Earth is a vernacular material with construction techniques varying based on local earth mixes, locally available soil. Therefore, there is no common standardization on earthen materials and construction which leads to a range of approaches. This study examines compressed earth block (CEB) masonry, stabilized with 8% cement. To address its low tensile and shear capacity, several reinforcement techniques are investigated: a concrete frame cast within the blocks, and a mixed system using Basalt Fiber Polymers (BFRP) mesh to reinforce the bed mortar joint. This improves tensile strength while maintaining frame behavior by bonding BFRP mesh with vertical reinforcement. Given the heterogeneity of both materials and masonry itself, experimental campaigns were conducted on material constituent level and on masonry system level, to define basic mechanical properties of cement-stabilized CEB, earth-based mortar and masonry system. Compression tests were performed on masonry panels to evaluate the different mechanical response of the construction system. To assess the mechanical behavior, a homogenized finite element (FE) model was calibrated based on experimental data and later used to investigate the systems response to vertical actions.

Experimental and Numerical Investigation on Mechanical Response of Reinforced Earth-Based Masonry System

Baldelli, Jacopo
;
Cecchi, Antonella
2026-01-01

Abstract

Earth is a vernacular material with construction techniques varying based on local earth mixes, locally available soil. Therefore, there is no common standardization on earthen materials and construction which leads to a range of approaches. This study examines compressed earth block (CEB) masonry, stabilized with 8% cement. To address its low tensile and shear capacity, several reinforcement techniques are investigated: a concrete frame cast within the blocks, and a mixed system using Basalt Fiber Polymers (BFRP) mesh to reinforce the bed mortar joint. This improves tensile strength while maintaining frame behavior by bonding BFRP mesh with vertical reinforcement. Given the heterogeneity of both materials and masonry itself, experimental campaigns were conducted on material constituent level and on masonry system level, to define basic mechanical properties of cement-stabilized CEB, earth-based mortar and masonry system. Compression tests were performed on masonry panels to evaluate the different mechanical response of the construction system. To assess the mechanical behavior, a homogenized finite element (FE) model was calibrated based on experimental data and later used to investigate the systems response to vertical actions.
2026
Structural Analysis of Historical Constructions : SAHC 2025 Volume 2 : Conference proceedings
Inglese
68
1301
1314
14
9783032167668
9783032167675
Springer
Cham
SVIZZERA
14th International Conference on Structural Analysis of Historical Constructions (SAHC 2025)
15-17 settembre 2025
Losanna
Internazionale
Earth Masonry, Compressed Earth Block, Fiber Reinforced, Basalt FRP, Homogenized Model.
no
restricted
info:eu-repo/semantics/conferenceObject
3
3. Contributo in atti di convegno (Proceedings)::3.1 Contributo in atti di convegno
Baldelli, Jacopo; Boscato, Giosuè; Cecchi, Antonella
273
   New Insights in the Mechanical Modeling of Cultural Heritage for Sustainable Restoration: Green Composites and Nano-Technologies (GreNaTe)
   GreNaTe
   Ministero dell'Istruzione, dell'Università e della Ricerca
   2022YLNJRY
File in questo prodotto:
File Dimensione Formato  
1419_Baldelli.pdf

solo utenti autorizzati

Tipologia: Documento in Pre-print
Licenza: DRM non definito
Dimensione 830.01 kB
Formato Adobe PDF
830.01 kB Adobe PDF   Visualizza/Apri   Richiedi una copia

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11578/376010
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus ND
  • ???jsp.display-item.citation.isi??? ND
social impact