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An Experimental and Modeling Study of Al-based Nanocomposites Fabricated by Ultrasonic Cavitation and Solidification Processing

机译:超声波空化和凝固加工制造的基于纳米复合材料的实验和建模研究

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In the present investigation, A3 56 nanocomposites were fabricated via ultrasonic stirring technology (UST) in a coreless induction furnace. SiC nanoparticles were used as the reinforcement. Nanoparticles were added into the molten metal and then dispersed by ultrasonic cavitation and acoustic streaming assisted by electromagnetic stirring. The UST was also applied during the solidification process. The nanocomposite microstructure was investigated by optical microscopy and SEM. The distribution of SiC nanoparticles in the A356 alloy matrix was also analyzed. The SEM and EDS analyses showed that both the matrix microstructure and the SiC particles dispersion into the matrix can be considerably improved when ultrasonic cavitation, induction melting and stirring, and solidification processing techniques are applied together. Molecular dynamics simulations were conducted to analyze the complex interactions between the nanoparticles and the S/L interface.
机译:在本研究中,通过在无芯感应炉中通过超声波搅拌技术(UST)制造A3 56纳米复合材料。使用SiC纳米颗粒作为增强件。将纳米颗粒加入熔融金属中,然后通过电磁搅拌辅助的超声波空化和声学流分散。在凝固过程中也应用了UST。通过光学显微镜和SEM研究纳米复合微结构。还分析了A356合金基质中SiC纳米颗粒的分布。 SEM和EDS分析表明,当超声波空化,感应熔化和搅拌以及一起凝固处理技术时,可以显着改善基质微观结构和SiC颗粒分散到基质中。进行分子动力学模拟,以分析纳米颗粒和S / L界面之间的复合相互作用。

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