arXiv:2607.11855cs.RO2026-07

通过可调足部结构增强机器人在流质斜坡上的行走稳定性

Robust bipedal locomotion on flowable slopes via foot-driven terrain manipulation

论文配图:Robust bipedal locomotion on flowable slopes via foot-driven terrain manipulation
图 1 · 摘自论文原文
  • 用可调节鞋钉间距的足部设计控制地面形变,避免过度塌陷或阻力过大
  • 中等鞋钉间距使地基应力接近屈服阈值,在30度斜坡上实现稳定行走
  • 方法适用于1.4公斤到15公斤的机器人,适合复杂地形自主移动场景

双足机器人因运行接近失稳状态而难以控制,微小的足-地接触变化可能迅速导致失稳。在刚性地面上,可通过成熟的接触力学与控制策略缓解此问题。但在颗粒状流质斜坡上,足部接触会引发显著的地表形变及固液态转换,使地形效应与机器人动力学耦合,导致性能下降甚至失败。这主要源于缺乏可靠的流质地形动态建模方法,难以在运动设计中考虑地形影响。本文研究了带齿足部(cleated feet)的地形动力学特性,通过小型(1.4公斤)仿生双足机器人系统实验发现:稀疏和密集鞋钉间距分别导致过度地形屈服和过高阻力,损害性能并引发失败。中等间距能有效分布作用力,使基底应力维持在(或低于)屈服阈值,从而实现在高达30度颗粒斜坡上的行走。基于此原理,我们设计出可主动调节鞋钉深度、适配刚性与颗粒地形的足部结构。此外,该方法成功拓展至更大型(15公斤)自主双足机器人。本研究提出一种以肢体为中心的控制新范式,替代传统以身体为中心通过姿态调节来抵消地形扰动的方法,转而通过调控足-地交互实现鲁棒行走。

原文摘要 · Abstract (English)

Bipedal robots are challenging to control because they operate close to instability, where small variations in foot-terrain contact can rapidly destabilize locomotion. On rigid terrain, bipedal robots mitigate this fragility by using well-established contact mechanics and control strategies. On flowable surfaces such as granular slopes, foot contact can induce large surface deformations and solid-fluid-like transitions, coupling terrain effects with robot dynamics, leading to underperformance or failure. This is partly due to the lack of reliable methods to represent the dynamics of flowable terrain, making it difficult to account for terrain effects in locomotion design. Here, we investigate how controlling terrain response can improve bipedal locomotion on granular slopes by studying the terradynamics of cleated feet, thin plates emanating from the foot soles. Systematic studies of a small-scale (1.4 kg) robophysical biped reveal that cleats with sparse and dense spacing lead to excessive terrain yielding and resistance, respectively, degrading performance and leading to failure. An intermediate cleat spacing distributes interaction forces to maintain substrate stresses near (or below) the yield threshold, enabling walking on granular slopes up to 30 degrees. Guided by these principles, we design a foot that actively adjusts cleat depth and accommodates both rigid and granular terrain. We also demonstrate that the principles of effective foot-terrain interaction translate to a larger (15 kg) autonomous biped. Our study presents an alternative to conventional body-centric robot control approaches, which regulate terrain-induced effects through body motion, by instead regulating terrain interactions through limb-centric approach.

双足行走地形适应仿生机器人足部设计

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