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Hydrodynamic Responses of a 6 MW Spar-Type Floating Offshore Wind Turbine in Regular Waves and Uniform Current

机译:6兆瓦翼梁型漂浮海上风力涡轮机的流体动力学响应常规波和均匀电流

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In order to improve the understanding of hydrodynamic performances of spar-type Floating Offshore Wind Turbines (FOWTs), in particular the effect of wave-current-structure interaction, a moored 6MW spar-type FOWT in regular waves and uniform current is considered. The wind loads are not considered at this stage. We apply the potential-flow theory and perturbation method to solve the weakly-nonlinear problem up to the second order. Unlike the conventional formulations in the inertial frame of reference, which involve higher derivatives on the body surface, the present method based on the perturbation method in the non-inertial body-fixed coordinate system can potentially avoid theoretical inconsistency at sharp edges and associated numerical difficulties. A cubic Boundary Element Method (BEM) is employed to solve the resulting boundary-value problems (BVPs) in the time domain. The convective terms in the free-surface conditions are dealt with using a newly developed conditionally stable explicit scheme, which is an approximation of the implicit Crank–Nicolson scheme. The numerical model is firstly verified against three reference cases, where benchmark results are available, showing excellent agreement. Numerical results are also compared with a recent model test, with a fairly good agreement though differences are witnessed. Drag loads based on Morison’s equation and relative velocities are also applied to quantify the influence of the viscous loads. To account for nonlinear restoring forces from the mooring system, a catenary line model is implemented and coupled with the time-domain hydrodynamic solver. For the considered spar-type FOWT in regular-wave and current conditions, the current has non-negligible effects on the motions at low frequencies, and a strong influence on the mean wave-drift forces. The second-order sum-frequency responses are found to be negligibly small compared with their corresponding linear components. The viscous drag loads do not show a strong influence on the motions responses, while their contribution to the wave-drift forces being notable, which increases with increasing wave steepness.
机译:为了改善对翼梁型浮动海上风力涡轮机(发条)的流体动力学性能的理解,特别是波浪电流结构相互作用的效果,考虑了常规波和均匀电流的停泊的6MW族型家庭。在这个阶段不考虑风力载荷。我们应用潜在流动理论和扰动方法,以解决二阶的弱非线性问题。与涉及体表上较高衍生物的惯性框架中的惯性框架中的传统制剂不同,基于非惯性体固定坐标系中的扰动方法的本方法可能避免了尖锐边缘和相关的数值困难的理论不一致。采用立方边界元法(BEM)来解决时域中得到的边值问题(BVP)。使用新开发的条件稳定的明确方案处理了自由表面条件中的对流术语,这是隐式曲柄尼科尔森方案的近似值。首先针对三种参考例验证了数值模型,其中可获得基准结果,显示出良好的一致性。还与最近的模型测试进行了比较了数值结果,但虽然目睹了差异,但仍有相当愉快的一致性。还应用了基于Morison的等式和相对速度的阻力负载来量化粘性负载的影响。为了考虑来自系泊系统的非线性恢复力,将凸起的线模型与时域流体动力学求解器相结合。对于在常规波和当前条件下所考虑的翼梁型家禽,电流对低频下的运动产生不可忽略的影响,以及对平均波漂移力的强烈影响。与其相应的线性组件相比,发现二阶和频率响应可忽略较小。粘性阻力载荷不会对动作反应产生强烈影响,而它们对波浪漂移力的贡献是值得注意的,这随着波陡的增加而增加。

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