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Directional effects on the reliability of non-axisymmetric support structures for offshore wind turbines under extreme wind and wave loadings

机译:极端风浪作用下海上风机非轴对称支撑结构的方向性影响

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In comparison with monopile support structures commonly used for offshore wind turbines (OWTs) in shallow water, fixed bottom support structures for deeper water such as jackets tend to lack axisymmetry and have different capacities when loaded in different directions. Design of such a structure may therefore benefit from consideration of the directional characteristics of loading. This paper focuses on a rational and efficient approach to assess the structural safety of jacket type OWTs under directionally dependent extreme environmental loads. The Incremental Wind-Wave Analysis (IWWA) framework is reviewed and used to assess capacity of jacket-type OWTs under directional environmental wind-wave conditions. The approach uses static pushover analysis of OWT jackets subject to combined wind and wave load patterns corresponding to increasing mean return periods (MRPs). The wind and wave conditions are calculated independently and assumed to occur simultaneously. The loading direction and jacket orientation are both included in the analysis. To illustrate the approach, metocean conditions at different sites along the U.S. Atlantic coast are obtained from the historical database of the National Oceanic and Atmospheric Administration (NOAA) Data Buoy Center. Two models are introduced for estimating the occurrence probability of wave direction, one of which directly uses the frequency of wave directions and the other uses a Gaussian kernel to represent the range of wave directions represented by given directional spectra. For each combination of wind-wave direction and structural orientation, an IWWA analysis gives the capacity in terms of the MRP conditions leading to formation of a fully developed plastic mechanism in the jacket. Those capacities, convolved with MRP models for loading intensity, yield direction-dependent structural reliabilities, and when those reliabilities are convolved with the probability density function for load direction, a total failure probability is obtained that accounts for wave directionality. Example analyses are conducted for an OWT supported by a four-leg jacket adapted from a design published as part of the European Union UpWind Project. Effects of extreme load directionality, structural orientation, structural geometry and site specification on the ultimate capacity of the jacket are carefully discussed. (C) 2015 Elsevier Ltd. All rights reserved.
机译:与通常用于浅水海上风力涡轮机(OWT)的单桩支撑结构相比,用于深水的固定底部支撑结构(例如夹套)往往缺乏轴对称性,并且在不同方向加载时具有不同的承载能力。因此,这种结构的设计可受益于载荷方向特性的考虑。本文重点研究一种合理有效的方法,以评估在定向相关的极端环境载荷下夹套式OWT的结构安全性。审查了增量风波分析(IWWA)框架,并将其用于评估定向环境风浪条件下夹套式OWT的能力。该方法使用OWT护套的静态推覆分析,要经受对应于增加的平均返回期(MRP)的风和浪荷载组合模式。风浪条件是独立计算的,并假定同时发生。分析中包括加载方向和护套方向。为了说明这种方法,从美国国家海洋与大气管理局(NOAA)数据浮标中心的历史数据库中获得了美国大西洋沿岸不同地点的海洋条件。引入了两个模型来估计波浪方向的出现概率,其中一个模型直接使用波浪方向的频率,另一个模型使用高斯核来表示由给定方向谱表示的波浪方向的范围。对于风浪方向和结构定向的每种组合,IWWA分析都会根据MRP条件给出容量,从而导致在外套中形成充分发展的塑性机制。这些容量与MRP模型有关的载荷强度,屈服方向相关的结构可靠性进行了卷积,并且当这些可靠性与负荷方向的概率密度函数进行了卷积时,将获得考虑了波向性的总失效概率。对OWT进行示例分析,该OWT由四腿夹克支撑,该四腿夹克采用了根据欧盟UpWind项目的一部分发布的设计。仔细讨论了极限载荷方向性,结构定向,结构几何形状和工地规格对护套极限承载力的影响。 (C)2015 Elsevier Ltd.保留所有权利。

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