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首页> 外文期刊>International Journal of Naval Architecture and Ocean Engineering >Rotor dynamic analysis of a tidal turbine considering fluid–structure interaction under shear flow and waves
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Rotor dynamic analysis of a tidal turbine considering fluid–structure interaction under shear flow and waves

机译:考虑剪切流和波浪作用下流固耦合的潮汐涡轮机转子动力分析

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A rotor dynamic analysis is mandatory for stability and design optimization of submerged propellers and turbines. An accurate simulation requires a proper consideration of fluid-induced reaction forces. This paper presents a bi-directional coupling of a bond graph method solver and an unsteady vortex lattice method solver where the former is used to model the rotor dynamics of the power train and the latter is used to predict transient hydrodynamic forces. Due to solver coupling, determination of hydrodynamic coefficients is obsolete and added mass effects are considered automatically. Additionally, power grid and structural faults like grid fluctuations, eccentricity or failure could be investigated using the same model. In this research work a fast, time resolved dynamic simulation of the complete power train is conducted. As an example, the rotor dynamics of a tidal stream turbine is investigated under two inflow conditions: I - shear flow, II - shear flow?+?water waves.
机译:转子动力分析对于水下螺旋桨和涡轮的稳定性和设计优化是必不可少的。精确的模拟需要适当考虑流体引起的反作用力。本文介绍了键合图方法求解器和非定常涡流格子方法求解器的双向耦合,其中前者用于对动力传动系统的转子动力学建模,而后者则用于预测瞬态流体动力。由于求解器耦合,确定水动力系数已过时,并且会自动考虑附加的质量效应。此外,可以使用同一模型调查电网和结构故障,例如电网波动,偏心率或故障。在这项研究工作中,对整个动力总成进行了快速,时间分辨的动态仿真。例如,研究了潮汐流涡轮机在两种流入条件下的转子动力学特性:I-剪切流,II-剪切流→+β水波。

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