arXiv:2503.13919cs.RO2025-03ICRA被引 2

仿生沙地滚动机器人,通过优化体型提升在沙地上的稳定性和速度。

A bio-inspired sand-rolling robot: effect of body shape on sand rolling performance

  • 基于蝾螈卷身滚动的生物启发设计,测试三种体形的沙地滚动表现。
  • 三角与六边形体形速度更快,但易卡住;优化后速度提升超200%。
  • 揭示沙地卡滞机制,为柔性地形机器人设计提供关键指导。

在复杂地形(如沙地和碎石)上高效移动的能力可使机器人在户外环境中稳健运行,并支持环境监测、搜救及物资投送等关键任务。受莱尔山蝾螈将身体卷成环状并有效沿山坡滚动的启发,本研究开发了一款沙地滚动机器人,探究其体形如何影响运动性能。实验测试了三种不同体形:六边形、四边形和三角形。结果发现,六边形与三角形在沙地上可实现更快速度,但频繁出现卡滞现象。对机器人与沙土相互作用的分析揭示了失效机理:沙土变形在机器人接触段下方形成局部‘沙坡’,增大了支撑多边形有效区域(ERSP),导致重心无法移出该区域以维持持续滚动。基于此机制,提出一个高度简化的模型,准确预测各体形实现持续滚动所需的关键俯仰角,并指导设计改进,使机器人速度提升超过200%。研究为利用不同形态特征在可变形地表实现稳定滚动提供了重要见解。

原文摘要 · Abstract (English)

The capability of effectively moving on complex terrains such as sand and gravel can empower our robots to robustly operate in outdoor environments, and assist with critical tasks such as environment monitoring, search-and-rescue, and supply delivery. Inspired by the Mount Lyell salamander's ability to curl its body into a loop and effectively roll down {\Revision hill slopes}, in this study we develop a sand-rolling robot and investigate how its locomotion performance is governed by the shape of its body. We experimentally tested three different body shapes: Hexagon, Quadrilateral, and Triangle. We found that Hexagon and Triangle can achieve a faster rolling speed on sand, but exhibited more frequent failures of getting stuck. Analysis of the interaction between robot and sand revealed the failure mechanism: the deformation of the sand produced a local ``sand incline'' underneath robot contact segments, increasing the effective region of supporting polygon (ERSP) and preventing the robot from shifting its center of mass (CoM) outside the ERSP to produce sustainable rolling. Based on this mechanism, a highly-simplified model successfully captured the critical body pitch for each rolling shape to produce sustained rolling on sand, and informed design adaptations that mitigated the locomotion failures and improved robot speed by more than 200$\%$. Our results provide insights into how locomotors can utilize different morphological features to achieve robust rolling motion across deformable substrates.

仿生机器人沙地运动形态设计

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