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Design and Performance of an Optimal Inertial Power Harvester for Human-Powered Devices

机译:用于人力设备的最佳惯性能量采集器的设计和性能

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We present an empirical study of the long-term practicality of using human motion to generate operating power for body-mounted consumer electronics and health sensors. We have collected a large continuous acceleration data set from eight experimental subjects going about their normal daily routine for three days each. Each subject is instrumented with a data collection apparatus that simultaneously logs 3-axis, 80 Hz acceleration data from six body locations. We use this data set to optimize a first-principles physical model of the commonly used velocity damped resonant generator (VDRG) by selecting physical parameters such as resonant frequency and damping coefficient to maximize the harvested power. Our results show that with reasonable assumptions on size, mass, placement, and efficiency of VDRG harvesters, most body-mounted wireless sensors and even some consumer electronics devices can be powered continuously and indefinitely from everyday motion. We have optimized the power harvesters for each individual and for each body location. In addition, we present the potential of designing a damping- and frequency-tunable power harvester that could mitigate the power reduction of a generator generalized for "averageȁD; subjects. We present the full details on the collection of the acceleration data sets, the development of the VDRG model, and a numerical simulator, and discuss some of the future challenges that remain in this promising field of research.
机译:我们对使用人体运动为车载消费电子产品和健康传感器产生操作功率的长期实用性进行了实证研究。我们已经收集了来自八个实验对象的大量连续加速度数据集,每个实验对象每天进行三天的正常日常活动。每个对象都配备了数据收集设备,该设备可以同时记录来自六个身体位置的3轴80 Hz加速度数据。我们通过选择物理参数(例如谐振频率和阻尼系数)以最大化收获的功率,使用此数据集来优化常用的速度阻尼谐振发生器(VDRG)的第一原理物理模型。我们的结果表明,在合理地假设VDRG收割机的尺寸,质量,位置和效率的情况下,大多数车载无线传感器甚至某些消费类电子设备都可以通过日常运动连续不断地供电。我们针对每个人和每个身体部位优化了能量收集器。此外,我们还展示了设计阻尼和频率可调功率收集器的潜力,该收集器可以减轻一般用于“平均值averD;主题”的发电机的功率降低。我们提供了有关加速度数据集的收集,开发的全部细节。 VDRG模型和一个数值模拟器,并讨论了这个有前途的研究领域中仍然存在的一些未来挑战。

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