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Coupled Dynamic Analysis of Multiple Unit Floating Offshore Wind Turbine

机译:多单元浮式海上风力发电机的耦合动力学分析

摘要

In the present study, a numerical simulation tool has been developed for the rotor-floater-tether coupled dynamic analysis of Multiple Unit Floating Offshore Wind Turbine (MUFOWT) in the time domain including aero-blade-tower dynamics and control, mooring dynamics and platform motion. In particular, the numerical tool developed in this study is based on the single turbine analysis tool FAST, which was developed by National Renewable Energy Laboratory (NREL). For linear or nonlinear hydrodynamics of floating platform and generalized-coordinate-based FEM mooring line dynamics, CHARM3D program, hull-riser-mooring coupled dynamics program developed by Prof. M.H. Kim?s research group during the past two decades, is incorporated. So, the entire dynamic behavior of floating offshore wind turbine can be obtained by coupled FAST-CHARM3D in the time domain. During the coupling procedure, FAST calculates all the dynamics and control of tower and wind turbine including the platform itself, and CHARM3D feeds all the relevant forces on the platform into FAST. Then FAST computes the whole dynamics of wind turbine using the forces from CHARM3D and return the updated displacements and velocities of the platform to CHARM3D.To analyze the dynamics of MUFOWT, the coupled FAST-CHARM3D is expanded more and re-designed. The global matrix that includes one floating platform and a number of turbines is built at each time step of the simulation, and solved to obtain the entire degrees of freedom of the system. The developed MUFOWT analysis tool is able to compute any type of floating platform with various kinds of horizontal axis wind turbines (HAWT). Individual control of each turbine is also available and the different structural properties of tower and blades can be applied. The coupled dynamic analysis for the three-turbine MUFOWT and five-turbine MUFOWT are carried out and the performances of each turbine and floating platform in normal operational condition are assessed. To investigate the coupling effect between platform and each turbine, one turbine failure event is simulated and checked. The analysis shows that some of the mal-function of one turbine in MUFOWT may induce significant changes in the performance of other turbines or floating platform. The present approach can directly be applied to the development of the remote structural health monitoring system of MUFOWT in detecting partial turbine failure by measuring tower or platform responses in the future.
机译:在本研究中,已经开发了一种数值模拟工具,用于时域内多单元浮式海上风力涡轮机(MUFOWT)的转子-浮架-绳索耦合动力学分析,包括风叶-塔架动力学和控制,系泊动力学和平台运动。特别是,本研究中开发的数值工具基于由国家可再生能源实验室(NREL)开发的单个涡轮机分析工具FAST。对于浮动平台的线性或非线性流体动力学以及基于广义坐标系的FEM系泊绳动力学,CHARM3D程序是由M.H教授开发的船体-立管系泊耦合动力学程序。在过去的二十年中,金的研究小组成立了。因此,通过在时域中耦合FAST-CHARM3D可以获得浮动海上风力涡轮机的整个动态行为。在耦合过程中,FAST计算塔架和风力涡轮机的所有动力学和控制力,包括平台本身,CHARM3D将平台上的所有相关力输入FAST。然后FAST利用CHARM3D的力来计算风力涡轮机的整体动力学,并将平台的更新位移和速度返回给CHARM3D。为分析MUFOWT的动力学,对FAST-CHARM3D进行了进一步扩展和重新设计。在仿真的每个时间步骤,都将构建一个包含一个浮动平台和多个涡轮机的全局矩阵,并将其求解以获得系统的整个自由度。开发的MUFOWT分析工具能够使用各种水平轴风力涡轮机(HAWT)计算任何类型的浮动平台。还可以对每个涡轮进行单独控制,并且可以应用塔架和叶片的不同结构特性。进行了三涡轮MUFOWT和五涡轮MUFOWT的耦合动力学分析,并评估了正常运行条件下每个涡轮和浮动平台的性能。为了研究平台与每个涡轮之间的耦合效应,模拟并检查了一个涡轮故障事件。分析表明,MUFOWT中一个涡轮机的某些故障可能会导致其他涡轮机或浮动平台的性能发生重大变化。本方法可直接应用于未来MUFOWT远程结构健康监测系统的开发中,该方法通过测量塔架或平台响应来检测部分涡轮故障。

著录项

  • 作者

    Bae Yoon Hyeok;

  • 作者单位
  • 年度 2013
  • 总页数
  • 原文格式 PDF
  • 正文语种 en
  • 中图分类
  • 入库时间 2022-08-20 19:41:53

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