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An Integrated System for Enhancing Flexural Members’ Capacity via Combinations of the Fiber Reinforced Plastic Use, Retrofitting, and Surface Treatment Techniques

机译:通过纤维增强塑料的使用,改造和表面处理技术的组合来增强抗弯构件的能力的集成系统

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This paper elaborates on the theoretical background, necessity, and techniques for enhancing the flexural capacity of a T-section member under combined bending and shear. The paper is based on a continuing research program seeking solutions to the design disparities arising from the introduction of new seismic codes and revised earthquake mapping prior to the tsunami and major earthquakes that occurred in South East Asia more than a decade ago. The research considered the application of external reinforcement using fiber-reinforced polymer (FRP) sheets, creating confinement in the shear area, and improving the tensile strength zone. The test results suggested that the methods sufficiently increased the load-carrying capacity to meet the new provisions, but they also showed that the optimum load-carrying capacity was not reached due to debonding of the FRP sheets in the tensile zone. The work was expanded to search for a surface treatment method that could shift the failure mode from debonding to FRP rupture by performing direct shear tests on treated FRP-to-concrete bond surfaces. Using the best surface treatment method, a failed member was straightened, retrofitted, and re-reinforced in terms of both shear and tension. The experimental results showed that the load-carrying capacity of the flexural member not only increased significantly, but the surface treatment methods also overcame the interface debonding problem. This research provides a method for upgrading the flexural capacity of T-section members designed prior to the tsunami and earthquakes of 2004, and it offers a solution for cracked section repair and restoration.
机译:本文阐述了在组合弯曲和剪切作用下提高T型截面构件抗弯能力的理论背景,必要性和技术。本文基于一项持续的研究计划,旨在寻求解决方案的差异,这些差异是由于引入新的地震法规和修订的地震图绘制而产生的,而该地震规范发生于十多年前东南亚发生的海啸和大地震之前。该研究考虑了使用纤维增强聚合物(FRP)片材进行外部增强的应用,在剪切区域内形成约束,并改善了拉伸强度区域。测试结果表明,这些方法充分提高了承载能力以满足新规定,但它们也表明,由于拉伸区内FRP片材的剥离,未能达到最佳承载能力。工作进行了扩展,以寻求一种表面处理方法,该方法可以通过对已处理的FRP与混凝土的粘结表面进行直接剪切试验,来将破坏模式从脱胶转变为FRP破裂。使用最佳的表面处理方法,对失效的构件进行剪切,拉伸和拉直处理,然后对其进行加固。实验结果表明,抗弯构件的承载能力不仅显着提高,而且表面处理方法还克服了界面剥离的问题。这项研究为提高2004年海啸和地震之前设计的T形截面构件的抗弯能力提供了一种方法,并为裂缝截面的修复和恢复提供了解决方案。

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