Tension-bending coupled fatigue life study of semi-parallel steel wire cables using a developed LEFM method

IF 3.9 2区 工程技术 Q1 ENGINEERING, CIVIL Structures Pub Date : 2024-09-27 DOI:10.1016/j.istruc.2024.107381
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Abstract

Semi-parallel steel wire cables, specifically their anchorage segments, endure tension-bending coupled cyclic loads due to traffic and wind actions in existing cable-supported bridges. The fatigue life deterioration of spiral steel wires remains ambiguous in semi-parallel steel wire cables under such coupled cyclic loads because of its substantial diameter and helical configuration. To address this, the axial stress experienced by spiral steel wires located at cable anchorage segments was determined using a previously proposed analytical method for semi-parallel steel wire cables under coupled load in tension and bending. Subsequently, a corresponding fatigue life assessment methodology was developed, grounded in the principles of linear elastic fracture mechanics (LEFM). The developed methodology innovatively encompasses the crack propagation life within both the near-threshold and steady growth stages for steel wires inside bridge cables. The theoretical prediction of fatigue life for spiral steel wires inside bridge cables demonstrates strong agreement with relevant experimental results documented in the literature, with the relative difference being less than 11.1 %. Notably, the fatigue life of spiral steel wires inside bridge cables exhibits a nonlinear decrease with increasing cyclic load ranges both in tension and bending, respectively. The two cyclic loads emerge as the most detrimental load combination at a 0 phase difference situation for fatigue failure of bridge cables. Furthermore, the cyclic loads in tension and bending mutually suppress each other’s effects for phase differences ranging from 0 to π/2. Apart from fluctuations in chord form, the fatigue life of spiral steel wires inside bridge cables generally increases along the longitudinal direction in a global trend. Remarkably, the fatigue life reaches its minimum values at the anchorage device end for spiral steel wires inside bridge cables, with the outermost steel wire exhibiting the shortest fatigue life.
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使用开发的 LEFM 方法研究半平行钢丝缆的拉伸-弯曲耦合疲劳寿命
半平行钢丝缆索,特别是其锚固段,在现有的缆索支撑桥梁中承受着交通和风力作用造成的拉弯耦合循环载荷。由于半平行钢丝缆索的直径较大且呈螺旋状,因此在这种耦合循环载荷作用下,螺旋钢丝的疲劳寿命衰减情况仍不明确。为了解决这个问题,我们使用之前提出的半平行钢丝缆索在拉伸和弯曲耦合载荷下的分析方法,确定了位于缆索锚固段的螺旋钢丝所承受的轴向应力。随后,以线性弹性断裂力学(LEFM)原理为基础,开发了相应的疲劳寿命评估方法。所开发的方法创新性地涵盖了桥梁缆索内钢丝在近阈值和稳定增长阶段的裂纹扩展寿命。对桥梁缆索内螺旋钢丝疲劳寿命的理论预测与文献记载的相关实验结果非常吻合,相对差异小于 11.1%。值得注意的是,桥梁缆索内螺旋钢丝的疲劳寿命随着拉伸和弯曲循环载荷范围的增加而呈现非线性下降。在相位差为 0 的情况下,这两种循环载荷是对桥梁缆索疲劳破坏最不利的载荷组合。此外,在相位差为 0 至 π/2 时,拉伸和弯曲循环载荷会相互抑制彼此的影响。除了弦线形式的波动外,桥梁缆索内螺旋钢丝的疲劳寿命一般沿纵向呈整体上升趋势。值得注意的是,桥梁缆索内螺旋钢丝的疲劳寿命在锚固装置端达到最小值,最外层钢丝的疲劳寿命最短。
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来源期刊
Structures
Structures Engineering-Architecture
CiteScore
5.70
自引率
17.10%
发文量
1187
期刊介绍: Structures aims to publish internationally-leading research across the full breadth of structural engineering. Papers for Structures are particularly welcome in which high-quality research will benefit from wide readership of academics and practitioners such that not only high citation rates but also tangible industrial-related pathways to impact are achieved.
期刊最新文献
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