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Bio-inspired online variable recruitment control of fluidic artificial muscles

机译:生物启发的流体人工肌肉在线变量募集控制

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This paper details the creation of a hybrid variable recruitment control scheme for fluidic artificial muscle (FAM) actuators with an emphasis on maximizing system efficiency and switching control performance. Variable recruitment is the process of altering a system's active number of actuators, allowing operation in distinct force regimes. Previously, FAM variable recruitment was only quantified with offline, manual valve switching; this study addresses the creation and characterization of novel, on-line FAM switching control algorithms. The bio-inspired algorithms are implemented in conjunction with a PID and model-based controller, and applied to a simulated plant model. Variable recruitment transition effects and chatter rejection are explored via a sensitivity analysis, allowing a system designer to weigh tradeoffs in actuator modeling, algorithm choice, and necessary hardware. Variable recruitment is further developed through simulation of a robotic arm tracking a variety of spline position inputs, requiring several levels of actuator recruitment. Switching controller performance is quantified and compared with baseline systems lacking variable recruitment. The work extends current variable recruitment knowledge by creating novel online variable recruitment control schemes, and exploring how online actuator recruitment affects system efficiency and control performance. Key topics associated with implementing a variable recruitment scheme, including the effects of modeling inaccuracies, hardware considerations, and switching transition concerns are also addressed.
机译:本文详细介绍了针对流体人工肌肉(FAM)执行器的混合变量募集控制方案的创建,重点是最大化系统效率和切换控制性能。可变募集是改变系统执行器活动数量的过程,允许在不同的作用力范围内运行。以前,FAM变量募集只能通过离线,手动阀门切换来量化;这项研究解决了新颖的在线FAM切换控制算法的创建和表征。受生物启发的算法与PID和基于模型的控制器结合实现,并应用于模拟工厂模型。通过敏感性分析来探索可变的补充过渡效应和颤动抑制,从而使系统设计者可以权衡执行器建模,算法选择和必要硬件的权衡。通过跟踪各种花键位置输入的机械臂的仿真,进一步开发了变量募集功能,需要几个级别的执行器募集。量化开关控制器的性能,并将其与缺乏变量补充的基准系统进行比较。这项工作通过创建新颖的在线变量招聘控制方案,并探索在线执行器招聘如何影响系统效率和控制性能,扩展了当前的变量招聘知识。还讨论了与实施可变招聘方案相关的关键主题,包括建模不准确的影响,硬件注意事项和切换过渡问题。

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