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承受静动力作用的预应力钢支撑柱的数值模拟与设计建议

Numerical simulation and design recommendations for prestressed steel stayed columns subjected to static and dynamic effects.

作者信息

AboElnaga Aya, Mortagi Mohamed, El Madawy Mohamed E, Naguib M, Abdelrahman A H A

机构信息

Structural Engineering Department, Faculty of Engineering, Mansoura University, Mansoura, 35516, Dakahlia, Egypt.

出版信息

Sci Rep. 2025 Aug 20;15(1):30651. doi: 10.1038/s41598-025-14542-7.

Abstract

This study investigates the static and dynamic behavior of prestressed steel stayed columns (PSCs), with a particular emphasis on buckling performance under both axial and seismic loading conditions. Unlike prior work that primarily focused on static response or simplified configurations, this research offers a comprehensive investigation encompassing modal analysis and time-history response under seismic excitation, providing valuable insights into the dynamic performance of PSC systems. Advanced finite element (FE) models are developed in ABAQUS using fully automated scripting that defines node coordinates and element connectivity for main columns, cross-arms, and cable stays. These models incorporate geometric and material nonlinearities and are validated against existing experimental and analytical results. A novel design configuration featuring two-level cross-arms is introduced, substantially expanding beyond the conventional single-level systems addressed in earlier studies. Through an extensive parametric study, key parameters such as cross-arm length, cable diameter, and geometric proportions are systematically examined. Based on the numerical findings, new predictive formulas are proposed to estimate the ultimate buckling capacity of two-level PSCs, supporting efficient and resilient preliminary design.

摘要

本研究调查了预应力钢支撑柱(PSC)的静态和动态行为,特别关注轴向和地震荷载作用下的屈曲性能。与以往主要关注静态响应或简化构型的工作不同,本研究提供了一项全面的调查,涵盖模态分析和地震激励下的时程响应,为PSC系统的动态性能提供了有价值的见解。在ABAQUS中使用全自动脚本开发了先进的有限元(FE)模型,该脚本定义了主柱、横臂和拉索的节点坐标和单元连接性。这些模型考虑了几何和材料非线性,并根据现有的实验和分析结果进行了验证。引入了一种具有两级横臂的新颖设计构型,大大扩展了早期研究中涉及的传统单级系统。通过广泛的参数研究,系统地研究了横臂长度、拉索直径和几何比例等关键参数。基于数值结果,提出了新的预测公式来估计两级PSC的极限屈曲能力,以支持高效且有弹性的初步设计。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a755/12368134/63809c84b0cc/41598_2025_14542_Fig1_HTML.jpg

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