首页> 外文会议>International conference on ocean, offshore and arctic engineering;OMAE2011 >EFFECT OF FOUNDATION MODELLING METHODOLOGY ON THE DYNAMIC RESPONSE OF OFFSHORE WIND TURBINE SUPPORT STRUCTURES
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EFFECT OF FOUNDATION MODELLING METHODOLOGY ON THE DYNAMIC RESPONSE OF OFFSHORE WIND TURBINE SUPPORT STRUCTURES

机译:基础建模方法对海上风轮机支撑结构动力响应的影响

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When preliminarily investigating offshore wind turbine tower concepts it is common to develop optimization software for determining the best possible structural layout. This type of optimization procedure requires a large number of iterations to determine the best possible design and can be quite time consuming, particularly if the dynamic performance of each structure is to be investigated using an aero-hydro-servo-elastic type solver. When performing this type of "dynamic optimization" it is convenient to simply assume fixed boundary conditions at the soil-structure interface and ignore the dynamic properties of the foundation. Using fixed conditions allows for each of the layouts to be compared quickly and makes the computer models simple to create and more efficient in computation than if the foundation is included. Alternatively, the foundations of offshore wind turbine support structures can be represented with several different methods of varying complexity and detail. The most widely used method is the use of a distributed spring model commonly known as the p-y method. This approach is the primary method in most offshore wind turbine design standards for determining the static and cyclic reaction of offshore piles. In this work, two offshore wind support structure layouts are modeled and analyzed in the wind turbine analysis program HAWC2. Dynamic time series analyses under operating conditions are carried out for each tower with fixed conditions and with foundation models based on the p-y method in order to determine the appropriateness of utilizing fixed foundation conditions for optimization procedures.
机译:在初步研究海上风力涡轮机塔架概念时,通常会开发用于确定最佳结构布局的优化软件。这种类型的优化过程需要进行大量的迭代才能确定最佳的可能设计,并且可能会非常耗时,尤其是如果要使用航空-水-伺服-弹性类型的求解器来研究每个结构的动态性能时。当执行这种类型的“动态优化”时,可以简单地在土-结构界面处假定固定边界条件,而忽略基础的动态特性。使用固定的条件可以快速比较每个布局,并且比起包含基础的情况,使计算机模型更易于创建且计算效率更高。可替代地,可以用具有不同复杂性和细节的几种不同方法来表示海上风力涡轮机支撑结构的基础。使用最广泛的方法是使用通常称为p-y方法的分布式弹簧模型。这种方法是大多数海上风机设计标准中确定海上桩的静态和循环反应的主要方法。在这项工作中,在风力涡轮机分析程序HAWC2中对两个海上风电支撑结构布局进行了建模和分析。为了确定使用固定基础条件进行优化程序的适当性,对具有固定条件的每个塔架和基于p-y方法的基础模型在运行条件下进行了动态时间序列分析。

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