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Mesoscopic damage evolution on bonding interface and its influence on macroscopic performance deterioration of reinforced concrete member

机译:粘接界面的介观损伤演化及其对钢筋混凝土构件宏观性能劣化的影响

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摘要

Slip or debonding of bonding interface is the key cause of the performance degradation or failure of the reinforced concrete (RC) member. In this paper, based on Monte Carlo method, a mesoscopic finite element model composed of mortar, coarse aggregate and steel rebar was established to consider the mesoscopic damage on the bonding interface and its influence on macroscopic performance deterioration of RC specimen. The results show that the simulation results fit well with experimental data. Higher initial interfacial damage results in lower bonding strength and smaller final displacement. Higher mortar modulus could greatly improve the initial bonding property and bonding strength, but slightly increase the final damage. Compared with the RC specimen model with plain steel bar, the model with deformed steel bar shows a longer duration of nonlinear increase for drawing force and lower bonding strength. When confinement is applied, the coalescence of damage zones is prevented due to the effect of thread. Therefore, the application of confinement could increase the bonding strength and the initial bonding property.
机译:粘接界面的滑动或剥离是钢筋混凝土(RC)成员性能降解或失效的关键原因。本文基于蒙特卡罗方法,建立了由砂浆,粗骨料和钢钢筋组成的介观有限元模型,以考虑对粘接界面的介观损伤及其对RC样本宏观性能劣化的影响。结果表明,仿真结果与实验数据相适合。较高的初始界面损伤导致较低的粘接强度和更小的最终位移。更高的砂浆模量可以大大提高初始粘合性和粘合强度,但略微增加最终的损伤。与具有普通钢棒的RC样本模型相比,具有变形钢筋的模型显示了拉伸力和较低粘接强度的较长持续时间的非线性增加。当施加限制时,由于螺纹的效果,防止了损伤区域的聚结。因此,禁闭的应用可以增加粘合强度和初始粘合性。

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