Surface roughness influence on the behaviour of biocomposite adhesive joints

被引:0
|
作者
Badami, Andrea [1 ,2 ]
Raffa, Maria Letizia [1 ]
Klinkova, Olga [1 ]
Rizzoni, Raffaella [2 ]
Da Silva Botelho, Tony [1 ]
Zambelis, Georges [3 ]
机构
[1] ISAE Supmeca, Lab QUARTZ, 3 rue Fernand Hainaut, F-93407 St Ouen, France
[2] Univ Ferrara, Dept Engn, Via Saragat 1, I-44122 Ferrara, Italy
[3] Safran Compos, 33 Ave Gare, F-91760 Itteville, France
关键词
Adhesive joints; Biocomposites; Finite elements; Mode-I; Flax/epoxy composites; Cohesive zone model; COHESIVE-ZONE MODEL; BONDED JOINTS; FLAX FIBER; STRENGTH; FRACTURE; NANOSTRUCTURE; COMPOSITES; SIMULATION;
D O I
10.1016/j.ijmecsci.2024.109624
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
While research has explored surface treatment effects on adhesive joints made by synthetic composites or metals, there is a lack of research on biocomposite adhesive joints. This work aims to explore the effects of the surface roughness, induced by a sandblasting treatment, on the Mode-I-behaviour of adhesive joints made by flax/epoxy composites. This work focuses on the roughness induced by a variation of the sandlasting pressure. Roughness measurements were carried out on biocomposite adherents for three pressures (5, 6 and 7 bar). A finite element model (FEM) of a double cantilever beam (DCB) with a cohesive description (cohesive zone model, CZM) of the adhesive was proposed. In a macroscopic way, the roughness effect is represented by the change in the CZM parameters, accordingly, an identification procedure for different roughness level, was proposed. Comparisons between experimental Mode-I tests and FE simulations reveal a significant correlation between surface roughness and joint behaviour. A roughness mean depth R approximate to 3 mu m, induced by a sandblasting pressure of 5 bar, appear to maximize the bonding strength ( +16 . 6% with respect to 7 bar pressure-induced roughness R approximate to 4 mu m ). The Mode-I fracture energy decreases with the increasing of the roughness mean depth R (- 33% between 5 and 7 bar conditions). These results provide critical insights for optimizing manufacturing processes of flax/epoxy composite adhesive joints in industries striving for sustainable solutions.
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页数:10
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