Modified fragility functions for offshore wind turbines considering soil-structure interaction subjected to wind, wave, and seismic loads

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2024-09-10 DOI:10.1177/13694332241281537
Leila Haj Najafi
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Abstract

Investment allocation for offshore wind turbines (OWT) as an important class of structures is typically carried out through supporting decision-making approaches utilizing some fragility functions. This study attempts to deliver fragility functions for OWTs on monopile foundations accounting for soil-structure interaction (SSI) effects. Simultaneous wind, wave, and earthquake loads were considered probabilistically by adjusting their occurrence hazard levels for predefined damage states in diverse performance levels. The designated damage states in this study are defined based on collapse probability and some targeted performance levels which could be very straightforward to distinguish. The damage state detection is based on rotation in the connection section of the tower’s transition part to the foundation, which perceptibly reveals the effects of SSI on fragility functions. The expected results comprise modified fragility functions accounting for SSI effects contributing to less median spectral acceleration, more evidently rotational demands, further dispersions, and a subsequent dominant increase in the probability of exceeding performance limit states. Considering operational performance level, the most applied design performance level for turbines as an important class of structures, not considering the SSI effects could noticeably underestimate the demands and lead to high-risk decisions.
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考虑风、波浪和地震荷载作用下土壤与结构相互作用的近海风力涡轮机脆性函数修订版
海上风力涡轮机(OWT)是一类重要的结构,其投资分配通常通过利用一些脆性函数的辅助决策方法来进行。本研究试图为单桩地基上的海上风力涡轮机提供脆性函数,并考虑土壤-结构相互作用(SSI)效应。同时考虑了风、波浪和地震荷载的概率,针对不同性能等级的预定破坏状态调整了它们的发生危险等级。本研究中指定的破坏状态是根据坍塌概率和一些目标性能等级来定义的,可以非常直观地进行区分。损伤状态检测基于塔架过渡部分与地基连接部分的旋转,这明显揭示了 SSI 对脆性函数的影响。预期结果包括修改脆性函数,考虑 SSI 的影响,减少频谱加速度的中值,更明显地满足旋转要求,进一步分散,以及随之而来的超过性能极限状态概率的显著增加。考虑到运行性能水平,即作为重要结构类别的风机最常用的设计性能水平,不考虑 SSI 效应可能会明显低估需求并导致高风险决策。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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