用被动柔性微刺阵列提升软体机器人在复杂地形的抓握稳定性。
Improving Grip Stability Using Passive Compliant Microspine Arrays for Soft Robots in Unstructured Terrain
- 设计双排堆叠微刺阵列,被动适应不同表面。
- 实验显示平移距离平均提升8至15倍。
- 适合需攀爬或越障的野外软体机器人应用。
微刺抓取器是昆虫腿部常见的小刺结构,可通过嵌入表面凹凸不平处增强剪切力和牵引力。将微刺阵列集成到机器人四肢或底盘上,可实现不平整地形移动、斜坡穿越甚至爬墙。软体机器人的柔性和自适应性使其非常适合复杂非结构化地形的应用。然而,从实验室环境向真实场景转化时,仍面临抓握稳定性不足的问题。本文提出一种被动式、柔性微刺堆叠阵列设计,以提升移动式软体机器人的运动能力,具体针对肌腱驱动型软体机器人。我们提供标准化的微刺阵列集成方法,实现有效软-刚度融合,并通过单一执行器被动控制,降低系统复杂性。所提设计采用双排堆叠结构:顶层微刺用于极端陡峭或不规则表面的额外抓握,不影响底层更常激活部分的效能。通过测试不同配置,实现每个微刺独立适配表面形貌。在混凝土、砖块、压实沙地和树根等多种粗糙表面上进行三台机器人对比实验,包括无微刺基线组及两种微刺阵列组合。轨迹追踪结果显示,微刺阵列使平面位移平均增加15倍和8倍。
原文摘要 · Abstract (English)
Microspine grippers are small spines commonly found on insect legs that reinforce surface interaction by engaging with asperities to increase shear force and traction. An array of such microspines, when integrated into the limbs or undercarriage of a robot, can provide the ability to maneuver uneven terrains, traverse inclines, and even climb walls. Conformability and adaptability of soft robots makes them ideal candidates for these applications involving traversal of complex, unstructured terrains. However, there remains a real-life realization gap for soft locomotors pertaining to their transition from controlled lab environment to the field by improving grip stability through effective integration of microspines. We propose a passive, compliant microspine stacked array design to enhance the locomotion capabilities of mobile soft robots, in our case, ones that are motor tendon actuated. We offer a standardized microspine array integration method with effective soft-compliant stiffness integration, and reduced complexity resulting from a single actuator passively controlling them. The presented design utilizes a two-row, stacked microspine array configuration that offers additional gripping capabilities on extremely steep/irregular surfaces from the top row while not hindering the effectiveness of the more frequently active bottom row. We explore different configurations of the microspine array to account for changing surface topologies and enable independent, adaptable gripping of asperities per microspine. Field test experiments are conducted on various rough surfaces including concrete, brick, compact sand, and tree roots with three robots consisting of a baseline without microspines compared against two robots with different combinations of microspine arrays. Tracking results indicate that the inclusion of microspine arrays increases planar displacement on average by 15 and 8 times.
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