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Normal, high and ultra-high modulus carbon fiber-reinforced polymer laminates for bonded and un-bonded strengthening of steel beams

机译:普通,高和超高模量碳纤维增强聚合物层压板,用于钢梁的粘结和非粘结加固

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摘要

This paper studies the elastic behavior of steel beams strengthened with normal, high and ultra-high modulus CFRP laminates using bonded and un-bonded systems. The elastic behavior of retrofitted beams provides useful information for design of fatigue strengthening systems. A total of seven steel beams including one control unstrengthened beam and six strengthened beams were tested statically until failure in a simply supported four-point bending set-up. The steel beams were retrofitted by normal modulus (NM), high modulus (HM) and ultra-high modulus (UHM) carbon fiber-reinforced polymer (CFRP) laminates with nominal Young's moduli, ranging from 165 to 440 GPa. Each type of laminate was attached to the steel beams using bonded reinforcement (BR) and un-bonded reinforcement (UR) systems. There is no direct comparison between the BR and the UR systems in the literature. The main goal of the paper is to provide a better understating about the stress distribution along the beam bottom flange when the BR and the UR systems are used for strengthening. All specimens failed due to lateral-torsional buckling (LTB). The effect of different strengthening methods on buckling capacity of the retrofitted specimens was also studied. Experimental results have shown that strengthening using bonded UHM laminates could increase the stiffness of the composite section so that the steel profile has yielded prior to buckling and a larger reinforcement efficacy was then achieved.
机译:本文研究了使用粘结和非粘结体系的普通,高和超高模量CFRP层压板增强的钢梁的弹性性能。改装梁的弹性性能为疲劳增强系统的设计提供了有用的信息。静态测试了总共7条钢梁,包括1条对照未加强梁和6条加强梁,直到在简单支撑的四点弯曲装置中失效。钢梁通过标准模量(NM),高模量(HM)和超高模量(UHM)碳纤维增强聚合物(CFRP)层压板进行改型,其标称杨氏模量为165至440 GPa。使用粘结增强(BR)和非粘结增强(UR)系统将每种类型的层压板连接到钢梁。在文献中,BR和UR系统之间没有直接比较。本文的主要目的是在使用BR和UR系统进行加固时,更好地降低沿梁底部法兰的应力分布。所有样品均由于横向扭转屈曲(LTB)而失败。还研究了不同加固方法对改型后试件屈曲能力的影响。实验结果表明,使用粘结的UHM层压板进行加固可以增加复合材料截面的刚度,从而使钢材在屈曲之前就已经屈服,从而获得更大的加固效果。

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  • 来源
    《Materials & design》 |2015年第2期|232-243|共12页
  • 作者单位

    Empa, Swiss Federal Laboratories for Materials Science and Technology, Structural Engineering Research Laboratory, Duebendorf, Switzerland ,ETHZ, Swiss Federal Institute of Technology Zuerich, Institute of Structural Engineering (IBK), Zuerich, Switzerland;

    Empa, Swiss Federal Laboratories for Materials Science and Technology, Structural Engineering Research Laboratory, Duebendorf, Switzerland ,School of Civil Engineering, University of Tehran, Iran;

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