Rock anchor hanger effect on single-tower earth-anchored suspension bridge mechanical performance: An analytical model and multi-objective golden eagle optimization

Yu-peng Chen, Wenmin Zhang
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Abstract

The application of a composite saddle in single-tower earth-anchored suspension bridges (STEASBs) replaces the tower on the steep slope side, which is a cost-effective solution that improves bridge safety and provides environmental protection for the steep bank slope of the valley. However, this novel bridge design needs an appropriate model to evaluate the effect of rock anchor hangers on the structure in the non-girder area and adjust their parameters to optimize the mechanical response of the whole bridge structure. This study proposes an approach to quickly evaluate the most unfavorable load cases of the STEASB and further optimizes the structural parameters of rock anchor hangers to enhance structural safety. An analytical model for the STEASBs under the live load is proposed and verified by the finite element model (FEM), with the maximum relative error not exceeding 7.37%. Combined with the golden eagle optimizer (GEO), the most unfavorable load cases of the corresponding design indices are yielded. The Pareto optimal solutions for the spacing, cross-sectional area, and initial tension of the vertical rock anchor hangers are obtained through multi-objective optimization to improve the mechanical behavior of STEASBs. In addition, it is clarified that the main function of rock anchor hangers is to reduce the peak value of the stress amplitude of the hangers and girder-end rotation, providing a theoretical basis for the STEASB design.
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岩锚吊架对单塔土锚式悬索桥力学性能的影响:分析模型和多目标金鹰优化法
在单塔土锚式悬索桥(STEASB)中应用复合鞍座取代陡坡侧的塔架,是一种经济有效的解决方案,既能提高桥梁的安全性,又能为陡峭的河谷岸坡提供环境保护。然而,这种新型桥梁设计需要一个合适的模型来评估非梁区岩石锚固支吊架对结构的影响,并调整其参数以优化整个桥梁结构的力学响应。本研究提出了一种快速评估 STEASB 最不利荷载情况的方法,并进一步优化岩锚支吊架的结构参数,以提高结构安全性。研究提出了活载作用下 STEASB 的分析模型,并通过有限元模型(FEM)进行了验证,最大相对误差不超过 7.37%。结合金鹰优化器(GEO),得出了相应设计指标的最不利荷载情况。通过多目标优化,获得了垂直岩石锚杆挂架的间距、横截面积和初拉力的帕累托最优解,从而改善了 STEASB 的力学性能。此外,还阐明了岩锚支吊架的主要功能是降低支吊架应力振幅峰值和梁端旋转,为 STEASB 的设计提供了理论依据。
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