arXiv:2607.00571cs.RO2026-07

用物理阻尼结构提升机器人接触稳定性,减少振动与误差。

Enhancing Robustness in Robot-Environment Interactions through Passive Compliant Degrees of Freedom: A Hybrid Position-Force Control Approach with Feedback Linearization

  • 在末端添加弹簧阻尼器,被动吸收碰撞能量
  • 相比刚性结构,力与速度误差降低超25%
  • 适合需要稳定接触的动态环境任务

在动态或非结构化环境中,机器人与环境交互常受冲击、振动及接触几何与力学特性不确定性影响。本文提出一种融合反馈线性化混合位置-力控制与末端被动柔顺自由度的交互架构。与传统依赖主动反馈、力传感和增益调节的方法不同,该架构通过物理弹簧-阻尼接口,在接触点存储并耗散冲击能量,防止高频冲击传播至驱动关节和力控回路。在MATLAB/Simulink中对2-自由度平面机械臂进行评估,对比刚性、仅弹簧、弹簧-阻尼三种末端配置。在固定与时变交互条件下,弹簧-阻尼配置显著降低接触引起的振荡,力与速度误差方差更小,关节转矩响应更平稳。典型结果包括:固定环境切向力误差标准差降低36.5%,时变环境法向力误差标准差降低25.4%,时变环境法向速度误差标准差降低41.1%。

原文摘要 · Abstract (English)

Robot-environment interactions in dynamic or unstructured settings are often degraded by impact shocks, vibrations, and uncertainties in contact geometry and mechanical properties. This paper proposes an interaction architecture that combines feedback-linearized hybrid position-force control with a passive compliant degree of freedom embedded at the end-effector. Unlike conventional hybrid position-force control, which relies mainly on active feedback, force sensing, and gain tuning, the proposed architecture uses a physical spring-damper interface to store and dissipate impact energy at the contact point before high-frequency shocks propagate to the actuated joints and force-control loop. The approach is evaluated in MATLAB/Simulink on a 2-DOF planar manipulator with three end-effector configurations: rigid, spring-only, and spring-damper. Results under fixed and time-varying interaction conditions show that the spring-damper configuration provides stronger attenuation of contact-induced oscillations, lower force and velocity error variance, and smoother joint-torque response. Representative reductions include 36.5% in fixed-environment tangential force-error standard deviation, 25.4% in variable-environment normal force-error standard deviation, and 41.1% in variable-environment normal velocity-error standard deviation.

机器人交互柔顺控制力控阻尼设计

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