非合作目标自主动态对接机制的姿态检测和对接控制

Gan Zhan, Zhihua Chen, Zhenyu Zhang, Jigang Zhan, Wentao Yu, Jiehao Li
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引用次数: 0

摘要

设计/方法/方法首先,所提出的动态对接控制架构使用激光传感器和电荷耦合器件摄像头来感知目标的姿态。传感器数据被映射到一个高维势场空间并进行融合,以减少检测噪声造成的干扰。其次,开发了一种基于多维空间的新势场函数,用于对接路径规划,使基于斯图尔特平台的对接机构快速收敛到锁定机构的目标轴,提高了对接状态的适应性和终端对接精度。最后,为了在最后阶段实现精确跟踪和灵活对接,该系统结合了自阻抗控制器和基于规划轨迹的阻抗控制算法。结果表明,即使目标随机移动,系统也能成功实现精确、稳定和灵活的动态对接。该研究可为无人飞行器在地面条件下的对接任务提供技术指导和参考,也可为太空对接任务(如太空模拟器对接)提供思路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Pose detection and docking control for autonomous dynamic docking mechanism with non-cooperative targets

Purpose

This study aims to address the issue of random movement and non coordination between docking mechanisms and locking mechanisms, and proposes a comprehensive dynamic docking control architecture that integrates perception, planning, and motion control.

Design/methodology/approach

Firstly, the proposed dynamic docking control architecture uses laser sensors and a charge-coupled device camera to perceive the pose of the target. The sensor data are mapped to a high-dimensional potential field space and fused to reduce interference caused by detection noise. Next, a new potential function based on multi-dimensional space is developed for docking path planning, which enables the docking mechanism based on Stewart platform to rapidly converge to the target axis of the locking mechanism, which improves the adaptability and terminal docking accuracy of the docking state. Finally, to achieve precise tracking and flexible docking in the final stage, the system combines a self-impedance controller and an impedance control algorithm based on the planned trajectory.

Findings

Extensive simulations and experiments have been conducted to validate the effectiveness of the dynamic docking system and its control architecture. The results indicate that even if the target moves randomly, the system can successfully achieve accurate, stable and flexible dynamic docking.

Originality/value

This research can provide technical guidance and reference for docking task of unmanned vehicles under the ground conditions. It can also provide ideas for space docking missions, such as space simulator docking.

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