拉伸荷载下铝/玻璃纤维增强塑料粘接强度的数值研究

IF 1.7 4区 工程技术 Q4 POLYMER SCIENCE Journal of Polymer Engineering Pub Date : 2024-01-10 DOI:10.1515/polyeng-2023-0273
Mohammad Reza Samadi, Mohammad Hossein Alaei, Jafar Eskandari Jam
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引用次数: 0

摘要

本研究采用有限元分析法研究了铝(Al)与玻璃纤维增强聚合物(GFRP)的粘接,以优化粘接强度。机械表面处理对粘合剂粘接的化学特性(增加表面能并产生更强的粘接)和机械特性(产生机械互锁并增加摩擦)有很大影响。因此,我们采用响应面法研究了沟槽数量(1、3、5)、沟槽角度(0、45、90°)、沟槽形状(V 形、方形、凹形)和连接类型(金属-金属、金属-复合材料、复合材料-复合材料)对粘接拉伸强度的影响。为了模拟铝/玻璃纤维增强塑料在不同参数条件下的粘接行为,使用了内聚区模型来考虑裂纹的生长。通过理想函数法获得的优化结果表明,沟槽数量为 1、沟槽形状为正方形、沟槽角度为 0°、金属-金属连接类型时,粘接强度最大。由可取函数和有限元分析预测的优化结果与实验测试结果十分吻合。
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Numerical investigation of the strength of Al/GFRP adhesive bonding under tensile loading
In this study, adhesive bonding of aluminum (Al) to glass fiber reinforced polymer (GFRP) was investigated using finite element analysis to optimize bond strength. Mechanical surface preparation has a great influence on the chemical properties (increasing surface energy and creating a stronger bond) and mechanical properties (creating mechanical interlocking and increasing friction) of adhesive bonding. Hence, the response surface method was employed to examine the influence of groove number (1, 3, 5), groove angle (0, 45, 90°), groove shape (V-shape, square, concave), and joint type (metal–metal, metal–composite, composite–composite) on the tensile strength of the bond. To simulate the bond behavior of Al/GFRP under different parameter conditions, the cohesive zone model was used to consider the crack growth. Optimization results obtained by the desirability function method showed that the maximum bond strength was achieved with a groove number of 1, groove shape of square, groove angle of 0°, and metal–metal joint type. The optimization results predicted by the desirability function and finite element analysis were in good agreement with those obtained by experimental tests.
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来源期刊
Journal of Polymer Engineering
Journal of Polymer Engineering 工程技术-高分子科学
CiteScore
3.20
自引率
5.00%
发文量
95
审稿时长
2.5 months
期刊介绍: Journal of Polymer Engineering publishes reviews, original basic and applied research contributions as well as recent technological developments in polymer engineering. Polymer engineering is a strongly interdisciplinary field and papers published by the journal may span areas such as polymer physics, polymer processing and engineering of polymer-based materials and their applications. The editors and the publisher are committed to high quality standards and rapid handling of the peer review and publication processes.
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