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A Novel Shape Finding Method for the Main Cable of Suspension Bridge Using Nonlinear Finite Element Approach

机译:非线性有限元方法悬架桥主电缆的一种新型形状发现方法

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摘要

The determination of the final cable shape under the self-weight of the suspension bridge enables its safe construction and operation. Most existing studies solve the cable shape segment-by-segment in the Lagrangian coordinate system. This paper develops a novel shape finding method for the main cable of suspension bridge using nonlinear finite element approach with Eulerian description. The governing differential equations for a three-dimensional spatial main cable is developed before a one-dimensional linear shape function is introduced to solve the cable shape utilizing the Newton iteration method. The proposed method can be readily reduced to solve the two-dimensional parallel cable shape. Two iteration layers are required for the proposed method. The shape finding process has no need for the information of the cable material or cross section using the present technique. The commonly used segmental catenary method is compared with the present method using three cases study, i.e., a 1666-m-main-span earth-anchored suspension bridge with 2D parallel and 3D spatial main cables as well as a 300-m-main-span self-anchored suspension bridge with 3D spatial main cables. Numerical studies and iteration results show that the proposed shape finding technique is sufficiently accurate and operationally convenient to achieve the target configuration of the main cable.
机译:在悬架桥的自重下决定最终电缆形状使其安全结构和操作能够。大多数现有研究解决了拉格朗日坐标系中的电缆形状逐个段。本文利用欧拉说明书开发了使用非线性有限元方法的悬架桥主电缆的新型形状发现方法。在利用牛顿迭代方法解决电缆形状以解决电缆形状之前,开发了三维空间主电缆的控制微分方程。可以容易地降低所提出的方法以解决二维平行电缆形状。所提出的方法需要两个迭代层。形状发现过程不需要使用本技术的电缆材料或横截面的信息。常用的分段悬链线方法与使用三个案例分析本发明的方法,即,1666-M-主跨度大地锚定吊桥与2D平行和三维空间主缆,以及一个300-M-main-相比跨度自锚式吊桥3D空间主电缆。数值研究和迭代结果表明,所提出的形状发现技术足以准确,可操作地方便实现主电缆的目标配置。

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