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Dynamics of Ocean Buoys and Athlete Motion for Energy Harvesting.

机译:海洋浮标和运动员运动的动力学,以进行能量收集。

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摘要

Small scale energy harvesting has become a prevalent area of study over the last decade. These harvesters are used in a wide range of applications, including the powering of remote sensors for structural health in buildings or bridges, tsunami, submarine and wildlife detection in the ocean, as well as general motion analysis of systems. Though many designs have been created to harvest energy for these purposes, the nonlinear dynamics of both the harvester and, when applicable, its housing (i.e. buoy casing) are widely ignored. Because of this, a significant amount of available power is lost through the limitations of linear designs.;The first part of this dissertation gives an overview of commonly used linear energy harvesting designs and gives a brief explanation of the limitations of a linear design. Both a simple inertial and linearized magnet-coil model are analytically and numerically studied. This sets the stage for improvement of energy harvesters to operate at a wider range of frequencies by including the inherent nonlinearities of the harvester and/or its environment.;In the second part, the nonlinear dynamics of ocean buoys of standard, fundamental shapes (spherical and cylindrical) due to wave loading is studied. Experimental, as well as numerical and analytical analysis is performed on these designs. Also given is a description of common wave-loading devices that can be used in a laboratory setting (wavemakers), as well as for the specific device used to obtain experimental data. Additionally, a simple dynamical system is excited by the buoy motion, which is used to calculate the power available if the system was used as an energy harvester.;The last part of this dissertation looks at the nonlinear dynamics of human motion, with a focus on running events. Analysis is performed on running subjects in order to determine the amount of energy available, as well the frequencies where the most energy is available. This information is then used to recreate the motion numerically, which makes it possible to design a simple energy harvester that operates efficiently in such an environment. This harvester is used to power a timing mechanism that gives frequent and useful information about the athlete's position and speed.
机译:在过去的十年中,小规模的能量收集已经成为研究的主要领域。这些收割机具有广泛的应用,包括为建筑物或桥梁的结构健康,海啸,海底和野生生物检测提供远程传感器供电,以及对系统进行总体运动分析。尽管已经创建了许多设计用于收集能量以实现这些目的,但是收割机及其外壳(如适用)的非线性动力学(如浮标外壳)被广泛忽略。因此,由于线性设计的局限性,会损失大量可用功率。本论文的第一部分概述了常用的线性能量收集设计,并简要解释了线性设计的局限性。对简单的惯性和线性化的电磁线圈模型都进行了分析和数值研究。通过包括能量收集器和/或其环境的固有非线性,这为改进能量收集器以在更宽的频率范围内运行奠定了基础。在第二部分中,标准基本形状(球形)的海洋浮标的非线性动力学和圆柱)由于波浪载荷。对这些设计进行实验以及数值和分析分析。还给出了可在实验室环境中使用的常见波浪加载设备(造波器)的描述,以及用于获得实验数据的特定设备的描述。此外,浮标运动激发了一个简单的动力系统,该系统被用来计算如果该系统用作能量采集器时可用的功率。关于正在运行的事件。对跑步的受试者进行分析,以确定可用能量的数量以及可用能量最多的频率。然后,此信息将用于数字地重新创建运动,这使得可以设计一个在这种环境下有效运行的简单能量采集器。该收割机用于为计时机制提供动力,该计时机制可提供有关运动员的位置和速度的频繁且有用的信息。

著录项

  • 作者

    Ballard, Zach.;

  • 作者单位

    Duke University.;

  • 授予单位 Duke University.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 178 p.
  • 总页数 178
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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