arXiv:2508.07323cs.ROcs.SY2025-08被引 2

用能量场方法解决机械臂避障轨迹规划难题

Collision-Free Trajectory Planning and control of Robotic Manipulator using Energy-Based Artificial Potential Field (E-APF)

  • 引入位置速度耦合的能量势场,避免局部最优
  • 生成无振荡、平滑且快速的避障轨迹
  • 适合需要实时避障的工业机械臂场景

在动态复杂环境中,机械臂轨迹规划仍面临时间效率与运动平滑性之间的挑战,尤其在执行机构约束下。传统人工势场法(APF)虽计算高效,但因基于位置的势场函数易陷入局部极小,并因牛顿力学导致障碍物附近出现振荡运动。本文提出一种基于能量的人工势场(E-APF)框架,融合位置与速度依赖的势场函数,提升动态适应性并有效规避局部极小,确保向目标连续前进。该框架结合混合轨迹优化器,在速度与加速度约束下联合最小化加加速度(jerk)与执行时间,保障轨迹几何平滑与时间高效。在7自由度Kinova Gen3机械臂仿真中验证,结果表明在障碍物存在时仍能生成无碰撞、无振荡、平滑且高效的轨迹,充分验证了轨迹优化与实时避障相结合的有效性。本工作为未来与反应式控制策略及真实硬件部署集成奠定基础。

原文摘要 · Abstract (English)

Robotic trajectory planning in dynamic and cluttered environments remains a critical challenge, particularly when striving for both time efficiency and motion smoothness under actuation constraints. Traditional path planner, such as Artificial Potential Field (APF), offer computational efficiency but suffer from local minima issue due to position-based potential field functions and oscillatory motion near the obstacles due to Newtonian mechanics. To address this limitation, an Energy-based Artificial Potential Field (APF) framework is proposed in this paper that integrates position and velocity-dependent potential functions. E-APF ensures dynamic adaptability and mitigates local minima, enabling uninterrupted progression toward the goal. The proposed framework integrates E-APF with a hybrid trajectory optimizer that jointly minimizes jerk and execution time under velocity and acceleration constraints, ensuring geometric smoothness and time efficiency. The entire framework is validated in simulation using the 7-degree-of-freedom Kinova Gen3 robotic manipulator. The results demonstrate collision-free, smooth, time-efficient, and oscillation-free trajectory in the presence of obstacles, highlighting the efficacy of the combined trajectory optimization and real-time obstacle avoidance approach. This work lays the foundation for future integration with reactive control strategies and physical hardware deployment in real-world manipulation tasks.

机械臂轨迹规划避障能量场

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