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剪切流对水平轴潮流能水轮机水动力性能影响
引用本文:荆丰梅,陈鹏,马伟佳.剪切流对水平轴潮流能水轮机水动力性能影响[J].船舶工程,2019,41(6):1-5.
作者姓名:荆丰梅  陈鹏  马伟佳
作者单位:哈尔滨工程大学,哈尔滨工程大学,工业和信息化部产业发展促进中心
基金项目:国家自然科学基金资助(51779063;U1706227)
摘    要:为了研究剪切流下潮流能水平轴水轮机水动力载荷特性,本文基于CFD方法,建立剪切流模型,计算了剪切流下水平轴水轮机的水动力载荷,并分析得出剪切率对水动力载荷的影响规律。结果表明:剪切流情况下,水动力载荷系数时历曲线发生明显波动,除弯矩系数的波动频率和叶轮旋转频率一致外,其他系数的波动频率均是叶轮旋转频率的2倍,且剪切率越大,水动力载荷系数的波动幅值就越大;随着速比增大,弯矩系数的波动幅值逐渐增加,而侧向力系数波动幅值先增加再减小,在最优速比左右达到最大值。研究成果可为潮流能水平轴水轮机的结构设计和性能优化提供依据。

关 键 词:潮流能  水平轴水轮机  剪切流  水动力特性
收稿时间:2019/3/4 0:00:00
修稿时间:2019/3/4 0:00:00

The Influence of the Shear Flow on the Hydrodynamic Performance of the Horizontal Axis Tidal Current Turbine
JING Feng-mei,and.The Influence of the Shear Flow on the Hydrodynamic Performance of the Horizontal Axis Tidal Current Turbine[J].Ship Engineering,2019,41(6):1-5.
Authors:JING Feng-mei  and
Abstract:Based on the CFD method, the hydrodynamic performance of the horizontal axis tidal current turbine under the shear flow is studied. The numerical model under the shear flow is set up, and hydrodynamic loads under shear flow are obtained, and the influence of shear rate on the hydrodynamic load is analyzed. The result shows that: the time-varying curve of the hydrodynamic load coefficient under the shear flow fluctuate obviously, and the fluctuation frequency of the bending moment coefficient is the same with the rotation frequency of the turbine, but the fluctuation frequency of other coefficients is the double of that of the turbine; the fluctuation amplitude of the hydrodynamic coefficient is increasing with the shear rate, while the fluctuation amplitude of the bending moment coefficient is increasing with the speed ratio, and the fluctuation amplitude of lateral force coefficient is increasing firstly and then decrease with the speed ratio, which reach to the maximum value at the optimal speed ratio. The research result could supply the basement for the structure design and performance optimization of the horizontal axis tidal current turbine.
Keywords:Tidal Current  Horizontal Axis Turbine  Shear Flow  Hydrodynamic Performance
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