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Effect of the main cable bending stiffness on flexural and torsional vibrations of suspension bridges: Analytical approach

机译:主电缆弯曲刚度对悬架桥梁弯曲和扭转振动的影响:分析方法

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摘要

In the design and analysis of suspension bridges, the main cables are conventionally treated as flexible ropes transmitting only tensile loads. Large-span suspension bridges used in new railways require the main cables to be designed with larger cross-sections and higher bending stiffness. The latter can affect the dynamic behavior of the entire bridge. To this end, the analytical expression of the main cable's shape is established in this paper, considering the bending stiffness under the dead loads. According to the D'Alembert principle, the partial differential equations of vibration of the cable in the suspension bridge are derived and solved. Finally, frequencies and mode shapes of the flexural and torsional vibrations of the bridge are calculated considering the main cable bending stiffness. To verify the feasibility of the proposed method, a case study of the Wufengshan Yangtze River Bridge is investigated. The analytical results are compared with the finite element solutions obtained by the ANSYS software, with good agreement achieved. By using the proposed method, the effect of the main cable bending stiffness on the flexural and torsional vibrations of suspension bridges is analyzed. The results show that the cable bending stiffness has a larger effect on flexural vibrations than torsional vibrations. The bridge's frequencies become higher with the increase of cable bending stiffness. Besides, as the order of vibration mode or the ratio of the bending stiffness of cables to the beam increases, the effect of main cable bending stiffness gets greater.
机译:在悬架桥的设计和分析中,主要电缆通常被视为柔性绳索仅透射拉伸载荷。新铁路中使用的大跨度悬架桥要求主电缆设计,具有较大的横截面和更高的弯曲刚度。后者会影响整个桥梁的动态行为。为此,考虑到死载下的弯曲刚度,建立了主电缆形状的分析表达。根据D'·甲烷的原理,推导和解决了悬架桥中电缆振动的部分微分方程。最后,考虑到主电缆弯曲刚度,计算桥梁的弯曲和扭转振动的频率和模式形状。为了验证所提出的方法的可行性,研究了武信山长江桥的案例研究。将分析结果与ANSYS软件获得的有限元解决方案进行比较,实现了良好的一致性。通过使用所提出的方法,分析了主电缆弯曲刚度对悬浮桥的弯曲和扭转振动的影响。结果表明,电缆弯曲刚度对弯曲振动具有比扭转振动更大。随着电缆弯曲刚度的增加,桥梁的频率变得更高。此外,作为振动模式的顺序或电缆的弯曲刚度与光束的比率增加,主电缆弯曲刚度的效果变得更大。

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