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State-of-the-art investigation of wind turbine structures founded on soft clay by considering the soil-foundation-structure interaction phenomenon - Optimization of battered RC piles

机译:通过考虑土基 - 基础结构互动现象 - 优化受粘土的抗粘土上的风力涡轮机结构的最先进调查

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Nonlinear dynamic modelling of full-scale wind turbine structures and soil-structure interaction considerations using the 3D detailed approach is the most accurate method of investigating the mechanical response of these structures, but not yet feasible due to numerous reasons. The two main numerical problems that do not allow for this type of analysis to be performed, are the numerical instabilities that immerse during the dynamic analysis and the excessive computational demand. This work will present the computational response of a newly developed algorithm that is used herein to perform modal analysis of wind turbine structures for the investigation of soil-foundation-structure interaction phenomenon. An extensive numerical investigation is presented that foresees the performance of modal and pushover analysis on a wind turbine structure that has an 80 m steel tower and is founded on different soil profiles. The 3D detailed models constructed herein consider the effect of soil-foundation-structure interaction by discretizing for the first time the superstructure, pile foundation and soil domains through 8-noded hexahedral elements, achieving maximum modelling accuracy. The soil material properties used in this research work derived from an onsite geotechnical investigation performed for the needs of the WindAfrica project. After validating the ability of the proposed modelling approach to capture the mechanical behaviour of reinforced concrete foundations through the use of experimental data found in the international literature, the optimum inclination of battered piles was studied through an excessive numerical parametric investigation. Based on the numerical findings, the optimum inclination of the battered piles was that of 10 degrees, where the failure of the wind turbine structure was found to be located at the base of the steel tower due to local buckling.
机译:使用3D详细方法的全尺寸风力涡轮机结构与土壤结构相互作用考虑的非线性动力学造型是研究这些结构的机械响应的最准确的方法,但由于许多原因,尚不可行。不允许执行此类分析的两个主要数值问题是在动态分析和过度计算需求期间沉浸的数值不稳定性。该工作将呈现新开发算法的计算响应,该算法在本文中用于对风力涡轮机结构进行模态分析,用于调查土壤基层结构相互作用现象。提出了一种广泛的数值调查,预计将在具有80米钢塔的风力涡轮机结构上的模态和推动分析的性能,并在不同的土壤型材上创立。本文构建的3D详细模型考虑了通过8点点发表的六面体元素首次进行了超结构,桩基和土域的离散化,实现了土壤基础结构相互作用的影响,实现了最大的建模精度。该研究工作中使用的土壤材料特性来自于为WindaFrica项目的需求进行的现场岩土地调查。通过在国际文献中发现的实验数据验证拟议的建模方法来捕获钢筋混凝土基础的力学行为后,通过过度数值参数调查研究了受打桩桩的最佳倾向。基于数值发现,受打桩桩的最佳倾斜度为10度,其中发现风力涡轮机结构的故障位于由于局部屈曲,位于钢塔的底部。

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