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五峰山长江大桥三块式主索鞍设计、制造与施工 被引量:5
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作者 唐贺强 徐恭义 《桥梁建设》 EI CSCD 北大核心 2022年第6期8-15,共8页
连镇铁路五峰山长江大桥主桥为主跨1092 m公铁两用钢桁梁悬索桥,大桥设2根直径1.3 m的主缆,主索鞍是实现主缆传力过渡的重要构件。主索鞍受力达7.06×10^(5)kN,设计采用双纵肋传力、铸焊结合、纵向三块式结构,上部鞍槽采用ZG270-480... 连镇铁路五峰山长江大桥主桥为主跨1092 m公铁两用钢桁梁悬索桥,大桥设2根直径1.3 m的主缆,主索鞍是实现主缆传力过渡的重要构件。主索鞍受力达7.06×10^(5)kN,设计采用双纵肋传力、铸焊结合、纵向三块式结构,上部鞍槽采用ZG270-480H铸钢铸造、下部鞍体采用Q345R钢板焊接,鞍体纵向长9.12 m(下部)、横向宽4.04 m、高4.30 m,单块鞍体重120 t,主索鞍顶推复位滑移系统采用格栅+不锈钢滑板+四氟板装置。主索鞍结构设计计算分析表明:结构应力在容许范围内,结构受力安全。主索鞍由2个厂家制造,分别采用鞍槽朝下、鞍槽朝上2种铸造方位方案,成型采用组芯造型及双层浇道、双浇口浇铸系统、底注式浇铸的铸造工艺方案;鞍体焊接顺序总体由内向外,以二氧化碳气体保护焊为主;鞍体制造机加工采用单块单独机加工和3块整体机加工2种方案。主索鞍在工厂内制造后分块运到施工现场,由塔顶门架依次将边跨侧、中间、主跨侧鞍体吊至塔顶后纵移到位,利用高强度螺栓连接成整体,经多次顶推后顺利到达设计成桥位置。 展开更多
关键词 公路铁路两用桥 三块式 主索鞍设计 槽铸造 体焊接 机加工 顶推施工
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自平衡装配式主索鞍设计
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作者 郝海龙 刘箐霖 魏乐永 《公路》 北大核心 2023年第6期34-39,共6页
张靖皋长江大桥南航道桥为主跨2 300 m的双塔双跨吊悬索桥,为适应建设条件特点,结合悬索桥索塔受力特点,创造性地提出了主缆缆力自平衡体系。自平衡装配式主索鞍是实现自平衡体系的关键构造,从张靖皋长江大桥自平衡装配式索鞍功能需求出... 张靖皋长江大桥南航道桥为主跨2 300 m的双塔双跨吊悬索桥,为适应建设条件特点,结合悬索桥索塔受力特点,创造性地提出了主缆缆力自平衡体系。自平衡装配式主索鞍是实现自平衡体系的关键构造,从张靖皋长江大桥自平衡装配式索鞍功能需求出发,综合考虑摩擦系数、结构受力、制作安装难度、施工过程需求、维护保养等问题,对自平衡装配式主索鞍的合理型式选择、结构设计、滚动副选材等问题进行阐述,为类似工程提供参考。 展开更多
关键词 缆缆力自平衡体系 装配式 主索鞍设计
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Spatial structural analysis of main saddle for single tower spatial cable self-anchored suspension bridge
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作者 李建慧 李爱群 +1 位作者 袁辉辉 李喜平 《Journal of Southeast University(English Edition)》 EI CAS 2009年第3期372-375,共4页
Based on the engineering background of the Jiangxinzhou Bridge in Nanjing, issues related to the spatial main saddle of the self-anchored suspension bridge are studied. The refinement finite element model is establish... Based on the engineering background of the Jiangxinzhou Bridge in Nanjing, issues related to the spatial main saddle of the self-anchored suspension bridge are studied. The refinement finite element model is established by the secondary development technology based on the platform of the general finite element program, and a reasonable load pattern is used in its spatial structural analysis, by which its path of force transference and stress distribution are obtained. Matched with the spatial main cable, the tangency point correction method is also discussed. The results show that the lateral wall stress of the saddle groove is higher than the stress within the wall due to the role of lateral forces in the finished bridge state; the horizontal volume force of the main cable can generate a gradient distributed vertical extrusion pressure on the saddle clamping device and the main saddle body; the geometric nonlinear effect of the self- anchored suspension bridge cable system in the construction process is significant, which can be reflected in the spatial tangent point position of the main cable with the main saddle changes a lot from free cable to finished cable. 展开更多
关键词 self-anchored suspension bridge finite element main saddle spatial cable structural design
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