Low profile stretch sensor for soft wearable robotics

S. Sareh, Y. Noh
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引用次数: 5

Abstract

This paper presents a low profile stretch sensor for integration into soft structures, robots and wearables. The sensor mechanism uses a single piece of highly flexible and light weight optical fibre and is based on the notion that bending an optical fibre modulates the intensity of the light transmitted through the fibre, a technique often referred as macrobending light loss. In this arrangement, the optical fibre originates from sensor's electronic unit, passes through a stretchable encasing structure in a macrobend pattern, and then loop back to the same unit resulting in a simplified electrical and optical design; the closed optical loop allows for no electronics at one end of the sensor making it safe for human robotics applications, and no optical interference with the external environment eliminating the need for complex conditioning circuitries. Of particular interest of the soft robotics community, the ability of this custom macrobend stretch sensor to flexibly adapt its configuration allows preserving the inherent softness and compliance of the robot which it is installed on. Our experimental results indicate that the optical fibre's bending radius is the dominant design parameter for sufficiently complex patterns, a finding that can facilitate generalisation of the sensing methods across different scales. The measurement performance of the mechanism and its impact on the stiffness of the encasing structure is benchmarked against a custom calibration and testing system.
用于软可穿戴机器人的低轮廓拉伸传感器
本文提出了一种集成在软结构、机器人和可穿戴设备中的低轮廓拉伸传感器。该传感器使用一根高度柔韧且重量轻的光纤,其原理是弯曲光纤可以调节通过光纤传输的光的强度,这种技术通常被称为大弯曲光损失。在这种安排下,光纤从传感器的电子单元出发,以大弯曲模式穿过可拉伸的外壳结构,然后环路回到同一单元,从而简化了电气和光学设计;封闭的光学回路允许在传感器的一端没有电子器件,使其对人类机器人应用安全,并且不会与外部环境产生光学干扰,从而消除了对复杂调理电路的需要。软机器人社区特别感兴趣的是,这种定制的大弯曲拉伸传感器能够灵活地适应其配置,从而保持其安装的机器人的固有柔软性和顺应性。我们的实验结果表明,对于足够复杂的图案,光纤的弯曲半径是主要的设计参数,这一发现有助于在不同尺度上推广传感方法。该机构的测量性能及其对封装结构刚度的影响是根据自定义校准和测试系统进行基准测试的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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