Masonry strengthened with natural fabric-reinforced cementitious matrix (NFRCM-strengthened masonry) is investigated by updating an existing discrete element model. Masonry walls are modelled by rigid blocks and elastoplastic interfaces that are able to account for mortar joints and block cracking. The reinforcement is modelled in a simplified manner considering perfect adhesion between wall and reinforcement and by adopting further spring elements connecting block centres. The model is validated by comparing it with an existing FEM based on a multi-step homogenization, where reinforced masonry is considered as a whole. Both approaches are used for performing nonlinear pushover tests with an increasing shear action applied to unreinforced and reinforced panels. The updated discrete model turns out to be able to represent the strength increment given by the reinforcement, but it is less able to represent the corresponding ductility increment.

An Updated Discrete Element Model for the In-Plane Behaviour of NFRCM Strengthened Masonry Walls

Baraldi, Daniele
;
Boscato, Giosuè;Cecchi, Antonella;de Carvalho Bello, Claudia Brito
2022-01-01

Abstract

Masonry strengthened with natural fabric-reinforced cementitious matrix (NFRCM-strengthened masonry) is investigated by updating an existing discrete element model. Masonry walls are modelled by rigid blocks and elastoplastic interfaces that are able to account for mortar joints and block cracking. The reinforcement is modelled in a simplified manner considering perfect adhesion between wall and reinforcement and by adopting further spring elements connecting block centres. The model is validated by comparing it with an existing FEM based on a multi-step homogenization, where reinforced masonry is considered as a whole. Both approaches are used for performing nonlinear pushover tests with an increasing shear action applied to unreinforced and reinforced panels. The updated discrete model turns out to be able to represent the strength increment given by the reinforcement, but it is less able to represent the corresponding ductility increment.
2022
Key Engineering Materials
1662-9795
Inglese
916
249
255
7
9783036400495
Trans Tech Publications Ltd Prof. Giovanni Castellazzi, Prof. Cristina Gentilini and Prof. Angelo Di Tommaso
Bäch
SVIZZERA
7. International Conference on Mechanics of Masonry Structures Strengthened with Composite Materials (MuRiCo 7)
24-26 Novembre 2021
online (Bologna, Italy)
Internazionale
no
contributo
Esperti anonimi
Discrete Element Model, FRCM, Homogenized FE Model, Masonry Strengthening, Natural Fibers, Shear Test
no
reserved
info:eu-repo/semantics/conferenceObject
4
3. Contributo in atti di convegno (Proceedings)::3.1 Contributo in atti di convegno
Baraldi, Daniele; Boscato, Giosuè; Cecchi, Antonella; de Carvalho Bello, Claudia Brito
273
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11578/314918
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