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基于单向流固耦合的潮流能水轮机叶片强度及模态分析
引用本文:刘雪峰,王晋宝,田美灵,唐志波,吴国荣.基于单向流固耦合的潮流能水轮机叶片强度及模态分析[J].机械工程师,2014(11):94-98.
作者姓名:刘雪峰  王晋宝  田美灵  唐志波  吴国荣
作者单位:1. 浙江海洋学院船舶与海洋工程学院,浙江舟山,316022
2. 浙江海洋学院海运与港航建筑工程学院,浙江舟山,316022
基金项目:浙江海洋学院校级重大项目
摘    要:叶片作为潮流能水轮机叶轮的关键部件,在其工作过程中受到水流的作用力,会对其安全性与稳定性有一定的影响。文中基于Workbench,先用CFX软件对水平轴潮流能水轮机叶轮在正常流速和最大流速情况下所受流体作用力进行了稳态数值模拟;然后在Workbench内完成流体域和结构域两个物理场之间数据的传递,采用单向流固耦合的方法将流场载荷施加到叶片结构上并对其进行了强度分析,得到了叶片变形及应力的变化情况;最后对叶片进行了模态分析,得到叶片各阶模态振型、频率及最大变形量,并且对结果进行了分析。

关 键 词:水平轴潮流能水轮机  叶片  单向流固耦合  强度分析  模态分析

Strength and Modal Analysis of Tidal Current Energy Turbine' s Blades Based on the One Way Fluid-Structure Interaction
LIU Xuefeng,WANG Jinbao,TIAN Meiling,TANG Zhibo,WU Guorong.Strength and Modal Analysis of Tidal Current Energy Turbine' s Blades Based on the One Way Fluid-Structure Interaction[J].Mechanical Engineer,2014(11):94-98.
Authors:LIU Xuefeng  WANG Jinbao  TIAN Meiling  TANG Zhibo  WU Guorong
Affiliation:LIU Xuefenga,WANG Jinbaob,TIAN Meilingb,TANG Zhibob,WU Guoronga(a.School of Ship and Ocean Engineering;b.School of Shipping and Ports Architecture Engineering,Zhejiang Ocean University, Zhoushan 316022, China)
Abstract:As the key components of a tidal current energy turbine, the blades will be affected by the force of the water flow when the turbine is working,thus having an effect on the tidal current energy turbine ’s safety and stability. In this paper,based on the Workbench,steady simulation was performed to get the force of the water flow on the turbine at the normal and maximum current speed using the software CFX. Then the data between the fluid field and structure field were transferred in the Workbench,and the fluid load was applied to the blade structure with the method of one way fluid-structure interaction. The blades’ strength were analyzed and the blades’ deformation and stress were got under different working conditions. At last,through modal analysis of the blades,various order modal shape,various order frequency,and various order maximum deformation were got and studied.
Keywords:tidal current energy turbine  blades  one way fluid-structure interaction  strength analysis  modal analysis
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