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综述:仿生设计与制造触须式触觉传感器的最新进展

Review of Recent Bio-Inspired Design and Manufacturing of Whisker Tactile Sensors.

机构信息

Department of Mechanical Engineering, King Fahd University of Petroleum and Minerals, Dhahran 31261, Saudi Arabia.

Interdisciplinary Research Center for Intelligent Manufacturing and Robotics, King Fahd University of Petroleum and Minerals, Dhahran 31261, Saudi Arabia.

出版信息

Sensors (Basel). 2022 Apr 1;22(7):2705. doi: 10.3390/s22072705.

Abstract

Whisker sensors are a class of tactile sensors that have recently attracted attention. Inspired by mammals' whiskers known as mystacial vibrissae, they have displayed tremendous potential in a variety of applications e.g., robotics, underwater vehicles, minimally invasive surgeries, and leak detection. This paper provides a supplement to the recent tactile sensing techniques' designs of whiskers that only sense at their base, as well as the materials employed, and manufacturing techniques. The article delves into the technical specifications of these sensors, such as the resolution, measurement range, sensitivity, durability, and recovery time, which determine their performance. The sensors' sensitivity varies depending on the measured physical quantity; for example, the pressure sensors had an intermediate sensitivity of 58%/Pa and a response time of around 90 ms, whereas the force sensors that function based on piezoelectric effects exhibited good linearity in the measurements with a resolution of 3 µN and sensitivity of 0.1682 mV/µN. Some sensors were used to perform spatial mapping and the identification of the geometry and roughness of objects with a reported resolution of 25 nm. The durability and recovery time showed a wide range of values, with the maximum durability being 10,000 cycles and the shortest recovery time being 5 ms. Furthermore, the paper examines the fabrication of whiskers at the micro- and nanoscales, as well as their contributions to mechanical and thermal behavior. The commonly used manufacturing techniques of 3D printing, PDMS casting, and screen printing were used in addition to several micro and nanofabrication techniques such as photolithography, etching, and chemical vapor deposition. Lastly, the paper discusses the main potential applications of these sensors and potential research gaps in this field. In particular, the operation of whisker sensors under high temperatures or high pressure requires further investigation, as does the design of sensors to explore larger topologies.

摘要

触须传感器是一类最近受到关注的触觉传感器。它们受到哺乳动物称为触须的启发,在各种应用中显示出巨大的潜力,例如机器人技术、水下车辆、微创手术和泄漏检测。本文提供了对仅在其基部感应的触须的最近触觉传感技术设计以及所使用的材料和制造技术的补充。文章深入探讨了这些传感器的技术规格,例如分辨率、测量范围、灵敏度、耐用性和恢复时间,这些规格决定了它们的性能。传感器的灵敏度取决于所测量的物理量;例如,压力传感器的灵敏度为 58%/Pa,响应时间约为 90ms,而基于压电效应的力传感器在测量中表现出良好的线性度,分辨率为 3µN,灵敏度为 0.1682mV/µN。一些传感器用于执行空间映射和识别物体的几何形状和粗糙度,分辨率为 25nm。耐用性和恢复时间的值范围很宽,最大耐用性为 10000 个循环,最短恢复时间为 5ms。此外,本文还研究了在微观和纳米尺度上制造触须以及它们对机械和热行为的贡献。除了光刻、蚀刻和化学气相沉积等几种微纳制造技术外,还使用了 3D 打印、PDMS 铸造和丝网印刷等常用制造技术。最后,本文讨论了这些传感器的主要潜在应用以及该领域的潜在研究差距。特别是需要进一步研究触须传感器在高温或高压下的运行情况,以及设计能够探索更大拓扑结构的传感器。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/99af/9003453/5ebc1735c4d6/sensors-22-02705-g001.jpg

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