首页> 外文期刊>International journal of geomechanics >Geotechnical Design and Design Optimization of a Pile-Raft Foundation for Tall Onshore Wind Turbines in Multilayered Clay
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Geotechnical Design and Design Optimization of a Pile-Raft Foundation for Tall Onshore Wind Turbines in Multilayered Clay

机译:多层粘土高陆上风力发电机桩筏基础的岩土工程设计和设计优化

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摘要

Although the pile-raft foundation is preferred for supporting a tall wind turbine, the geotechnical design and selection of suitable design parameters are based on a complex procedure. Except the foundation, all the other aboveground components are precast members that are assembled at the project site to build a wind turbine. Therefore, it is necessary to consider the possible variations in soil properties and wind speed in the design of the foundation. In this paper, a reliability-based robust design procedure for a pile-raft foundation that supports a 130-m-tall wind turbine on a layered clayey soil is presented. Upon completion of the geotechnical design for the mean wind speed and undrained shear strength, a parametric study and Monte Carlo simulation were conducted by varying the wind speed and the undrained cohesion of each layer to establish a relationship among the design variables (number and length of piles and radius of the raft) and the random variables (wind speed and undrained cohesion). Finally, a reliability-based robust design was created considering the total cost and robustness as the objectives. The standard deviation of the response of concern, which is the differential settlement, was considered the measure of robustness. The optimization yielded a set of preferred designs known as the Pareto front, and the suitable design was selected for a given cost limitation and performance requirement using the Pareto front.
机译:尽管桩筏基础是支撑高风轮机的首选,但岩土工程设计和适当设计参数的选择是基于复杂的过程。除基础以外,所有其他地上组件都是预制构件,这些预制构件在项目现场组装以建造风力涡轮机。因此,有必要在基础设计中考虑土壤特性和风速的可能变化。在本文中,提出了一种基于可靠性的鲁棒性设计程序,该程序用于在层状粘土上支撑130米高的风力涡轮机的桩筏基础。在完成平均风速和不排水抗剪强度的岩土工程设计后,通过改变风速和每一层的不排水内聚力进行了参数研究和蒙特卡洛模拟,以建立设计变量之间的关系(数量和长度桩和筏的半径)以及随机变量(风速和不排水的内聚力)。最后,以总成本和坚固性为目标,创建了基于可靠性的稳健设计。关注响应的标准偏差(即差异解决)被视为鲁棒性的度量。优化产生了一组优选的设计,称为Pareto前沿,并使用Pareto前沿针对给定的成本限制和性能要求选择了合适的设计。

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