非完整系统
移动机器人
加速度
控制理论(社会学)
地形
计算机科学
控制工程
机器人
车辆动力学
适应(眼睛)
运动规划
运动控制
控制(管理)
机器人运动学
运动(物理)
最优化问题
最优控制
系统动力学
工程类
控制系统
控制器(灌溉)
机器人控制
弹道
模拟
作者
Xu Zhilin,Xuebo Yang,Meiling Hu,Hanlin Dong
标识
DOI:10.1109/tase.2025.3649175
摘要
This paper proposes a novel dynamic model and a locomotion framework based on it for nonholonomic wheeled mobile robots (NWMR) with a general configuration. The general configuration is established on a nonholonomically constrained wheeled mobile platform driven by two motors, into which a 3-DoFs waist-leg mechanism, a torso, and a 7-DoFs dual-arm system are integrated. Based on this configuration, a novel terrain-adaptive NWMR dynamics model (TAND) is formulated to operate on arbitrary inclined planes, which unifies the dynamic equations of NWMRs with those of conventional 6-DoFs floating-base robots. Consequently, traditional 3-DoFs floating-base NWMR dynamic models are encompassed as specific cases within the proposed TAND. Furthermore, by incorporating hierarchical optimization-based whole-body control (HOWBC) with TAND, a terrain-adaptive HOWBC (TAHC) is introduced, enabling the achievement of motion tracking, posture maintenance, and manipulability optimization (MTO) across varied terrains. For the MTO sub-task, a new whole-body manipulability index specifically designed for NWMR is proposed, and gradient optimization methods at the acceleration level are applied to enhance it. The proposed TAND, MTO, and TAHC are validated through comprehensive simulations, demonstrating their effectiveness in enabling coordinated locomotion across different terrains.
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