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Stable second phase: The key to high-temperature creep performance of particle reinforced aluminum matrix composite

机译:第二阶段稳定:颗粒增强铝基复合材料高温蠕变性能的关键

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摘要

High-temperature creep behavior of 45vol%-SiCp/2024Al was studied at 250-350 degrees C under 40-140 MPa. True stress exponent and activation energy were measured 8 and 227.7 kJ/mol, respectively. The feature substructure of SiCp/2024Al was the second phase Al2Cu dispersed at the interface. The evolution of microstructure and the reason for its high creep activation energy were both analyzed and discussed. theta' phase and S' phase underwent different evolution processes during creep. theta' phase gradually transformed to theta phase and remain stable from the steady-state creep until creep rupture. High content of the interface facilitated the dispersion of Al2Cu. The relationship between true stress exponent and interface content as well as the key to high true stress exponent of high volume fraction particle reinforced aluminum matrix composite were also discussed. This research provided new perspectives and guidance for designing and fabricating composites with superior high-temperature creep properties.
机译:在250-350摄氏度,40-140 MPa的压力下研究了45vol%-SiCp / 2024Al的高温蠕变行为。真实应力指数和活化能分别测量为8和227.7 kJ / mol。 SiCp / 2024Al的特征子结构是第二相Al2Cu分散在界面处。分析和讨论了微观结构的演变及其高蠕变活化能的原因。在蠕变过程中,θ相和S相经历了不同的演化过程。 θ'相逐渐转变为θ相,并从稳态蠕变直至蠕变破裂保持稳定。高含量的界面促进了Al2Cu的分散。还讨论了真应力指数与界面含量之间的关系,以及高体积分数颗粒增强铝基复合材料获得高真应力指数的关键。该研究为设计和制造具有优异高温蠕变性能的复合材料提供了新的观点和指导。

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