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An analytical algorithm for reasonable central tower stiffness in the three-tower suspension bridge with unequal-length main spans

机译:主跨不等长的三塔悬索桥中心塔刚度合理的解析算法

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Three-tower suspension bridges with unequal-length main spans more easily adapt to different terrain features and therefore, have broader application prospects. However, due to the unique "central tower effect" of the three-tower suspension bridge, it is required that the lateral stiffness of the central tower in the longitudinal direction of the bridge girder should be neither too large nor too small. To calculate the reasonable range for the central tower stiffness in the three-tower suspension bridge with unequal-length main spans, this study proposes an analytical algorithm based on the segmental catenary theory. Firstly, hanger tensile forces under the joint action of dead and live loads are calculated. Next, the governing equations for the main cable shape of each span are constructed for the following conditions: closure of elevation difference, closure of span length, moment balance of splay saddle, and conservation of unstrained length of the main cable. The solutions of the derived set of simultaneous equations are obtained for (i) deflection-to-span ratio limit of the stiffening girder and (ii) anti-slip control between the main cable and saddle conditions, which yield the lower and upper limits of reasonable stiffness of the central tower, respectively. This study discusses a three-tower suspension bridge spanned as 248 m + 1060 m + 1360 m + 380 m. The calculation is performed for the two cases of the live load application: (i) to the longer main span and (ii) to the shorter main span. The results obtained proved the feasibility and effectiveness of the proposed algorithm. The following findings are reported: The upper and lower limits of reasonable central tower stiffness are derived from the above two cases, respectively. Therefore, it is not sufficient to consider only the former case when calculating the central tower stiffness of the three-tower suspension bridge with equal-length main spans. The dead-to-live load ratio and friction coefficient between the main cable and saddle also strongly influence the central tower stiffness: their increase can expand the reasonable range of the latter but if they are too small, no such optimization can be provided.
机译:主跨不等长的三塔式悬索桥更容易适应不同的地形特征,因此具有广阔的应用前景。但是,由于三塔式悬索桥的独特的“中心塔效应”,要求中心塔在桥梁的纵向上的侧向刚度既不能太大也不能太小。为了计算主跨不等长的三塔悬索桥中心塔刚度的合理范围,提出了一种基于分段链理论的解析算法。首先,计算了恒载和活载共同作用下的吊架拉力。接下来,在以下条件下构造每个跨度的主缆线形状的控制方程式:闭合高差,闭合跨度长度,张开鞍的力矩平衡以及保持主缆线的非应变长度。对于(i)加劲梁的挠曲-跨度比极限和(ii)主缆索和鞍座条件之间的防滑控制,可获得导出的联立方程组的解,从而得出了下限和上限。中央塔架的合理刚度。本研究讨论了一座跨度为248 m + 1060 m + 1360 m + 380 m的三塔式悬索桥。针对活荷载应用的两种情况执行计算:(i)到较长的主跨度和(ii)到较短的主跨度。得到的结果证明了该算法的可行性和有效性。报告了以下发现:合理的中央塔架刚度的上限和下限分别来自以上两种情况。因此,在计算等长主跨的三塔式悬索桥的中心塔刚度时,仅考虑前者是不够的。主缆索与鞍座之间的静载载荷比和摩擦系数也强烈影响中心塔架的刚度:增加中心塔架的刚度可以扩大后者的合理范围,但是如果它们太小,则无法提供这种优化。

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