Modified Deflection Theory for Preliminary Design of Self-Anchored Suspension Bridges

Minmao Liao, Huaili Peng
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Abstract

A modified deflection theory is developed for preliminary design of self-anchored suspension bridges. The proposed theory modifies the questionable approach of the existing theory considering the initial fabrication camber and overcomes the limitation that the hangers are assumed inextensible, which results in a stiffer bridge system and thus underestimation of the main cable and girder deflections. In addition, in order to avoid the inconvenience of solving a system of nonlinear equations iteratively for the preliminary design, the tower flexural stiffness is neglected rationally to obtain a system of linear equations only. With the aid of all force equilibrium and deformation compatibility conditions for the entire bridge system, the modified deflection theory is formulated. Its solution procedure is presented, which leads to a complicated sixth-order variable-coefficient ordinary differential equation, and a practical approximate solution to the equation is sought. To verify the proposed theory, a bridge example is investigated, and the results are compared to those from the previous deflection theory and complex finite element analysis. The comparisons demonstrate the effectiveness of the modified deflection theory.
自锚式悬索桥初步设计中的修正挠度理论
提出了一种修正的挠度理论,用于自锚式悬索桥的初步设计。提出的理论修正了现有理论中有问题的方法,考虑了初始制造弯度,克服了假设吊架不可伸缩的局限性,这种局限性会导致桥梁系统变得更硬,从而低估了主缆和主梁的挠度。此外,为避免初步设计时迭代求解非线性方程组带来的不便,合理忽略塔的抗弯刚度,只得到线性方程组。根据整个桥梁体系的所有力平衡和变形协调条件,建立了修正的挠度理论。给出了一个复杂的六阶变系数常微分方程的求解过程,并寻求该方程的实用近似解。为了验证所提出的理论,以一座桥梁为例进行了研究,并将结果与以往的挠度理论和复杂有限元分析结果进行了比较。通过比较验证了修正的挠度理论的有效性。
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