arXiv:2605.25672cs.RO2026-05

让机器人柔性推物,安全适应人类互动。

Compliant Non-Prehensile Pushing Manipulation

论文配图:Compliant Non-Prehensile Pushing Manipulation
图 1 · 摘自论文原文
  • 用模型预测控制调节机器人位置速度,实现柔性推物。
  • 实验验证可稳定跟踪轨迹,抗物体参数变化。
  • 适合人机共融场景,尤其注重安全的协作任务。

本文研究了在人机共存环境中,通过柔性机器人系统执行非抓取式推动物体的操作挑战。为确保安全,机器人需对外部物理交互具有顺应性并表现出被动行为。为此,我们扩展了一种先进的推动物体模型,并将其与阻抗控制机器人结合,构建基于该模型的模型预测控制框架,通过最优调节机器人的位置/速度设定点,同时实现所需推力与接触点自适应,以获得期望的物体运动。然而,外部干扰可能导致跟踪误差,引发推力无限增大的风险。为此,我们引入能量罐无源性滤波器,进一步调节机器人速度设定点,保证系统无源性,防止能量无序累积。所提方法在仿真中经过严格测试,并在两种不同机器人平台上完成实验验证,结果表明其在人机交互中具备被动顺应性,且具有良好的轨迹跟踪性能和对物体物理参数变化的鲁棒性。

原文摘要 · Abstract (English)

In this paper, we address the challenge of performing non-prehensile pushing operations with a compliant robotic manipulation system. To ensure safe operations in human-populated environments, robots must comply with external physical interactions and exhibit a passive behavior. To achieve this, we extend a state-of-the-art pushing model to integrate it with impedance-controlled robots. We develop a model predictive control framework built upon this model that enables performing compliant pushing through optimal modulation of the robot's position/velocity set-point, jointly realizing the required pushing force and contact point adaptation to obtain a desired object motion. However, external interactions may induce tracking errors causing a consequent potentially indefinite increase of the pushing force. To prevent this, we integrate an energy tank passivity filter that further modulates the robot velocity set-point to guarantee passivity and avoid uncontrolled energy buildup. The proposed method has been rigorously tested in simulation and validated through experiments on two different robotic systems, demonstrating passive compliance during human-robot interactions, and assessing trajectory tracking performance and robustness to variations in the object's physical parameters.

柔性操作人机协作阻抗控制

Thank you to arXiv for use of its open access interoperability. PaperDance 不是 arXiv 官方产品;中文卡片由大模型生成,请以原文为准。