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High-temperature mechanical behavior of Al-Cu matrix composites containing diboride particles

机译:含二硼化物颗粒的Al-Cu基复合材料的高温力学行为

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An aluminum-copper matrix composite reinforced with aluminum diboride particles was studied at high temperature via thermomechanometry experiments. The matrix contained 2 wt% Cu, whereas the amount of boron forming AlB_(2)ranged from 0 to 4 wt%, i.e., 0 to 8.31 vol% of diboride particles. In the first segment of the research, we demonstrated that larger amounts of AlB_(2)particles raised the composite hardness even at 300°C. To assess the material creep behavior, another set of specimens were tested under 1 N compression at 400°C and 500°C for 12 h. Higher levels of AlB_(2)allowed the composites to withstand compression creep deformations at those temperatures. By using existing creep models developed for metal matrix composites we were able to determine that viscous slip deformation was the dominant deformation mechanism for the temperatures and stress levels used in our experiments. Additionally, the computed creep activation energy for these aluminum matrix composites were found comparable to the energies reported for other similar materials, for instance, Al/SiC_(p)composites.
机译:通过热力学实验研究了用二硼化铝颗粒增强的铝-铜基复合材料。基体包含2重量%的Cu,而形成硼的AlB_(2)的量为二硼化物颗粒的0至4重量%,即0至8.31体积%。在研究的第一部分中,我们证明了即使在300°C时,大量的AlB_(2)颗粒也可以提高复合材料的硬度。为了评估材料的蠕变行为,另一组样品在400°C和500°C的1 N压缩下测试了12小时。较高的AlB_(2)含量可使复合材料在这些温度下承受压缩蠕变变形。通过使用为金属基复合材料开发的现有蠕变模型,我们能够确定粘性滑移变形是实验所用温度和应力水平的主要变形机制。此外,发现这些铝基复合材料的计算蠕变活化能与其他类似材料(例如Al / SiC_(p)复合材料)报道的能量相当。

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