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Dynamic Models for Load Calculation Procedures of Offshore Wind Turbine Support Structures: Overview, Assessment, and Outlook

机译:海上风力涡轮机支撑结构载荷计算程序的动态模型:概述,评估和展望

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One of the main mechanisms for driving down the cost of offshore wind energy is to install ever larger wind turbines in larger wind farms. At the same time, these turbines are placed further offshore in deeper waters. As a result, traditional monopile foundations are not always feasible and multimembered foundations, such as jackets and tripods are required. Typically, thousands of load cases need to be simulated for the design and certification of offshore wind turbines (OWTs). As models of such foundations are significantly larger than their monopile counterparts, model reduction is often applied to limit the computational costs. Additionally, the foundation design is generally done by a specialized company, which bases its design on the results of the load simulations. Hence, an accurate estimation of the stresses in load simulation is essential to predict the integrity and the lifetime of different designs. The effect on the load accuracy of both the model reduction as well as the postprocessing method used by foundation designers (FDs) are investigated in this paper. A case study is performed on a jacket-based wind turbine model to verify and quantify the findings. First, it is observed that the effect of the reduced foundation model on the wind turbine loads is negligible. However, both the reduction method and the postprocessing method applied by the FD have a large influence on the fatigue loading in the jacket. It is shown that the popular Guyan reduction results in significant errors on the fatigue damage and that a static postprocessing analysis leads to serious underestimations of the fatigue loads. Finally, an outlook is given into future developments in the field of load calculations for OWT foundation design.
机译:降低海上风能成本的主要机制之一是在更大的风电场中安装更大的风力涡轮机。同时,这些涡轮机被放置在更深的水域中更远的海上。结果,传统的单桩基础并非总是可行的,需要多层构件的基础,例如夹克和三脚架。通常,需要对数千个工况进行模拟,以设计和认证海上风力涡轮机(OWT)。由于此类基础的模型明显大于其单桩模型,因此通常采用模型简化来限制计算成本。此外,基础设计通常由一家专业公司完成,该公司的设计基于负载模拟的结果。因此,在负载模拟中准确估计应力对于预测不同设计的完整性和寿命至关重要。本文研究了模型简化以及基础设计人员(FD)使用的后处理方法对载荷精度的影响。对基于夹克的风力涡轮机模型进行了案例研究,以验证和量化结果。首先,观察到简化的基础模型对风力涡轮机负荷的影响可以忽略不计。但是,FD的减少方法和后处理方法对外套中的疲劳载荷都有很大的影响。结果表明,流行的Guyan折减会导致疲劳损伤的重大误差,并且静态的后处理分析会导致疲劳载荷的严重低估。最后,展望了OWT基础设计的荷载计算领域的未来发展。

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