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Soil-Structure-Wave Interaction of Gravity-Based Offshore Wind Turbines: An Analytical Model

机译:基于重力的离岸风力涡轮机的土结构波相互作用:分析模型

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The structural design of offshore wind turbines is based on the consideration of coupled dynamic phenomena. Wave loads cause the dynamic oscillation of the monopile, and the dynamic oscillation of the monopile affects the wave loads. The boundary conditions of the gravity-based foundation-monopile-turbine system are mostly affected by the flexural stiffness of the foundation plate, the elastic and creep behavior of the soil, and the inertia (translational and rotational) of the wind turbine mass. The design of the foundation should consider the dynamic response of the soil and the monopile, and the dynamic response of the soil and the monopile is affected by the design parameters of the foundation. The initial conditions of the system yield transient dynamic phenomena. A braking wave at t = 0 causes different dynamic response than the steady-state conditions due to a harmonic wave load. In the present work, an integrated analytical model simulating the above dynamic phenomena is proposed. With the aid of double integral transforms and generalized function properties, a solution of the corresponding differential equations for the monopile-soil-foundation system and the boundary and initial conditions is derived. A parametric study is carried out, and results of the effect of the design parameters and soil properties are presented and discussed.
机译:海上风力涡轮机的结构设计基于耦合动态现象的考虑。波浪载荷导致单披露的动态振荡,并且单披露的动态振荡影响波浪负荷。基于重力的基础型号涡轮机系统的边界条件主要受到基板弯曲刚度的影响,土壤的弹性和蠕变行为,以及风力涡轮机质量的惯性(平移和旋转)。基础的设计应考虑土壤和单披露的动态响应,以及土壤的动态响应和巨石的设计参数受到基础的设计参数的影响。系统的初始条件产生瞬态动态现象。由于谐波负载,T = 0处的制动波引起了与稳态条件不同的动态响应。在本作本作中,提出了一种模拟上述动态现象的集成分析模型。借助于双积分变换和广义功能特性,推导了对单披露土基础系统的相应微分方程和边界和初始条件的解决方案。进行了参数研究,提出和讨论了设计参数和土壤性质的效果的结果。

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