Correia Arménio N, Coelho Rodrigo J, Braga Daniel F O, Guedes Mafalda, Baptista Ricardo, Infante Virgínia
Instituto Superior Técnico, Universidade de Lisboa, Av. Rovisco Pais, 1049-001 Lisboa, Portugal.
INEGI, Faculdade de Engenharia, Universidade do Porto, Rua Dr. Roberto Frias, 400, 4200-465 Porto, Portugal.
Polymers (Basel). 2025 May 16;17(10):1366. doi: 10.3390/polym17101366.
This study investigates the mechanical and fatigue behaviour of friction stir composite joints fabricated from an aluminum alloy (AA6082-T6) and a glass fibre-reinforced polymer (Noryl GFN2) under different service temperature conditions. The joints were tested under both quasi-static and cyclic loading at three different temperatures (23, 75, and 130 °C). Fracture surfaces were analyzed, and the probabilistic S-N curves were derived using Weibull distribution. Results indicated that increasing the service temperature caused a non-linear decrease in both the quasi-static and fatigue strength of the joints. Compared to room temperature, joints tested at 75 °C and 130 °C showed a 10% and 50% reduction in average tensile strength, respectively. The highest fatigue strength occurred at 23 °C, while the lowest was at 130 °C, in line with the quasi-static results. Fatigue stress-life plots displayed a semi-logarithmic nature, with lives ranging from 10 to 10 cycles for stress amplitudes between 7.7 and 22.2 MPa at 23 °C, 7.2 to 19.8 MPa at 75 °C, and 6.2 to 13.5 MPa at 130 °C. The joints' failure occurred in the polymeric base material close to joints' interface, highlighting the critical role of the polymer in limiting joints' performance, as confirmed by thermal and scanning electron microscopy analyses.
本研究调查了在不同服役温度条件下,由铝合金(AA6082-T6)和玻璃纤维增强聚合物(诺瑞尔GFN2)制成的搅拌摩擦复合接头的力学和疲劳行为。接头在三种不同温度(23、75和130°C)下进行了准静态和循环加载测试。分析了断口表面,并使用威布尔分布推导了概率S-N曲线。结果表明,提高服役温度会导致接头的准静态强度和疲劳强度呈非线性下降。与室温相比,在75°C和130°C下测试的接头平均抗拉强度分别降低了10%和50%。最高疲劳强度出现在23°C,而最低疲劳强度出现在130°C,这与准静态结果一致。疲劳应力-寿命图呈现半对数性质,在23°C下,应力幅值在7.7至22.2MPa之间时,寿命范围为10至10次循环;在75°C下,应力幅值在7.2至19.8MPa之间;在130°C下,应力幅值在6.2至13.5MPa之间。接头的失效发生在靠近接头界面的聚合物基材中,热分析和扫描电子显微镜分析证实了聚合物在限制接头性能方面的关键作用。