Dapped-end beams are critical regions in reinforced concrete (RC) bridges, since they can exhibit a brittle failure mechanism and are prone to deterioration. This study investigates the effectiveness of a post-installed internal diagonal steel bar as a strengthening solution for RC half-joints. Three specimens, one undamaged and two predamaged, were strengthened by embedding an M18 threaded bar in a 45◦ drilled hole filled with epoxy resin. Experimental results show that the strengthening method significantly increases the ultimate load and modifies the failure mechanism. The ultimate load increased by 61% for specimens without diagonal bars (type T1) and 34–40% for specimens with diagonal reinforcement (type T2), with crack widths reduced by up to 60% at service load levels. Strengthened specimens showed a change from localised splitting at the re-entrant corner to a more distributed diagonal cracking pattern. The study discusses the underlying load-transfer mechanism through a strut-and-tie interpretation and outlines practical application in existing bridge structures.

Strengthening of RC dapped-end beams with post-installed diagonal bars / Menichini, G., Gusella, F., Morano, S.G., Orlando, M.. - In: CONSTRUCTION AND BUILDING MATERIALS. - ISSN 0950-0618. - ELETTRONICO. - 539:(2026), pp. 1-17. [10.1016/j.conbuildmat.2026.147389]

Strengthening of RC dapped-end beams with post-installed diagonal bars

Menichini, Giovanni;Gusella, Federico;Morano, Salvatore Giacomo;Orlando, Maurizio
2026

Abstract

Dapped-end beams are critical regions in reinforced concrete (RC) bridges, since they can exhibit a brittle failure mechanism and are prone to deterioration. This study investigates the effectiveness of a post-installed internal diagonal steel bar as a strengthening solution for RC half-joints. Three specimens, one undamaged and two predamaged, were strengthened by embedding an M18 threaded bar in a 45◦ drilled hole filled with epoxy resin. Experimental results show that the strengthening method significantly increases the ultimate load and modifies the failure mechanism. The ultimate load increased by 61% for specimens without diagonal bars (type T1) and 34–40% for specimens with diagonal reinforcement (type T2), with crack widths reduced by up to 60% at service load levels. Strengthened specimens showed a change from localised splitting at the re-entrant corner to a more distributed diagonal cracking pattern. The study discusses the underlying load-transfer mechanism through a strut-and-tie interpretation and outlines practical application in existing bridge structures.
2026
539
1
17
Goal 9: Industry, Innovation, and Infrastructure
Menichini, Giovanni; Gusella, Federico; Morano, Salvatore Giacomo; Orlando, Maurizio
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Utilizza questo identificatore per citare o creare un link a questa risorsa: https://hdl.handle.net/2158/1481593
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