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Numerical simulation of the seismic response and soil-structure interaction for a monitored masonry school building damaged by the 2016 Central Italy earthquake

机译:2016年中南地震损坏监测砌体学校建筑地震响应与土壤结构互动的数值模拟

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Despite significant research advances on the seismic response analysis, there is still an urgent need for validation of numerical simulation methods for prediction of earthquake response and damage. In this respect, seismic monitoring networks and proper modelling can further support validation studies, allowing more realistic simulations of what earthquakes can produce. This paper discusses the seismic response of the "Pietro Capuzi" school in Visso, a village located in the Marche region (Italy) that was severely damaged by the 2016-2017 Central Italy earthquake sequence. The school was a two-story masonry structure founded on simple enlargements of its load-bearing walls, partially embedded in the alluvial loose soils of the Nera river. The structure was monitored as a strategic building by the Italian Seismic Observatory of Structures (OSS), which provided acceleration records under both ambient noise and the three mainshocks of the seismic sequence. The evolution of the damage pattern following each one of the three mainshocks was provided by on-site survey integrated by OSS data. Data on the dynamic soil properties was available from the seismic microzonation study of the Visso village and proved useful in the development of a reliable geotechnical model of the subsoil. The equivalent frame (EF) approach was adopted to simulate the nonlinear response of the school building through both fixed-base and compliant-base models, to assess the likely influence of soil-structure interaction on the building performance. The ambient noise records allowed for an accurate calibration of the soil-structure model. The seismic response of the masonry building to the whole sequence of the three mainshocks was then simulated by nonlinear time history analyses by using the horizontal accelerations recorded at the underground floor as input motions. Numerical results are validated against the evidence on structural response in terms of both incremental damage and global shear force-displacement relationships. The comparisons are satisfactory, corroborating the reliability of the compliant-base approach as applied to the EF model and its computational efficiency to simulate the soil-foundation-structure interaction in the case of masonry buildings.
机译:尽管地震反应分析的研究取得了重大进展,但仍然迫切需要验证预测地震反应和破坏的数值模拟方法。在这方面,地震监测网络和适当的建模可以进一步支持验证研究,允许对地震可能产生的影响进行更真实的模拟。本文讨论了Visso“Pietro Capuzi”学校的地震反应。Visso是意大利Marche地区的一个村庄,2016-2017年意大利中部地震序列对该村庄造成了严重破坏。这所学校是一座两层砖石结构建筑,其承重墙经过简单扩建,部分嵌入奈拉河的冲积松散土壤中。意大利结构地震观测站(OSS)将该结构作为一座战略建筑进行监测,该观测站提供了环境噪声和地震序列三次主震下的加速度记录。三次主震中的每一次之后,破坏模式的演变由现场调查提供,并与OSS数据相结合。Visso村的地震微区划研究提供了动态土壤特性的数据,证明这些数据有助于开发可靠的底土岩土模型。采用等效框架(EF)方法,通过固定基础和柔顺基础模型模拟学校建筑的非线性响应,以评估土壤-结构相互作用对建筑性能的可能影响。环境噪声记录允许对土壤结构模型进行精确校准。然后,利用地下楼层记录的水平加速度作为输入运动,通过非线性时程分析,模拟了砌体建筑对三次主震的整个序列的地震响应。从增量损伤和整体剪切力-位移关系两方面对数值结果与结构响应的证据进行了验证。比较结果令人满意,证实了EF模型中柔顺地基方法的可靠性,以及其模拟砌体建筑中土壤-基础-结构相互作用的计算效率。

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