CFRP与铝合金粘接-自冲铆接数值模拟及损伤机理研究

    Numerical Simulation and Damage Mechanism Study on CFRP and Aluminum Alloy Bonding and Self-piercing Riveted Joints

    • 摘要: 针对碳纤维增强树脂基复合材料(CFRP)与金属粘接-自冲铆混合连接工艺的损伤问题,基于理论模型建立了粘接-自冲铆接成形过程数值仿真模型并开展研究。为了深入探索铆钉硬度对CFRP和6061-T6铝合金粘接-自冲铆复合连接接头损伤机理的影响,采用硬度值为H4和H2的半空心铆钉进行试验分析。对比分析不同硬度铆钉接头的硬化效果、内部应力分布情况与层间单元刚度退化状态。结果表明,不同铆钉的塑性变形导致不同的硬度分布,H4铆钉接头比H2铆钉接头具有更好的硬化效果,且接头的强度损失相对较低。混合连接接头的损伤集中在铆钉正下方区域;H4铆钉接头外部区域的层内和层间损坏范围较H2铆钉接头小,具有更好的成型质量。层合板的铺层设计影响混合连接接头层间损伤的分布;特别是对于0°/45°/90°/-45°s铺层设计的层合板,层间损伤扩展的方向与下层纤维铺设方向的相关性更高。

       

      Abstract: Aiming at the damage problem of carbon fiber reinforced polymer(CFRP) and metal bonding and self-piercing riveted hybrid joint process, a numerical simulation model of bonding and self-piercing riveted forming process was established based on the theoretical model, and the research was carried out. In order to explore the effect of rivet hardness on the damage mechanism of CFRP and 6061-T6 aluminum alloy bonding and self-piercing riveted hybrid joints, semi-hollow rivets with hardnesses of H4 and H2 were used for experimental analysis. The aim was to compare and analyze the hardening effect, internal stress distribution and interlayer stiffness degradation of rivet joints with different hardness values. The results indicate that the plastic deformation of the rivets varies with their hardness, the H4 rivet joint exhibits a superior hardening effect compared to the H2 rivet joint, while also experiences relatively low strength loss. Damage of the hybrid joint is concentrated in the region directly below the rivet, with H4 rivet joints demonstrating smaller intralayer and interlayer damage ranges and better forming quality compared to H2 rivet joints. Additionally, the lay-up design of laminates influences the interlayer damage distribution of the mixed joint, particularly for laminates with a 0°/45°/90°/-45°slay-up design, where the interlayer damage propagation direction is more closely related to the laying direction of the underlying fiber.

       

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