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A method for identification of an effective Winkler foundation for large diameter offshore wind turbine support structures based on in-situ measured small-strain soil response and 3D modelling

机译:基于现场测量的小应变土体响应和3D建模的大直径海上风机支撑结构有效Winkler基础识别方法

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摘要

A procedure is presented for the derivation of an effective small-strain soil stiffness governing the soil structure interaction of large-diameter monopiles. As a first step, geophysical measurements are used to estimate the depth-dependent shear modulus G of the soil stratum. The second step is to use this modulus and an estimated Poisson's ratio and density in a 3D model, which captures the deformation of both the monopile and the soil. As a final step, a new method is proposed to use the computed 3D response for identification of a depth dependent stiffness of an effective Winkler foundation. This stiffness can be used in a 1D model, which is more fit for design purposes. The presented procedure is deemed more appropriate than the often used "p-y curve" method, which was once calibrated for slender flexible piles and for which the input is based on the large-strain cone penetration test. The three steps are demonstrated for a particular design location. It is also shown that the displacements of the 3D model are smaller and the resulting fundamental natural frequency is higher than calculated with the p-y method. (C) 2016 Elsevier Ltd. All rights reserved.
机译:提出了一种程序,用于推导控制大直径单桩土壤相互作用的有效小应变土壤刚度。第一步,使用地球物理测量来估计土壤层的深度相关剪切模量G。第二步是在3D模型中使用该模量以及估计的泊松比和密度,该模型可以捕获单桩和土壤的变形。作为最后一步,提出了一种新方法,将计算出的3D响应用于识别有效Winkler基础的深度相关刚度。此刚度可用于一维模型中,更适合于设计目的。所提出的程序被认为比通常使用的“ p-y曲线”方法更为合适,该方法曾经针对细长的柔性桩进行过校准,并且其输入是基于大应变圆锥穿透试验。针对特定的设计位置演示了这三个步骤。还显示,与使用p-y方法计算的结果相比,3D模型的位移更小,并且得到的基本固有频率也更高。 (C)2016 Elsevier Ltd.保留所有权利。

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