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Simulating the shake table response of unreinforced masonry cavity wall structures tested to collapse or near-collapse conditions

机译:模拟未原始的砌体壁结构测试以塌陷或近塌陷条件的摇动台响应

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摘要

The seismic performance of existing unreinforced masonry (URM) buildings is considerably affected by typology and level of effectiveness of both construction details and structural components, especially if not originally designed for resisting earthquakes. Within this framework, the use of advanced numerical approaches that are capable of duly accounting for such aspects might improve significantly the assessment of the global response of URM structures. In this article, the applied element method is thus employed for simulating the shake table response of a number of full-scale building specimens representative of cavity wall terraced house construction, used in a number of countries exposed to tectonic or induced seismicity, accounting explicitly for the influence of the presence of both rigid and flexible diaphragms, degree of connections among structural members, and interaction between in- and out-of-plane mechanisms. Although the models slightly underestimated the energy dissipation in some specific cycles prior to collapse, the predicted crack patterns, failure modes, and hysteretic behaviors have shown a good agreement with their experimental counterparts.
机译:施工细节和结构部件的类型学和效力水平的抗震性能有很大影响,施工细节和结构部件的效力水平,特别是如果原先用于抵抗地震。在此框架内,使用能够正式核算此类方面的先进数值方法可能会显着提高对URM结构的全局响应的评估。因此,在本文中,所应用的元件方法用于模拟代表腔壁露台房屋建筑代表的多个全规模建筑标本的摇动表响应,用于一些暴露于构造或诱导地震性的国家,明确核算刚性和柔性隔膜的存在,结构构件之间的连接程度以及平面外机构之间的相互作用。虽然模型在崩溃之前略微低估了一些特定循环中的能量耗散,但是预测的裂缝模式,故障模式和滞后行为都与他们的实验同行具有良好的一致性。

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