对符合下肢外骨架的高扭矩密度关节的设计和控制方法的调查
Jingbo Xu1,2, Silu Chen2, Shupei Li2
1School of Medical Devices, Zhejiang Pharmaceutical University, Ningbo 315500, China.
Sensors (Basel, Switzerland)
|July 12, 2025
概括
本研究审查了下肢辅助外骨,重点是优化联合设计和控制,以改善人类辅助. 关键领域包括非弹性执行,强大的电机和符合控制以提高性能.
科学领域:
- 机器人技术 机器人技术 机器人技术
- 生物力学 生物力学
- 机械工程 机械工程
背景情况:
- 下肢辅助外骨架对于人类的增强至关重要.
- 外骨关节需要高扭矩和低重量才能达到最佳功能.
- 与弹性系统相比,非弹性近似直动驱动提供了优越的动态性能和减轻的重量.
研究的目的:
- 审查和分析下肢辅助外骨架关节的综合设计.
- 为优化外骨架关节性能确定发展前景.
- 探索驱动器,电机技术和控制策略方面的进步.
主要方法:
- 文献审查和对当前外骨架关节设计的分析.
- 弹性与非弹性执行系统的比较.
- 检查永磁同步电机 (PMSM) 在机器人技术中的应用.
- 讨论合规的控制算法 (阻抗,容量).
主要成果:
- 非弹性近似直动驱动因其动态性能和轻量化特性而受到青.
- 永久磁铁同步电机对于高输出扭矩和紧设计至关重要.
- 优化扭矩密度,波纹扭矩,效率和热管理是电机性能的关键.
- 合规的控制策略增强了关节的灵活性和人机交互.
结论:
- 考虑机制结构和控制算法的综合设计方法是必不可少的.
- 未来的开发应该专注于优化这些综合的方面,以获得卓越的外骨性能.
- 驱动,运动技术和控制方面的进步有望为下肢辅助外骨架提供增强的能力.
关键词:
外骨架 (exoskeleton) 是一个外骨架.灵活的关节灵活的关节灵活的关节调驱动器的调和驱动器人与机器人的交互阻抗控制控制阻抗控制控制阻抗控制阻抗控制阻抗控制永久磁铁同步电机 永磁同步电机系列弹性执行器执行器扭矩电机的扭矩电机是什么更多相关视频
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