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Prediction of rubble-stone masonry walls response under axial compression using 2D particle modelling

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dc.contributor.author Azevedo, N. pt_BR
dc.contributor.author Pinho, F. pt_BR
dc.contributor.author Cismasiu, I. pt_BR
dc.contributor.author Souza, M. pt_BR
dc.date.accessioned 2022-09-09T15:34:16Z pt_BR
dc.date.accessioned 2022-11-04T10:56:16Z
dc.date.available 2022-09-09T15:34:16Z pt_BR
dc.date.available 2022-11-04T10:56:16Z
dc.date.issued 2022-08 pt_BR
dc.identifier.uri https://repositorio.lnec.pt/jspui/handle/123456789/1015267
dc.description.abstract To predict the structural behaviour of ancient stone masonry walls is still a challenging task due to their strong heterogeneity. A rubble-stone masonry modeling methodology using a 2D particle model (2D-PM), based on the discrete element method is proposed given its ability to predict crack propagation by taking directly into account the material structure at the grain scale. Rubble-stone (ancient) masonry walls tested experimentally under uniaxial compression loading conditions are numerically evaluated. The stone masonry numerical models are generated from a close mapping process of the stone units and of the mortar surfaces. A calibration procedure for the stone-stone and mortar-mortar contacts based on experimental data is presented. The numerical studies show that the 2D-PM wall models can predict the formation and propagation of cracks, the initial stiffness and the maximum load obtained experimentally in traditional stone masonry walls. To reduce the simulation times, it is shown that the wall lateral numerical model adopting a coarser mortar discretization is a viable option for these walls. The mortar behaviour under compression with lateral confinement is identified as an important micro-parameter, that influences the peak strength and the ductility of rubble-masonry walls under uniaxial loading. pt_BR
dc.language.iso eng pt_BR
dc.publisher MDPI pt_BR
dc.rights openAccess pt_BR
dc.subject Rubble-stone masonry pt_BR
dc.subject Particle model pt_BR
dc.subject Validation pt_BR
dc.subject Prediction pt_BR
dc.subject Uniaxial compression pt_BR
dc.subject Micro-parameters identification pt_BR
dc.title Prediction of rubble-stone masonry walls response under axial compression using 2D particle modelling pt_BR
dc.type article pt_BR
dc.description.pages 20p pt_BR
dc.description.sector DBB/NMMR pt_BR
dc.description.magazine Buildings pt_BR
dc.contributor.peer-reviewed SIM pt_BR
dc.contributor.academicresearchers SIM pt_BR
dc.contributor.arquivo SIM pt_BR


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