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Comparative analysis of numerically simulated and experimentally measured motions and sectional forces and moments in a floating wind turbine hull structure subjected to combined wind and wave loads

机译:风和波浪载荷作用下浮式风力涡轮机船体结构中数值模拟和实验测量的运动以及截面力和力矩的比较分析

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Multi-body time-domain finite element models, which implement a recently developed numerical approach for determining forces and moments in floaters, are developed to simulate rigid-body motions and sectional forces and moments of a reference 5-MW braceless semi-submersible wind turbine in turbulent winds and irregular waves corresponding to below rated, at rated and above rated conditions. The simulated responses are compared with measurements of a 1:30 scaled model test using a real-time hybrid testing approach. In general, agreement between simulations and measurements are very good. Differences in spectral densities of the measurements and simulations have been quantified while the reasons for the differences have been thoroughly analyzed and discussed based on comparisons of measurements in different conditions and numerical parametrical study. Effects of non-linear wave excitation loads and drag forces on the rigid-body motions and sectional forces and moments are analyzed while dominant load components in fore-aft bending moments in five cross-sections in the hull of the reference model are identified. The interface between the pontoons and central column of the reference model is identified as the most critical part. Both low frequency and wave frequency load effect should be accounted for. Mean forces and moments from wind and waves result in a change in configuration of mean wetted body surface of the hull when compared to its configuration in calm water. This may result in a considerable change in resultant sectional forces and moments even though change in resultant of the hydro pressure forces on whole of the wetted body surface could be very limited. For the analyzed model, simulated fore-aft bending moments of the model in wind and waves could be obtained by superimposing the results for wind only condition, and wave only condition except that the corresponding averaged wind induced forces and moments should be applied on the numerical model. This simplification can significantly reduce number of cases of short-term analysis required in long-term analysis. However, applicability of the simplification should be analyzed case by case in particular for a blunt structure with relatively large volume of displaced water in waves with relatively small wave length. Analysis and discussions given in this paper are based on available measurements of the model test. Hydroelastisity and structural vibration of the columns and pontoons of the hull are not accounted for by the numerical and experimental models. Suggestions for design of future model tests are given in this paper.
机译:开发了多体时域有限元模型,该模型采用了最近开发的用于确定浮子中力和力矩的数值方法,用于模拟参考5兆瓦无支撑半潜水式风力发电机的刚体运动以及截面力和力矩在对应于低于额定,额定和高于额定条件的湍流和不规则波浪中。使用实时混合测试方法,将模拟响应与1:30比例模型测试的测量结果进行比较。通常,模拟和测量之间的一致性非常好。在不同条件下的测量比较和数值参数研究的基础上,量化了测量和模拟光谱密度的差异,同时对差异的原因进行了充分的分析和讨论。分析了非线性波浪激励载荷和拖曳力对刚体运动以及截面力和力矩的影响,同时确定了参考模型船体中五个横截面的前后弯曲力矩中的主要载荷分量。浮筒和参考模型中心柱之间的界面被认为是最关键的部分。低频和波动频率的负载效应都应考虑在内。与在平静水中的船体配置相比,来自风浪的平均力和力矩会导致船体平均润湿体表的配置发生变化。即使在整个润湿的身体表面上的水压力的合力变化可能非常有限,这也可能导致合力截面力和力矩发生较大变化。对于分析的模型,通过将仅风条件和仅波条件相加,可以得到模型在风和波浪中的模拟前后弯矩,但应在数值上应用相应的平均风感应力和矩。模型。这种简化可以显着减少长期分析中所需的短期分析案例数。但是,应逐个分析简化的适用性,尤其是对于波长相对较小的波浪中位移水量较大的钝结构。本文给出的分析和讨论基于模型测试的可用度量。数值模型和实验模型均未考虑船体圆柱和浮桥的水弹性和结构振动。本文提出了有关未来模型测试设计的建议。

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