在康复和评估期间,用于物理人机交互的2DOF球形5巴外骨架的阻抗控制
概括
这项研究为THINGER机器人外骨架引入了一种新的阻抗控制器,通过在人机交互期间实现接近零阻抗来改善康复,从而实现更流,更响应的运动.
科学领域:
- 机器人技术 机器人技术 机器人技术
- 康复工程 康复工程 康复工程
- 人与机器人的交互
背景情况:
- 在康复中,物理人机交互 (pHRI) 需要精确的阻抗控制.
- 现有的控制器在复杂的交互过程中可能会表现出响应能力和稳定性的局限性.
研究的目的:
- 为THINGER (指识别抓取运动机器人) 外骨架推出了一种新的阻抗控制器.
- 在康复任务中实现接近零阻抗,以增强人机物理交互.
主要方法:
- 开发了一种新的阻抗控制器,忽略了自由移动的参考轨迹.
- 通过和函数,在执行器极限附近实现了减少的力反收益.
- 整合了基于操纵性的定向力反收益,以改善阻抗同otropy.
主要成果:
- 控制器在受试者发起的运动中显著降低了阻抗.
- 实验验证证明了对所需的同位素低阻抗环境的准确染.
- 该系统在干扰时显示出更好的响应能力和减轻振荡.
结论:
- 新型阻抗控制器有效地实现了机器人外骨架的低阻抗物理人机交互.
- 这一进步有可能提高机器人辅助康复和评估的有效性.
- 控制器的功能增强了pHRI应用中的安全性,响应性和稳定性.
相关概念视频
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