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Seismic strengthening of unreinforced masonry buildings with steel elements.

机译:用钢构件对未加固的砖石建筑进行抗震加固。

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摘要

This study is concerned with the seismic strengthening of URM walls in which the in-plane lateral resistance is significantly weakened by large openings for doors and windows. The current practice of using steel bracing elements to strengthen these perforated walls was evaluated experimentally for its efficacy. It was found that for the "rocking-critical" masonry wall piers, the overall hysteretic behavior can be significantly improved by installing a steel framing system consisting of vertical and horizontal elements around the wall--without any braces. Vertical elements provide the necessary hold-down forces to stabilize the rocking piers. The piers "rocked" through a number of cycles of large displacements without crumbling or shattering apart, displaying a ductile response. Degradation of their hysteretic response was observed at story drifts in the vicinity of 1% to 1.5%, primarily due to the crushing of the spandrel portion of the wall under increased compression resulting from the hold-down effect of the verticals. Due to the steel frame, the failure mode of rocking wall piers did not change to shear-critical, however, failure under a high compression was observed.; Finite element analyses accurately predicted the envelope response of the test specimens. A simple mechanics based model was developed to predict the load-deflection behavior of a stabilized rocking pier. Since reasonable agreement between the experimental data and the model was found, this model can be used to design the strengthening system in a more rational way.; The strengthened system not only has excellent strength, stiffness and ductility, it also limits the damage to the brittle wall pier, thus providing safety against sudden failure. The post-elastic behavior of the integrated system is more ductile despite the brittleness of the masonry. This strengthening scheme utilizes the considerable load sharing which occurs at almost all load stages between the existing masonry and the added steel elements. The controlled amount of masonry cracking adds to the damping of the system without serious risk to the structure's vertical load carrying capacity. It is also suggested that energy dissipation devices can be used to limit the forces in the verticals and to supplement the system damping for safer and better performance.
机译:这项研究涉及URM墙的抗震加固,其中大的门窗开口大大削弱了平面内的横向阻力。通过实验评估了使用钢支撑元件加固这些多孔壁的当前实践。人们发现,对于“摇摆关键”的砌体墙墩,通过在墙壁周围安装由垂直和水平元素组成的钢框架系统(无支撑),可以显着改善整体滞后性能。垂直元件提供必要的压紧力以稳定摇摆墩。码头在大位移的多个周期中“摇动”而不会崩溃或破碎,显示出延性响应。在楼层漂移在1%至1.5%附近时,观察到了其滞后响应的降低,这主要是由于垂直线的压紧效应导致在增加的压缩力下墙的翼展部分被压碎了。由于采用了钢框架,因此摇摆壁墩的破坏模式没有改变为剪切临界状态,但是,在高压缩下观察到了破坏。有限元分析可以准确地预测试样的包络响应。建立了一个简单的基于力学的模型来预测稳定摇摆墩的荷载-挠度行为。由于在实验数据和模型之间找到了合理的一致性,因此该模型可用于以更合理的方式设计加固系统。增强的系统不仅具有出色的强度,刚度和延展性,而且还限制了对脆性墙墩的损坏,从而提供了防止突然失效的安全性。尽管砌体很脆,但集成系统的后弹性行为更具延性。这种加固方案利用了相当大的荷载分担,这种分担几乎发生在现有砌体和增加的钢构件之间的几乎所有荷载阶段。砌体裂缝的受控数量增加了系统的阻尼,而对结构的垂直承载能力没有严重的风险。还建议使用能量消散装置来限制垂直方向上的力,并补充系统阻尼,以实现更安全和更好的性能。

著录项

  • 作者

    Rai, Durgesh Chandra.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Engineering Civil.
  • 学位 Ph.D.
  • 年度 1996
  • 页码 147 p.
  • 总页数 147
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 建筑科学;
  • 关键词

  • 入库时间 2022-08-17 11:49:22

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