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Numerical study on mechanical and adhesive splices for ribbed GFRP plates used in concrete beams

机译:钢筋混凝土梁肋GFRP板的机械和粘合剂拼接的数值研究

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A new concrete beam design, comprising concrete core and glass fiber reinforced polymer (GFRP) ribbed side plates has been developed. Plate splicing is made by using a mechanically fastened or adhesively bonded spliced form through end ribs. This paper presents the development, calibration, and application of comprehensive finite element models for the hybrid beam. The models incorporate material and geometric nonlinearities along with bond-slip interfacial relations. Interfacial behavior at the plate-to-plate splice, whether adhesively bonded or mechanically fastened, as well as plate-concrete interface are considered. Parametric study was performed to examine the effects of fastener spacing and adhesive coverage length of the 4 mm thick GFRP plates. It was shown that the ultimate strength of beams with adhesively bonded splices was 28% higher than the beams with unbonded splice (i.e. without any adhesive or fasteners). Decreasing fastener spacing from 47 to 3.8 times the fastener diameter resulted in increasing ultimate load by about 20%. No further reduction in load occurs beyond fastener spacing larger than 47 times the diameter. The beam stiffness at service load is not affected by the fastener spacing or the adhesive coverage length.
机译:已经开发了一种新的混凝土梁设计,包括混凝土芯和玻璃纤维增​​强聚合物(GFRP)带肋的侧板。通过使用机械固定或通过端肋连接的粘合剂进行拼接,可以完成板拼接。本文介绍了混合梁的综合有限元模型的开发,校准和应用。该模型结合了材料和几何非线性以及键滑界面关系。考虑板对板接头处的界面行为,无论是胶粘结合还是机械固定,以及板混凝土界面。进行了参数研究,以检查4 mm厚GFRP板的紧固件间距和粘合剂覆盖长度的影响。结果表明,带有粘接连接的梁的极限强度比未粘接连接的梁(即没有任何粘接剂或紧固件)的极限强度高28%。将扣件间距从扣件直径的47倍减小到3.8倍,最终载荷增加了约20%。紧固件间距大于直径的47倍时,负载不会进一步减小。工作载荷下的梁刚度不受紧固件间距或粘合剂覆盖长度的影响。

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