Numerical analysis of the in-plane behaviour of decoupled masonry infilled RC frames

砖石建筑 结构工程 钢筋混凝土 无筋砌体房屋 平面(几何) 帧(网络) 地质学 工程类 数学 几何学 机械工程
作者
Marko Marinković,Christoph Butenweg
出处
期刊:Engineering Structures [Elsevier BV]
卷期号:272: 114959-114959
标识
DOI:10.1016/j.engstruct.2022.114959
摘要

• In the paper the in-plane response of decoupled masonry infills in reinforced concrete frames is investigated by means of numerical modelling. • Detailed numerical model is developed and validated against experimental results. • Due to the decoupling with elastomers, infill activation is rather low and it is postponed to high drift levels. • Parametric study performed in order to deeply understand the behaviour of decoupling system, showed significant benefits in the performance of masonry infilled frames under seismic loading. Damage of reinforced concrete (RC) frames with masonry infill walls has been observed after many earthquakes. Brittle behaviour of the masonry infills in combination with the ductile behaviour of the RC frames makes infill walls prone to damage during earthquakes. Interstory deformations lead to an interaction between the infill and the RC frame, which affects the structural response. The result of this interaction is significant damage to the infill wall and sometimes to the surrounding structural system too. In most design codes, infill walls are considered as non-structural elements and neglected in the design process, because taking into account the infills and considering the interaction between frame and infill in software packages can be complicated and impractical. A good way to avoid negative aspects arising from this behavior is to ensure no or low-interaction of the frame and infill wall, for instance by decoupling the infill from the frame. This paper presents the numerical study performed to investigate new connection system called INODIS (Innovative Decoupled Infill System) for decoupling infill walls from surrounding frame with the aim to postpone infill activation to high interstory drifts thus reducing infill/frame interaction and minimizing damage to both infills and frames. The experimental results are first used for calibration and validation of the numerical model, which is then employed for investigating the influence of the material parameters as well as infill’s and frame’s geometry on the in-plane behaviour of the infilled frames with the INODIS system. For all the investigated situations, simulation results show significant improvements in behaviour for decoupled infilled RC frames in comparison to the traditionally infilled frames.

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