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Fatigue reliability analysis of the jacket support structure for offshore wind turbine considering the effect of corrosion and inspection

机译:考虑腐蚀和检查影响的海上风机护套支撑结构疲劳可靠性分析

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摘要

Due to the high level of fatigue loads as well as a large number of load cycles caused by wind and wave loads together, fatigue performance of welded connections is a design driving criterion for offshore wind turbine support structures. In this paper prediction of fatigue reliability of welded multi-planar tubular joints of the support structure of a fixed jacket offshore wind turbine designed for a northern North Sea site in a water depth of 70 m is performed. Dynamic response of the jacket support structure due to wind and wave loads is calculated by using a decoupled procedure with good accuracy. Hot-spot stresses at failure-critical location of the relative reference brace of the selected tubular joint are derived by summation of the single stress components from axial, in-plane and out-of-plane action, the effects of planar and non-planar braces are also considered. A two-parameter Weibull function is used to fit the long-term statistical distribution of hot-spot stress ranges by combination of time domain simulation for representative environmental conditions (wind/sea states) in operational condition. The main uncertainties associated with the whole procedure of reliability analysis are identified and quantified. The load histories are normalized to ensure that fatigue design criteria based on the SN-Miner-Palmgren approach is satisfied. Hence the reliability estimates obtained refer to fatigue design of tubular joints that satisfy design criteria. The reliability analysis is based on fracture mechanics (FM) analysis of crack growth. The corrosion-induced increased crack growth rate is taken into account by considering the increased hot-spot stress range due to changes of nominal stress and stress concentration factors (SCFs) produced by the thickness thinning (wastage) effects of all braces and chord of the selected tubular joint with a general uniform corrosion model. The geometry function effect and the material degradation effect due to corrosion on the reliability analysis are also investigated. The effects of inspection and repair with and without consideration of corrosion are quantified based on the quality of inspection in terms of probability of crack detection curves. The sensitivity of the reliability index on important random variables is estimated.
机译:由于高水平的疲劳载荷以及由风和波浪载荷共同引起的大量载荷循环,焊接接头的疲劳性能是海上风力涡轮机支撑结构的设计驱动标准。在本文中,进行了为北海北部站点设计的水深70 m的固定夹套海上风力发电机的支撑结构的焊接多平面管状接头疲劳可靠性的预测。通过使用高精确度的解耦程序,可以计算出风和波浪载荷引起的外套支撑结构的动态响应。通过将轴向,平面内和平面外作用,平面和非平面作用的单个应力分量相加,得出所选管状接头相对参考支架失效关键位置处的热点应力。大括号也被考虑。通过将时域模拟结合起来用于运行条件下的代表性环境条件(风/海状态),使用了两参数的Weibull函数来拟合热点应力范围的长期统计分布。确定和量化与可靠性分析整个过程相关的主要不确定性。规范了载荷历史,以确保满足基于SN-Miner-Palmgren方法的疲劳设计标准。因此,获得的可靠性估计值是指满足设计标准的管状接头的疲劳设计。可靠性分析基于裂纹扩展的断裂力学(FM)分析。考虑到腐蚀引起的裂纹扩展速率的增加,考虑了由于应力的变化而引起的热点应力范围的增大,该应力范围是由应力和所有应力集中的变薄效应所引起的应力集中因子(SCF)的变化所致。选择具有一般均匀腐蚀模型的管状接头。还研究了几何函数效应和腐蚀引起的材料降解对可靠性分析的影响。在不考虑腐蚀的情况下,根据裂纹检测曲线的概率根据检查的质量对检查和修复的效果进行量化。估计了可靠性指标对重要随机变量的敏感性。

著录项

  • 来源
    《Reliability Engineering & System Safety》 |2012年第2012期|p.11-27|共17页
  • 作者单位

    Centre for Ships and Ocean Structures (CeSOS), Norwegian University of Science and Technology (NTNU), Otto Nielsens V.10, N-7491, Trondheim, Norway;

    Centre for Ships and Ocean Structures (CeSOS), Norwegian University of Science and Technology (NTNU), Otto Nielsens V.10, N-7491, Trondheim, Norway Department of Marine Technology, Norwegian University of Science and Technology (NTNU), Otto Nielsens V.10, N-7491, Trondheim, Norway;

    Centre for Ships and Ocean Structures (CeSOS), Norwegian University of Science and Technology (NTNU), Otto Nielsens V.10, N-7491, Trondheim, Norway;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    fatigue reliability; multi-planar tubular joints; uncertainties; stress concentration factors; corrosion; inspection; offshore wind turbine;

    机译:疲劳可靠性;多平面管状接头;不确定性应力集中系数;腐蚀;检查;海上风力发电机;

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