人形机器人驱动控制关键技术研究现状与展望
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TP242.6

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Research on status and prospect of humanoid robot and its driving key technologies
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    摘要:

    人形机器人是机器人领域的研究热点, 其类人结构展现出优异的人类环境适应性, 能够实现复杂场景的高效作业, 可以在工业、服务、救援、医疗等场景中辅助或替代人工作业, 是能够对产业发展产生颠覆性影响的技术. 然而, 人形机器人高集成度系统设计和高动态性运动的需求, 对驱动控制技术提出了全新的挑战. 鉴于此, 首先结合具体案例分别介绍电机与液压两种驱动形式的人形机器人的发展历程, 总结各自的特点; 然后从驱动器和驱动控制算法上梳理驱动技术的研究现状, 着重介绍电机驱动器、液压驱动器及其对应的控制算法; 接着阐述人形机器人主流的运动控制方法, 详细介绍基于简化模型、基于稳定判据和基于学习策略的3种运动控制方法; 最后从人形机器人的电机驱动高功率化、“骨骼血管”一体化、电动静液作动器模块化等3个方面总结人形机器人发展面临的挑战及发展展望.

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    Humanoid robots represent a prominent area of robotics research. Their human-like structure grants them excellent adaptability to human-centric environments, and their high flexibility enables operation in complex scenarios where traditional robots cannot function. These capabilities position them to replace human labor in medical, industrial, and heavy-load applications, potentially having a transformative impact on industrial supply chains. However, the requirements for highly integrated systems and dynamic motion control pose significant challenges to the development of humanoid robots and their driving technologies. This paper begins by reviewing the current development of motor-driven and hydraulic-driven humanoid robots, summarizing their respective characteristics. Secondly, it examines the state-of-the-art in driving technology, focusing on both hardware drivers (motor and hydraulic) and control algorithms. Furthermore, the paper outlines mainstream motion control methods, detailing three primary approaches based on simplified models, stability criteria, and learning strategies. Finally, it discusses future challenges and prospects, concentrating on three key areas: high-power-density motor drives, the integration of structural and hydraulic systems (analogous to "bones and blood vessels"), and the modularization of electro-hydrostatic actuator.

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李新宇,高艺平,罗世林,等.人形机器人驱动控制关键技术研究现状与展望[J].控制与决策,2026,41(8):2065-2077

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  • 收稿日期:2025-09-05
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  • 在线发布日期: 2026-07-13
  • 出版日期: 2026-08-10
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