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In-Plane Behaviour of a Reinforcement Concrete Frame with a Dry Stack Masonry Panel

机译:带有干砌砌体面板的钢筋混凝土框架的平面内行为

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摘要

In order to improve the energy dissipation of the masonry infilled frame structure while decreasing the stiffening and strengthening effects of the infill panels, a new dry stacked panel (DSP) semi-interlocking masonry (SIM) infill panel has been developed. In this paper, the material properties of DSP and a traditional unreinforced masonry (URM) panel have been evaluated experimentally. A series of cyclic tests were performed to investigate the cyclic behaviour of the reinforcement concrete (RC) frame with different infill panels. The failure modes, damage evolution, hysteretic behaviour, stiffness degradation and energy dissipation were compared and analysed. We concluded that DSP is capable of significantly improving the seismic energy dissipation due to its hysteretic behaviour when the frame is in elastic stage without increasing the stiffness of the frame. Therefore, DSP or SIM panels can be considered as frictional dampers. Based on the experimental results, the influence of DSP was examined. Using the parallel model, the hysteretic loops of DSP subjected to different load cases were achieved. The typical full hysteretic loop for DSP could be divided into three distinct stages of behaviour: packing stage, constant friction stage and equivalent strut stage. The connection between the panel and the frame had a great effect on the transferring of different mechanical stages. The constant friction stage was verified to provide substantial energy dissipation and benefits to the ductility of the structure, which, therefore, is suggested to be prolonged in reality.
机译:为了改善砌体填充框架结构的能量消耗,同时减少填充板的加固和加强效果,已经开发了一种新型的干堆叠板(DSP)半联锁砌体(SIM)填充板。在本文中,已经通过实验评估了DSP和传统的非增强砌体(URM)面板的材料性能。进行了一系列循环测试,以研究具有不同填充面板的钢筋混凝土(RC)框架的循环行为。对失效模式,损伤演化,滞后行为,刚度下降和能量耗散进行了比较和分析。我们得出的结论是,由于DSP在框架处于弹性阶段时具有滞后性,因此能够显着改善地震能量消散,而不会增加框架的刚度。因此,DSP或SIM面板可以视为摩擦阻尼器。根据实验结果,考察了DSP的影响。使用并行模型,获得了在不同负载情况下DSP的磁滞回线。 DSP的典型全滞后回路可分为三个不同的行为阶段:填充阶段,恒定摩擦阶段和等效支柱阶段。面板和框架之间的连接对不同机械平台的转移有很大影响。经过验证,恒定摩擦阶段可提供大量的能量消耗,并有益于结构的延展性,因此建议在现实中将其延长。

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