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Research & review articles are invited for publication in September 2026 (Vol. 28, Issue 3) || Submission: up to 28th September || Editorial decision: within 48 hrs.

FINITE ELEMENT MODELING OF REINFORCED CONCRETE DEEP BEAMS TO STUDY SIZE AND SHEAR REINFORCEMENT EFFECT

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  • FINITE ELEMENT MODELING OF REINFORCED CONCRETE DEEP BEAMS TO STUDY SIZE AND SHEAR REINFORCEMENT EFFECT

Ebtihaj Abu Elgasim Mohamed Ahmed *, Mohammed Motasim Hamoda Mohammed, Taha Mohammed Jaafar Abd Alrahman and Alyaa Omer Mustafa Mohammed

 Structure department /School of Civil Engineering /Sudan University of Science and Technology.
* Corresponding Author
ORCID Details
Ebtihaj Abu Elgasim Mohamed Ahmed: https://orcid.org/0009-0005-0452-0016

Research Article

Global Journal of Engineering and Technology Advances, 2026, 28(02), 163–186

Article DOI: 10.30574/gjeta.2026.28.2.0222

DOI url: https://doi.org/10.30574/gjeta.2026.28.2.0222

Received on 13 July 2026; revised on 19 August 2026; accepted on 21 August 2026

Reinforced concrete deep beams are structural members characterized by relatively small span-to-depth ratios and nonlinear stress distributions. Because of their high shear capacity and ability to transfer concentrated loads, they are commonly used in transferring girders, pile caps, offshore structures, and other critical structural applications. Their behavior differs from that of slender beams because shear deformation, disturbed regions, diagonal cracking, and compression strut action strongly influence their load-transfer mechanism.
This study investigates the effects of beam size, web reinforcement, and beam width on the nonlinear behavior of reinforced concrete deep beams. Three groups of specimens were considered, with variations in overall depth, section width, and reinforcement arrangement. The investigation focused on load–deflection response, crack initiation, plastic strain distribution, shear capacity, and internal compressive force paths.
A three-dimensional nonlinear finite element model was developed using ABAQUS, and the Concrete Damaged Plasticity model was adopted to simulate concrete cracking, crushing, stiffness degradation, and inelastic response. The numerical results were validated against experimental data in terms of load–deflection behavior, crack development, and failure response. The comparison showed a good agreement between the finite element predictions and the experimental results, demonstrating the reliability of the calibrated numerical model.
The results indicate that increasing beam depth and width improve stiffness, increase load-carrying capacity, reduce midspan deflection, and delays crack formation. Beams with increased width and without stirrups developed lower plastic strain and greater crack resistance than narrower beams with web reinforcement. These findings confirm the significant role of beam geometry in controlling the structural response of reinforced concrete deep beams and demonstrate the effectiveness of nonlinear finite element analysis as a tool for investigating their behavior.

Reinforced Concrete Deep Beams; Nonlinear Finite Element Analysis; ABAQUS; Concrete Damaged Plasticity; Size Effect; Web Reinforcement; Beam Width; Plastic Strain.

https://gjeta.com/sites/default/files/fulltext_pdf/GJETA-2026-0222.pdf

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Ebtihaj Abu Elgasim Mohamed Ahmed, Mohammed Motasim Hamoda Mohammed, Taha Mohammed Jaafar Abd Alrahman and Alyaa Omer Mustafa Mohammed. FINITE ELEMENT MODELING OF REINFORCED CONCRETE DEEP BEAMS TO STUDY SIZE AND SHEAR REINFORCEMENT EFFECT. Global Journal of Engineering and Technology Advances, 2026, 28(02), 163–186. Article DOI: https://doi.org/10.30574/gjeta.2026.28.2.0222.

Copyright © Author(s). All rights reserved. This article is published under the terms of the Creative Commons Attribution 4.0 International License (CC BY 4.0), which permits use, sharing, adaptation, distribution, and reproduction in any medium or format, as long as appropriate credit is given to the original author(s) and source, a link to the license is provided, and any changes made are indicated.


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