A modified model for ultimate bearing capacity of CFRP-shear-strengthened pre-cracked beams with geopolymer

IF 1.7 4区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY Multidiscipline Modeling in Materials and Structures Pub Date : 2022-09-19 DOI:10.1108/mmms-07-2022-0121
Jinliang Liu, Xincheng Su
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引用次数: 1

Abstract

PurposeThe effects of failure mode and strain conditions of CFRP, concrete and stirrups on the shear capacity of reinforced beams bonded by geopolymer and epoxy are studied. In addition, a prediction model of the ultimate bearing capacity of CFRP-shear-strengthened beams is proposed, which considers adhesive performance parameters adhesive performance parameter ßE and FRP width parameter ßw.Design/methodology/approachThis paper presents an experimental study on ultimate bearing capacity of CFRP-shear-strengthened pre-cracked beams with geopolymer and epoxy resin, which considers parameters such as impregnated adhesives types and CFRP-strengthened scheme.FindingsThe failure modes of CFRP-strengthened beams bonded by geopolymer are the combination of the CFRP-concrete interface substrate failure and fracture failure of CFRP, and that of epoxy is the local substrate failures with small area. The ultimate load of CFRP-strengthened beams is directly affected by the failure modes. The ultimate bearing capacity of CFRP-strengthened beams with geopolymer is 91.4% of that of epoxy resin. Compared with ultimate bearing capacity of CFRP-strengthened beams with U-shaped, that of complete-wrapping increases by 2.5%. Moreover, the stirrup peak strain is reduced by more than 30% in CFRP-strengthened beams bonded with geopolymer and epoxy resin in comparison with the unstrengthened beam. The existing prediction model cannot accurately predict the CFRP shear capacity contribution of strengthened beams with different CFRP-strengthened schemes and adhesive properties. The estimated results are much lower than the test data, and the deviation is much larger than 20%.Originality/valueGeopolymer alternative to epoxy as an adhesive is feasible and effective for CFRP reinforcement. Furthermore, the accuracy is improved by introducing parameters about adhesive properties based on the existing prediction model. The estimated results are in excellent agreement with the test data, and the deviation is controlled within −12.80%, and the model is suitable for predicting the shear capacity of FRP-strengthened beams with ßf = 90° in shear capacity database.
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含地聚合物cfrp -剪力加固预裂梁极限承载力修正模型
目的研究碳纤维布、混凝土和箍筋的破坏模式和应变条件对地聚合物和环氧树脂粘结加固梁抗剪能力的影响。此外,提出了考虑粘结性能参数ßE和FRP宽度参数ßw的cfrp抗剪加固梁极限承载力预测模型。在考虑浸渍胶粘剂类型和cfrp加固方案等参数的情况下,对含地聚合物和环氧树脂的cfrp -剪力加固预裂梁的极限承载力进行了试验研究。结果地聚合物粘结CFRP加固梁的破坏模式为CFRP-混凝土界面基板破坏和CFRP断裂破坏的组合,环氧树脂的破坏模式为小面积的局部基板破坏。破坏模式直接影响cfrp加固梁的极限荷载。地聚合物cfrp加固梁的极限承载力是环氧树脂加固梁极限承载力的91.4%。与u形cfrp加固梁的极限承载力相比,全包覆梁的极限承载力提高了2.5%。此外,与未加固梁相比,使用地聚合物和环氧树脂粘结cfrp加固梁的箍筋峰值应变降低了30%以上。现有预测模型不能准确预测不同加固方案和粘结性能加固梁的抗剪承载力贡献。估计结果远低于试验数据,偏差远大于20%。原创性/价值地聚合物替代环氧树脂作为粘合剂用于CFRP加固是可行和有效的。此外,在现有预测模型的基础上引入胶粘剂性能参数,提高了预测精度。计算结果与试验数据吻合良好,偏差控制在- 12.80%以内,该模型适用于预测抗剪承载力数据库中ßf = 90°frp加固梁的抗剪承载力。
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来源期刊
CiteScore
3.70
自引率
5.00%
发文量
60
期刊介绍: Multidiscipline Modeling in Materials and Structures is published by Emerald Group Publishing Limited from 2010
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