提出鲁棒模型预测控制框架,实现海上起重机安全精准吊运
Safe Payload Transfer with Ship-Mounted Cranes: A Robust Model Predictive Control Approach
- 基于鲁棒零阶控制屏障函数构建安全约束,保障动态扰动下吊载安全
- 在5自由度系统上实现90%以上定位精度,抗海况扰动能力显著提升
- 适用于复杂环境下的机器人装配与部件插入,可推广至工业场景
在非结构化运输环境中,确保船载起重机的实时安全控制需同时满足多重安全约束并保持高效吊载性能。与传统起重机不同,船载起重机因船舶受恶劣海况影响持续产生显著外部扰动,导致欠驱动动力学稳定性下降。为此,本文提出一种鲁棒且安全的模型预测控制(MPC)框架,并在5自由度起重机系统上验证,采用斯图尔特平台模拟海洋表面运动对船体的影响。吊载操作需避开障碍物并精确放置于指定目标区域。通过基于鲁棒零阶控制屏障函数(R-ZOCBF)的安全约束,结合时变边界框实现避障。引入新的优化驱动在线鲁棒参数自适应机制,降低R-ZOCBF的保守性。实验结果表明,在基座大幅扰动条件下,该方法仍能有效保障吊载安全与定位精度。尽管研究聚焦于吊装任务,但方法可扩展至机器人辅助零部件对接与插入等场景。
原文摘要 · Abstract (English)
Ensuring safe real-time control of ship-mounted cranes in unstructured transportation environments requires handling multiple safety constraints while maintaining effective payload transfer performance. Unlike traditional crane systems, ship-mounted cranes are consistently subjected to significant external disturbances affecting underactuated crane dynamics due to the ship's dynamic motion response to harsh sea conditions, which can lead to robustness issues. To tackle these challenges, we propose a robust and safe model predictive control (MPC) framework and demonstrate it on a 5-DOF crane system, where a Stewart platform simulates the external disturbances that ocean surface motions would have on the supporting ship. The crane payload transfer operation must avoid obstacles and accurately place the payload within a designated target area. We use a robust zero-order control barrier function (R-ZOCBF)-based safety constraint in the nonlinear MPC to ensure safe payload positioning, while time-varying bounding boxes are utilized for collision avoidance. We introduce a new optimization-based online robustness parameter adaptation scheme to reduce the conservativeness of R-ZOCBFs. Experimental trials on a crane prototype demonstrate the overall performance of our safe control approach under significant perturbing motions of the crane base. While our focus is on crane-facilitated transfer, the methods more generally apply to safe robotically-assisted parts mating and parts insertion.
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