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Bond behavior and interface modeling of reinforced high-performance fiber-reinforced cementitious composites

机译:增强高性能纤维增强水泥复合材料的粘合行为和界面建模

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High-performance fiber-reinforced cementitious-composites (HPFRCCs) reinforced with mild steel reinforcing bars have bond strengths that are higher than ordinary concrete under monotonic loading conditions. High bond strengths in HPFRCCs have been attributed to the material toughness of HPFRCCs, which effectively restrains splitting cracks under monotonic loads. Characterization of the interface between HPFRCCs and mild reinforcement under cyclic loads remains largely unknown. The bond-slip behavior of two HPFRCC mixtures are examined under monotonic and cyclic loads in beam-end flexural specimens. Bond strength is shown to deteriorate due to cyclic load reversals after the maximum bond stress is reached, resulting in lower bond-slip toughness. Three dimensional computational simulations are conducted to investigate observed crack patterns and internal deformations at the interface of the HPFRCC and steel reinforcement. Numerical simulation results predicted splitting crack patterns observed in physical experiments, and also suggest that interface crushing occurs at the intersection of the reinforcement lugs and HPFRCC material. Further, simulated performance shows that damage to the bond interface is altered by the deformation history applied to the interface. (C) 2017 Elsevier Ltd. All rights reserved.
机译:高性能纤维增强的胶凝剂复合材料(HPFRCC)用温和的钢筋加强杆加固,具有比单调负载条件下普通混凝土高的粘合强度。 HPFRCC中的高粘合强度归因于HPFRCC的材料韧性,其有效地限制了单调负载下的分裂裂缝。循环载荷下HPFRCC和温和加固之间的界面的表征在很大程度上是未知的。在光束端弯曲标本中的单调和循环载荷下检查两个HPFRCC混合物的粘结性能。在达到最大粘合应力之后,粘合强度由于循环负载逆转而导致劣化,导致粘合韧性较低。进行三维计算模拟,以研究HPFRCC和钢筋的界面处的观察到的裂缝图案和内部变形。数值模拟结果预测物理实验中观察到的分裂裂纹图案,并且还建议在加强凸耳和HPFRCC材料的交叉处发生界面破碎。此外,模拟性能表明,通过应用于界面的变形历史,对绑定接口的损坏改变。 (c)2017 Elsevier Ltd.保留所有权利。

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