成的干涉图样,设计了一种光学表征装置。对所得结果进行的初步定性分析表明,强度水平的变化随膜上空间位置的变化而变化,从而表明仿生微结构的应变放大特性。此特性可用于将来改进当前可用的基于平面的常规应变传感器。

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