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Passivity Based Control in Bipedal Locomotion

Passivity Based Control in Bipedal Locomotion
双足运动中基于被动的控制
批准号:
0510119
负责人:
Mark Spong
金额:
$0.0万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2005
资助国家:
美国
项目状态:
已结题
起止时间:
2005-09-01 至 2008-08-31

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中文摘要
翻译
摘要本计画主要研究以被动性为基础的双足机器人运动控制。近年来,基于无源性的控制已被证明是机电系统控制的最强大的设计方法之一,如机器人操纵器,水下航行器,感应电动机,汽车和航空航天系统等。除了少数例外,这些方法在步行机器人和其他有影响的系统中的应用还没有得到充分的研究。 该项目将探讨几个扩展的双足运动的背景下,被动基于混合非线性控制。该项目将研究速度调节,使用交替势函数来增加稳定极限环的吸引域,基于无源性的控制中控制饱和和欠驱动的影响,以及基于无源性的控制方法与真实能量最优控制相比的效率。它还将研究基于被动控制的步态过渡,包括启动和停止。该项目的目标和技术优点是通过分析、开发新概念和设计可证明正确的控制算法来帮助巩固该领域的基础。 该项目的另一个方面是将基于无源性的分析和控制的理论工具与人类主体的平衡和运动研究相结合,以补充这些研究中典型的描述性研究,并采用更多的分析方法。该研究项目的实际应用是设计步行机器人,这些机器人具有比现有机器更好的性能。 目前的步行机器人由于能量利用率低而具有有限的范围,并且在其导航粗糙地形的能力方面受到限制。 一旦将现有的理论工具的全部力量用于本项目的分析和设计问题,将产生更实用和更有效的步行机。 从更广泛的角度来看,这项研究的应用将超出改进的步行机的设计。 在这个项目中开发的分析和设计工具也将有助于更好地了解人类运动,这将导致在生物力学和生物医学中的应用,如改进的假肢装置的设计,为老年人制定福尔斯预防计划和康复技术。 仅在美国,老年人的福尔斯跌倒每年就对经济产生超过100亿美元的医疗费用和其他费用的影响。该项目改进的建模和分析工具将应用于从人类受试者获得的真实的数据,以便不仅了解衰老如何影响平衡和运动,而且了解如何开发干预技术以降低福尔斯的发生率。
英文摘要
AbstractThis project is to investigate passivity based control in bipedal locomotion. In recent years, passivity based control has proven to be one of the most powerful design methodologies for the control of electromechanical systems such as robot manipulators, underwater vehicles, induction motors, automotive and aerospace systems, and others. With a few exceptions the application of these methods to walking robots and other systems with impacts has not been adequately investigated. The project will explore several extensions of bipedal locomotion in the context of passivity based hybrid nonlinear control. The project will investigate speed regulation, the use of alternate potential functions to increase the basins of attraction of stable limit cycles, the effect of control saturation and under actuation in passivity based control, and the efficiency of passivity based control methods compared to true energy optimal control. It will also investigate passivity based control of gait transitions, including starting and stopping. The goal, and the technical merit of the project, is to help solidify the foundations of the field through analysis, development of new concepts, and the design of provably correct control algorithms. Another aspect of the project is to integrate the theoretical tools of passivity based analysis and control with studies of balance and locomotion in human subjects in order to supplement the descriptive research typical in those studies with more analytical methods.The practical application of this research project is on the design of walking robots that have improved performance capabilities over existing machines. Current walking robots have limited range due to poor energy utilization and are limited in their ability to navigate rough terrain. More practical and more efficient walking machines will result once the full power of available theoretical tools is brought to bear on the analysis and design questions in this project. From a broader perspective, the applications of this research will extend beyond the design of improved walking machines. The analysis and design tools developed in this project will also contribute to a better understanding of human locomotion, which will result in applications in biomechanics and biomedicine, such as the design of improved prosthetic devices, the development of falls prevention programs for the elderly, and rehabilitation techniques. The impact of falls among the elderly in the United States alone has a yearly impact on the economy of more than ten billion dollars in medical bills and other expenses. The improved modeling and analysis tools of this project will be applied to real data obtained from human subjects in order to understand not only how aging affects balance and locomotion, but also how to develop intervention techniques to decrease the rate of falls.
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