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Biomechanical energy harvesting system with optimal cost-of-harvesting tracking algorithm

机译:具有最佳收获成本跟踪算法的生物力学能量采集系统

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This paper presents an innovative biomechanical energy harvesting system based on the regenerative braking concept applied to the human natural motion. To determine optimal braking profile previous studies used an off-line procedure based on constant external load to determine the optimal braking profile. The new concept of this study continuously optimizes the maximum amount of energy that can be extracted during human motion while minimizing the subject's effort (metabolic rate). This is achieved by an energy harvesting system equipped with a programmable braking profile and a unique power extraction algorithm, which adaptively changes the braking profile to obtain the optimal ratio of energy to effort. These are facilitated by a BLDC generator that is connected to boost converter. A digital current programmed control of the boost converter enables an adaptive torque variation according to bio (measure of effort) and electrical feedbacks. This study focuses on the human knee joint as the energy source since the most of this joint work during level walking is negative (muscles are acting as brakes). Since this work is preliminary and more oriented to the novel concept of adaptive profile and optimal power extraction, the operation of the energy harvester is demonstrated on a full-scale laboratory prototype based on a walking emulator. The results exhibit ultimate power extraction capabilities as well as adaptation to the walking pattern.
机译:本文提出了一种创新的生物力学能量收集系统,该系统基于应用于人类自然运动的再生制动概念。为了确定最佳制动曲线,先前的研究使用了基于恒定外部负载的离线程序来确定最佳制动曲线。这项研究的新概念不断优化了在人体运动过程中可以提取的最大能量,同时最大程度地减少了受试者的精力(代谢率)。这是通过配备有可编程制动曲线和独特的功率提取算法的能量采集系统来实现的,该系统可自适应地更改制动曲线以获得最佳的能量/精力比。连接到升压转换器的BLDC发电机有助于实现这些目的。升压转换器的数字电流编程控制可根据生物(力的度量)和电反馈实现自适应转矩变化。这项研究的重点是人膝关节作为能量来源,因为在水平行走过程中,大多数关节活动都是负的(肌肉起着刹车的作用)。由于这项工作是初步的,并且更适应于自适应配置文件和最佳功率提取的新概念,因此在基于步行模拟器的全尺寸实验室原型上演示了能量收集器的操作。结果显示出最终的功率提取能力以及对步行模式的适应性。

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