具有可靠性更新的概率故障评估图

IF 4.4 2区 工程技术 Q1 ENGINEERING, OCEAN
Shen Li, Feargal Brennan
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引用次数: 0

摘要

海洋结构由于承受海洋环境的动载荷,如波浪力,容易产生疲劳裂纹。疲劳裂纹的产生和扩展会严重损害海上设施的结构能力,影响其适用性。对于有裂缝的结构,破坏通常表现为断裂和/或塑性坍塌。失效评估图(FAD)方法是专为评估断裂和塑性坍塌之间的相互作用而设计的,如BS 7910等行业标准所认可的。虽然已经有相当多的研究对这一领域进行了探索,但许多研究都局限于确定性分析或概率分析,而没有考虑裂纹扩展,这阻碍了FAD无缝支持需要生命周期方法的结构完整性管理的能力。本文试图通过引入基于FAD原则的结构可靠性分析方法来解决这一研究空白。本文开发的方法包括三个主要部分:裂纹扩展分析、概率FAD和可靠性更新。前两部分共同计算结构可靠度,并基于FAD公式计算极限状态函数。通过条件概率,可以方便地更新可靠性,从而可以合并检查中的裂纹尺寸数据,从而保留FAD的实用性,用于检查后的工程关键评估。给出了一个说明性的例子来说明该方法在t型管接头上的应用,包括与基于临界裂纹尺寸的评估的比较。最后,对该领域未来的研究和发展方向进行了展望。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Probabilistic failure assessment diagram with reliability update
Offshore structures are susceptible to fatigue cracks due to the dynamic loading they endure from the marine environment, such as wave-induced forces. The initiation and propagation of fatigue cracks can significantly compromise the structural capacity of offshore installations, affecting their fitness-for-service. For structures with cracks, failure often manifests through fracture and/or plastic collapse. The Failure Assessment Diagram (FAD) methodology is specifically designed to evaluate the interaction between fracture and plastic collapse, as recognised in industry standards such as BS 7910. While a considerable number of studies have explored this area, many have been confined to either deterministic analysis or probabilistic analysis without considering crack growth, hindering the capability of FAD to seamlessly support structural integrity management which demands a life-cycle approach. This paper seeks to address this research gap by introducing a structural reliability analysis methodology grounded in FAD principles. The methodology developed herein comprises three primary components: crack growth analysis, probabilistic FAD, and reliability updating. The first two components work in conjunction to compute the structural reliability, with the limit state function based on FAD formulation. Reliability updating is facilitated through conditional probability, enabling the incorporation of crack sizing data from inspections so that preserving FAD’s utility for post-inspection engineering critical assessment. An illustrative example is presented to demonstrate the application of the methodology on a tubular T-joint, including a comparison with evaluations based on critical crack size. Finally, avenues for future research and developments in this field are outlined.
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来源期刊
Applied Ocean Research
Applied Ocean Research 地学-工程:大洋
CiteScore
8.70
自引率
7.00%
发文量
316
审稿时长
59 days
期刊介绍: The aim of Applied Ocean Research is to encourage the submission of papers that advance the state of knowledge in a range of topics relevant to ocean engineering.
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