Terrain-Dependent Intra-Cycle Leg Timing for Effective Locomotion on Granular Slopes
Terrain-Dependent Intra-Cycle Leg Timing for Effective Locomotion on Granular Slopes
This paper investigates the challenges of legged robot locomotion on granular slopes, such as sand dunes, by analyzing terrain-dependent forces and failure mechanisms. Using a hexapedal robot on a tiltable granular bed, the study measures locomotion speed and slope-dependent normal and shear resistive forces. The findings reveal that performance loss is mainly due to delayed anchoring and increased backward slip, leading to the development of a predictive model for safer and more robust robot operation on deformable inclines.
Source: arXiv Robotics — research abstracts · Read original article ↗
Article text · Original source · English
arXiv:2610.04144v1 Announce Type: new Abstract: Locomotion on granular slopes such as sand dunes remains a fundamental challenge for legged robots due to reduced shear strength and gravity-induced anisotropic yielding of granular media. Using a hexapedal robot on a tiltable granular bed, we systematically measure locomotion speed together with slope-dependent normal and shear granular resistive forces. While normal penetration resistance remains nearly unchanged with inclination, shear resistance decreases substantially as slope angle increases. Guided by these measurements, we develop a simple robot-terrain interaction model that predicts anchoring timing, step length, and resulting robot speed, as functions of terrain strength and slope angle. The model reveals that slope-induced performance loss is primarily governed by delayed anchoring and increased backward slip rather than excessive sinkage. By extending the model to generalized terrain conditions, we construct failure phase diagrams that identify sinkage- and slippage-induced failure regimes, enabling quantitative risk estimation for locomotion on granular slopes. This physics-informed framework provides predictive insight into terrain-dependent failure mechanisms and offers guidance for safer and more robust robot operation on deformable inclines.
Source:arXiv Robotics — research abstracts · arxiv.org