船体结构的超低周疲劳——大型箱梁的交替循环加载四点弯曲试验

IF 4 2区 工程技术 Q1 ENGINEERING, CIVIL Marine Structures Pub Date : 2024-11-29 DOI:10.1016/j.marstruc.2024.103732
Shi Song , Sören Ehlers , Franz von Bock und Polach , Moritz Braun
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引用次数: 0

摘要

超低周疲劳(ULCF)是指材料在少量加载循环下的失效。对于像船舶这样的大型复杂结构,ULCF的破坏会带来危险的后果。本研究以某大型箱梁的交替循环加载四点弯曲试验为例,代表船体结构的极限弯曲强度。试验过程中,在每次荷载作用下,试件在达到船体梁极限强度(UHGS)后仍会产生较大的变形,试件会发生广泛的塑性变形和明显的断裂。对严重损伤试件进行进一步试验,直至完成1.5次弯曲循环,实现箱梁损伤后试验。此外,箱梁分为3个子截面,表现出不同但仍相互作用的结构性能。试验结果表明,某大型复杂结构在达到UHGS后,出现了严重的挠性和挠性交替损伤,与ULCF的后果相对应。本文提出的ULCF试验也为大型复杂结构存在损伤或意外荷载后的研究提供了经验。考虑到试验的循环次数,本研究可以弥补单调过载与超低周疲劳之间的差距。
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Ultra-low cycle fatigue of ship hull structure – an alternately-cyclically loaded four-point bending test of a large box girder
Ultra-low cycle fatigue (ULCF) refers to material failure at small number of loading cycles. For large complex structures like ships, the damage from ULCF can bring hazardous consequences. In this study, an alternately-cyclically loaded four-point bending test of a large box girder is introduced as the specimen to represent the ULCF of ship hull structure. In every load during the test, large deformation is applied to the specimen even after reaching its ultimate hull girder strength (UHGS), thus extensive plastic deformation and obvious fracture can occur in the specimen. The severely damaged specimen is further tested until 1.5 cycles of bending are finished, thus the test of post-damage box girder is realized. Moreover, the box girder is divided into 3 sub-sections, which show different but still interacting structural behavior. The result of the test shows the structural behavior of a large complex structure suffering severe damage during alternate hogging and sagging after reaching its UHGS, which corresponds to the consequence of ULCF. The presented ULCF test also provides experiences for investigations of large complex structures with existing damages or after accidental loads. Considering the number of cycles in the test, this study can bridge the gap between monotonic overload and ultra-low cycle fatigue.
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来源期刊
Marine Structures
Marine Structures 工程技术-工程:海洋
CiteScore
8.70
自引率
7.70%
发文量
157
审稿时长
6.4 months
期刊介绍: This journal aims to provide a medium for presentation and discussion of the latest developments in research, design, fabrication and in-service experience relating to marine structures, i.e., all structures of steel, concrete, light alloy or composite construction having an interface with the sea, including ships, fixed and mobile offshore platforms, submarine and submersibles, pipelines, subsea systems for shallow and deep ocean operations and coastal structures such as piers.
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