Xuan Yang, Nastac Laurentiu
The University of Alabama, Department of Metallurgical and Materials Engineering, Box 870202, Tuscaloosa, AL 35487, USA.
The University of Alabama, Department of Metallurgical and Materials Engineering, Box 870202, Tuscaloosa, AL 35487, USA.
Ultrasonics. 2018 Feb;83:94-102. doi: 10.1016/j.ultras.2017.06.023. Epub 2017 Jul 1.
Recent studies showed that the microstructure and mechanical properties of aluminum based nanocomposites can be significantly improved when ultrasonic cavitation and solidification processing is used. This is because ultrasonic cavitation processing plays an important role not only in degassing and dispersion of the nanoparticles, but also in breaking up the dendritic grains and refining the as-cast microstructure. In the present study, A356 alloy and AlO nanoparticles are used as the matrix alloy and the reinforcement, respectively. Nanoparticles were added into the molten A356 alloy and dispersed via ultrasonic cavitation processing. Ultrasonic cavitation was applied over various temperature ranges during molten alloy cooling and solidification to investigate the grain structure formation and the nanoparticle dispersion behavior. Optical Microscopy and Scanning Electron Microscopy were used to investigate in detail the differences in the microstructure characteristics and the nanoparticle distribution. Experimental results indicated that the ultrasonic cavitation processing and AlO nanoparticles play an important role for microstructure refinement. In addition, it was shown in this study that the AlO nanoparticles modified the eutectic phase.
最近的研究表明,当采用超声空化和凝固工艺时,铝基纳米复合材料的微观结构和力学性能可得到显著改善。这是因为超声空化工艺不仅在纳米颗粒的除气和分散方面发挥重要作用,而且在破碎树枝状晶粒和细化铸态微观结构方面也发挥重要作用。在本研究中,分别使用A356合金和AlO纳米颗粒作为基体合金和增强体。将纳米颗粒添加到熔融的A356合金中,并通过超声空化工艺进行分散。在熔融合金冷却和凝固过程中的不同温度范围内施加超声空化,以研究晶粒结构的形成和纳米颗粒的分散行为。使用光学显微镜和扫描电子显微镜详细研究微观结构特征和纳米颗粒分布的差异。实验结果表明,超声空化工艺和AlO纳米颗粒对微观结构细化起重要作用。此外,本研究还表明AlO纳米颗粒改变了共晶相。