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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Microstructural evolution and mechanical properties of the AA2219/TiC nanocomposite manufactured by ultrasonic solidification
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Microstructural evolution and mechanical properties of the AA2219/TiC nanocomposite manufactured by ultrasonic solidification

机译:超声凝固制造AA2219 / TIC纳米复合材料的微观结构演化与力学性能

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The mechanical properties of metallic matrix composites can be tailored through the microstructural modification between metal matrix and reinforcing particles. In this work, the AA2219/TiC nano-composite containing 0, 0.5, 0.9, 1.3 and 1.7 wt.% TiC nanoparticles were individually manufactured using the ultrasound-assisted solidification technique. There existed an optimal addition level of TiC nanoparticles (0.9 wt.%) beyond which grain coarsening occurred. TiC nanoparticles were observed to reduce the average grain sizes of alpha-Al matrix alloy by 61%. Meanwhile, 0.9 wt.% TiC nanoparticles corresponded to the maximum tensile strength and hardness. When the addition level reached over 0.9 wt.% in the 2219 Al alloy matrix melt, the TiC nanoparticles tended to agglomerate in a form of condensed clusters, which cannot be well dispersed by ultrasonication due to the increasing viscosity. Such agglomerating TiC nanoparticles deteriorated the tensile strain and hardness of AA2219/TiC nanocomposite. Then, five major potential strengthening mechanisms in AA2219/TiC nanocomposite was quantitatively analysed, including grain refinement, Orowan strengthening, load transfer effect, mismatch of thermal expansion, and mismatch of elastic modulus. Analysis shows that Orowan strengthening acts as the most dominant strengthening mechanism, followed by another comparable strengthening mechanism from the mismatch between the thermal expansion of alpha-Al matrix and TiC nanoparticles. The other three strengthening mechanisms induced very limited improvement in mechanical properties. Besides acting as reinforcing agents, the TiC nanoparticles also possess very high potency as heterogeneous nucleation sites. The relevant nucleation potency was validated by crystallographic investigation using the edge-to-edge matching model. Finally, the grain refining mechanism of alpha-Al matrix alloy was unraveled in terms of the nucleation crystallography and the ultrasonic cavitation. (C) 2019 Elsevier B.V. All rights reserved.
机译:金属基复合材料的机械性能可以通过金属基质和强化颗粒之间的显微结构的修改来调整。在这项工作中,AA2219 /的TiC纳米复合含有0,0.5,0.9,1.3和1.7重量%的TiC纳米颗粒使用超声辅助凝固技术单独制造。存在着的TiC纳米粒子的最佳添加量(0.9重量%)以外发生晶粒粗化。观察到纳米颗粒的TiC由61%减少的α-Al基合金的平均晶粒尺寸。同时,0.9重量%的TiC纳米颗粒对应。在最大拉伸强度和硬度。当添加水平超过0.9%(重量)达到2219 Al合金基质熔融,所述纳米颗粒的TiC在趋于凝结团簇,这是不能通过超声很好地分散由于粘度增加的形式聚集。这种附聚的纳米颗粒的TiC劣化AA2219 /的TiC纳米复合材料的拉伸应变和硬度。然后,在AA2219 /纳米复合材料的TiC五个主要潜在强化机制进行定量分析,包括晶粒细化,奥罗万强化,载荷传递效果,热膨胀的失配,并且弹性模量的失配。分析表明,奥罗万强化作为最主要的强化机制,随后从α-Al基体和TiC纳米颗粒的热膨胀之间的不匹配的另一比较的强化机制。其他三个强化机制力学性能感应非常有限的改善。除了作为补强剂,抽动纳米颗粒还具有非常高的效力异质成核点。有关核效力通过使用边缘到边缘的匹配模型晶体调查验证。最后,α-Al基合金的晶粒细化机制在成核结晶学和超声空化方面被解开。 (c)2019 Elsevier B.v.保留所有权利。

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