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伸缩装置UHPC锚固构造设计与静力性能研究
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Design and Static Performance Research of UHPC Anchorage Structures for Expansion Device
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    为综合解决桥梁伸缩缝锚固区混凝土易破损及预埋件焊接工艺繁琐的难题,提出两种现场零焊接UHPC(Ultra-high Performance Concrete)伸缩缝锚固接头优化构造方案:优化构造1中锚板一侧布置锚筋另一侧布置短栓钉;优化构造2中锚板两侧均布置短栓钉,且型钢侧向加设长栓钉;两种优化构造中锚板与预埋钢筋均错开布置,锚固区浇筑UHPC. 新方案简化了现场施工操作,使伸缩装置安装质量可视化. 为探究新方案的锚固性能,并与传统焊接形式进行对比,即锚板一侧布置锚筋另一侧与预埋钢筋现场焊接,锚固区浇筑SFRC(Steel Fiber Reinforced Concrete),对8个1∶1伸缩缝接头模型进行锚固性能静力拔出试验研究. 结果表明:两种优化伸缩缝接头构造的结构刚度、强度、抗裂性能及锚固性能均有明显提升,优化构造1、2的初裂荷载为传统焊接构造的2.2倍,极限承载能力分别为传统焊接构造的1.38倍和2.33倍;UHPC表面裂缝分布相对集中,数量少且细,而SFRC表面裂缝分布较为分散,数量多且宽;优化构造2中长栓钉的加设有效限制了界面裂缝的发展. 对比研究表明,两种优化方案提高了伸缩装置的受力性能和锚固性能,现场零焊接、安装容差性高,可为桥梁伸缩缝设计提供参考.

    Abstract:

    In order to comprehensively solve the problems of concrete damage in the anchorage zone and the complicated welding process of embedded parts in the bridge expansion joint, two optimal schemes of ultra-high performance concrete (UHPC) expansion joint structures without welding on site were proposed: in optimal scheme 1, an anchorage reinforcement was arranged on one side of the anchorage plate and short studs on the other side; in optimal scheme 2, short studs were arranged on both sides of the anchorage plate, while long studs were added to the side of the section steel. In both schemes, the anchorage plates and embedded reinforcements were staggered, and the anchorage zone was poured with UHPC. The two optimal schemes make the construction operation simple and ensure the visualization of the installation quality. In order to explore the anchorage performance of the two optimal schemes and compare them with the traditional expansion joint, eight expansion joint specimens for a 1∶1 scale were tested. As for the traditional expansion joint, the anchorage reinforcement was welded on one side of the anchorage plate and the embedded reinforcement on the other side, and then the anchorage zone was poured with SFRC. The results show that the rigidity, strength, crack resistance, and anchorage performance of the two optimal schemes are significantly improved. The initial crack loads of the optimal scheme 1 and 2 are both 2.2 times that of the traditional one, while their ultimate bearing capacities are 1.38 times and 2.33 times that of the traditional, respectively. The cracks on the UHPC surface are relatively concentrated, small, and thin, but scattered, numerous and wide cracks on the SFRC surface. In optimal scheme 2, the long studs effectively limit the development of interface cracks. The comparative study shows that the two new schemes improve the mechanical performance and anchorage performance of expansion joints, without welding on site and high installation tolerance, which provide references for the design of bridge expansion joints

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李盼盼 ,邵旭东 ?,刘琼伟 ,曹君辉 ,赵旭东 .伸缩装置UHPC锚固构造设计与静力性能研究[J].湖南大学学报:自然科学版,2022,49(11):126~136

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  • 在线发布日期: 2022-12-12
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