首页> 外文会议>ASME international conference on ocean, offshore and arctic engineering >NUMERICAL SIMULATION OF WAVE RUN-UPS DUE TO NONLINEAR INTERACTION BETWEEN STOKES WAVES AND OFFSHORE WIND TURBINES
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NUMERICAL SIMULATION OF WAVE RUN-UPS DUE TO NONLINEAR INTERACTION BETWEEN STOKES WAVES AND OFFSHORE WIND TURBINES

机译:斯托克斯波与海上风轮机之间非线性相互作用导致波展的数值模拟

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This paper conducts a RANS solver with k-e turbulent closure to simulate hydrodynamics of wave run-ups of three types of wind turbine foundations, including monopile, gravity-based and tripod support structures. In this study, a semi-empirical formula is developed and calibrated based on velocity stagnation head theory by means of a CFD model, FLUENT. The numerical results are validated by the experimental data, which were implemented in the Large Wave Flume (GWK) of the Coastal Research Centre (FZK) in Hannover and published by Mo et al. (2007). It is indicated that the difference of normalized run-up envelopes among these wind turbine foundations is smaller for higher wave steepness than those for lower wave steepness. It is also obvious that the tendency of maximum run-up heights is considerably correlated with higher nonlinearity, whereas an opposite trend is obtained for minimum run-up envelops. Eventually, a calibrated run-up parameter is obtained by the present numerical simulation and found that the value becomes smaller with respect to higher nonlinearity and run-up heights.
机译:本文进行了一个带有k-e湍流闭合的RANS求解器,以模拟三种类型的风力涡轮机基础(包括单桩,重力式和三脚架支撑结构)的波浪上升流的流体动力学。在这项研究中,基于速度停滞头理论,通过CFD模型FLUENT,开发并校准了一个半经验公式。数值结果得到了实验数据的验证,该数据已在汉诺威海岸研究中心(FZK)的大波浪水槽(GWK)中实施,并由Mo等人发表。 (2007)。结果表明,这些风力涡轮机基础之间的规范化上升包络线之间的差异对于较高的波浪陡度要小于较低的波浪陡度。同样明显的是,最大上升高度的趋势与较高的非线性度显着相关,而对于最小上升高度包络则获得了相反的趋势。最终,通过本数值模拟获得校准的起步参数,并且发现该值相对于较高的非线性度和起步高度而变小。

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