Toward predictive damage analysis of aluminum adhesive joints through graded cohesive zone modeling: part I-mechanical response and failure mechanisms

Functionally graded adhesives (FGAs) offer a promising approach for mitigating stress concentrations in adhesively bonded joints; however, the mechanisms governing their influence on load transfer and damage evolution remain insufficiently understood. This study presents a high-fidelity three-dimensional numerical investigation of single-lap joints using a fully coupled functionally graded cohesive zone model (FG-CZM) implemented through a USDFLD subroutine. The model was validated against experimental results, accurately reproducing joint stiffness, peak load, and failure displacement. Comparative analysis of mono-modulus adhesives confirmed the classical strength-ductility tradeoff, with the ductile adhesive exhibiting approximately 30% higher load capacity than the brittle reference. In contrast, all graded configurations achieved substantial performance improvements, with average peak-load gains approaching 40% relative to Araldite® AV138. The optimal gradation attained a load capacity within 5% of the ductile Adekit® A140 while providing enhanced deformation capability. Mechanistically, the improvements originate from stress-field redistribution rather than stress amplification. Optimized gradation increased the effective shear-transfer length from approximately 50% to nearly 80% of the overlap, reduced tensile peel stresses by up to 35%, and delayed damage localization. Furthermore, graded architecture reduced the fully degraded cohesive zone by up to 40%, promoting distributed damage and enhanced fracture resistance.

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Publication Details

Journal
Mechanics of Advanced Materials and Structures
Published
2026-09-25
DOI
https://doi.org/10.1080/15376494.2026.2734177
Primary Topic
Mechanical Behavior of Composites
Type
article
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Toward predictive damage analysis of aluminum adhesive joints through graded cohesive zone modeling: part I-mechanical response and failure mechanisms

Kamel Zouggar, Mohammed Walid Harmel, Majed Melibary, Kouider Madani
Mechanics of Advanced Materials and Structures
Mechanical Behavior of Composites
article

Toward predictive damage analysis of aluminum adhesive joints through graded cohesive zone modeling: part I-mechanical response and failure mechanisms

Kamel Zouggar, Mohammed Walid Harmel, Majed Melibary, Kouider Madani
article en

Abstract

Functionally graded adhesives (FGAs) offer a promising approach for mitigating stress concentrations in adhesively bonded joints; however, the mechanisms governing their influence on load transfer and damage evolution remain insufficiently understood. This study presents a high-fidelity three-dimensional numerical investigation of single-lap joints using a fully coupled functionally graded cohesive zone model (FG-CZM) implemented through a USDFLD subroutine. The model was validated against experimental results, accurately reproducing joint stiffness, peak load, and failure displacement. Comparative analysis of mono-modulus adhesives confirmed the classical strength-ductility tradeoff, with the ductile adhesive exhibiting approximately 30% higher load capacity than the brittle reference. In contrast, all graded configurations achieved substantial performance improvements, with average peak-load gains approaching 40% relative to Araldite® AV138. The optimal gradation attained a load capacity within 5% of the ductile Adekit® A140 while providing enhanced deformation capability. Mechanistically, the improvements originate from stress-field redistribution rather than stress amplification. Optimized gradation increased the effective shear-transfer length from approximately 50% to nearly 80% of the overlap, reduced tensile peel stresses by up to 35%, and delayed damage localization. Furthermore, graded architecture reduced the fully degraded cohesive zone by up to 40%, promoting distributed damage and enhanced fracture resistance.

Mechanics of Advanced Materials and StructuresVol. 33(1)
University of Jeddah (SA), Université Djilali de Sidi Bel Abbès (DZ)
Openalex Percentile: Top 20%
Mechanical Behavior of Composites
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Toward predictive damage analysis of aluminum adhesive joints through graded cohesive zone modeling: part I-mechanical response and failure mechanisms — Kamel Zouggar, Mohammed Walid Harmel, et al. · Mechanics of Advanced Materials and Structures (2026) | TGRS Research Map | TGRS