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Effect of mass-ratio, damping, and stiffness on optimal hydrokinetic energy conversion of a single, rough cylinder in flow induced motions

机译:在流动引起的运动中,质量比,阻尼和刚度对单个粗圆柱的最佳流体动力学能量转换的影响

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摘要

Flow Induced Motions (FIMs) of a single, rigid, circular cylinder with end-springs are investigated for Reynolds number 30,000 <= Re <= 120,000 with mass ratio, damping, and stiffness as parameters. Selective roughness is applied to enhance FIM and increase the hydrokinetic energy captured by the VIVACE (Vortex Induced Vibration for Aquatic Clean Energy) Converter at higher Reynolds numbers. The second generation of virtual spring-damping system Vck, recently developed in the Marine Renewable Energy Laboratory (MRELab), enables embedded computer-controlled change of viscous-damping and spring stiffness for fast and precise oscillator modeling. Experimental results for amplitude response, frequency response, energy harvesting, and efficiency are presented and discussed. All experiments were conducted in the Low Turbulence Free Surface Water (LTFSW) Channel of the MRELab of the University of Michigan. The main conclusions are: (1) The oscillator can harness energy from flows as slow as 0.3946 m/s with no upper limit. (2) Increasing the spring stiffness, shifts the VIV synchronization range to higher flow velocities, resulting in reduced gap between VIV and galloping, where the harnessed power drops. (3) In galloping, the harnessed power increases with the mass ratio. (4) Local optima in energy conversion efficiency appear at the beginning of the VIV upper branch and at the beginning of galloping. (5) Local optima in power appear at the end VIV upper branch and at the beginning of galloping. (C) 2016 Elsevier Ltd. All rights reserved.
机译:以质量比,阻尼和刚度为参数,研究了带有端弹簧的单个刚性圆柱体的流致运动(FIM),其雷诺数30,000 <= Re <= 120,000。应用选择性粗糙度来提高FIM并增加雷诺数更高时被VIVACE(水生清洁能源涡流诱导振动)转换器捕获的流体动能。最近在海洋可再生能源实验室(MRELab)中开发的第二代虚拟弹簧阻尼系统Vck支持嵌入式计算机控制的粘滞阻尼和弹簧刚度的变化,从而实现了快速精确的振荡器建模。提出并讨论了幅度响应,频率响应,能量收集和效率的实验结果。所有实验均在密歇根大学MRELab的低湍流无地表水(LTFSW)通道中进行。主要结论是:(1)振荡器可以利用低至0.3946 m / s的流量能量,没有上限。 (2)增大弹簧刚度,将VIV同步范围移至更高的流速,从而减小了VIV和舞动之间的间隙,从而使线束功率下降。 (3)在奔腾中,线束功率随质量比而增加。 (4)能量转换效率的局部最优出现在VIV上部分支的开始和驰gall的开始。 (5)局部最优动力出现在VIV上部分支的末端和奔腾的开始。 (C)2016 Elsevier Ltd.保留所有权利。

著录项

  • 来源
    《Renewable energy》 |2016年第12期|936-959|共24页
  • 作者单位

    Harbin Engn Univ, Harbin, Peoples R China|Univ Michigan, MRELab, 2600 Draper Rd, Ann Arbor, MI 48109 USA|Univ Michigan, Dept Naval Architecture & Marine Engn, Marine Renewable Energy Lab, 2600 Draper Rd, Ann Arbor, MI 48109 USA;

    Univ Michigan, Dept Naval Architecture & Marine Engn, Marine Renewable Energy Lab, 2600 Draper Rd, Ann Arbor, MI 48109 USA|Univ Michigan, Dept Mech Engn, 2600 Draper Rd, Ann Arbor, MI 48109 USA;

    US DOE, Wind & Water Power Technol Off, Golden Field Off, Washington, DC 20585 USA;

    US DOE, Wind & Water Power Technol Off, Golden Field Off, Washington, DC 20585 USA|Allegheny Sci & Technol, Bridgeport, WV USA;

    Univ Michigan, Dept Naval Architecture & Marine Engn, Marine Renewable Energy Lab, 2600 Draper Rd, Ann Arbor, MI 48109 USA|Univ Michigan, Dept Mech Engn, 2600 Draper Rd, Ann Arbor, MI 48109 USA|Vortex Hydro Energy, Ann Arbor, MI USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Hydrokinetic energy; Virtual spring-damping; Flow induced motions; Vortex induced vibrations; Galloping; VIVACE converter;

    机译:流体动能;虚拟弹簧阻尼;流动引起的运动;涡旋引起的振动;疾驰;VIVACE转换器;

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