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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 >In-situ chemical reaction mechanism and non-equilibrium microstructural evolution of (TiB2 + TiC)/AlSi10Mg composites prepared by SLM-CS processing
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In-situ chemical reaction mechanism and non-equilibrium microstructural evolution of (TiB2 + TiC)/AlSi10Mg composites prepared by SLM-CS processing

机译:通过SLM-CS加工制备(TIB2 + TIC)/ ALSI10MG复合材料的原位化学反应机理和非平衡微观结构演化

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The preparation of aluminum matrix composites (AMCs) by laser additive manufacturing (AM) technology has become an important means of improving performance of aluminum alloys. In this work, a novel in-situ synthesis method of selective laser melting combined combustion synthesis (SLM-CS) was used to prepare dual-phase reinforced AMCs. The feasibility of a B4C-Ti combustion synthesis reaction system to produce TiB2 and TiC ceramics by selective laser melting (SLM) was verified. AlSi10Mg alloy matrix composites with dual reinforcements were then fabricated by SLM, and systematic qualitative and quantitative phase analysis was carried out. The calculation results of the graphical-extrapolation method show that the lattice constant of alpha-Al matrix phase in the composites increases from 0.40466 nm to 0.40528 nm. The effects of a series of reactants with different chemical element composition ratios on the characteristics of melting process and non-equilibrium solidification microstructure were studied. The preliminary principles of the combustion chemical reaction under the rapid and continuous laser scanning were concluded from the theory and experiments results. In terms of mechanical properties, an appropriate amount of ceramic particles results in a significant improvement in the microhardness and elastic modulus, and yet composites prepared with a mixture powder amount greater than 0.7 wt % witnessing a clear drop in the tensile strength as well. (C) 2020 Elsevier B.V. All rights reserved.
机译:利用激光添加剂制造技术制备铝基复合材料已成为提高铝合金性能的重要手段。本文采用选择性激光熔融燃烧合成(SLM-CS)的原位合成方法制备了双相增强AMC。验证了B4C-Ti燃烧合成反应系统通过选择性激光熔化(SLM)制备TiB2和TiC陶瓷的可行性。采用SLM法制备了AlSi10Mg双增强合金基复合材料,并进行了系统的定性和定量相分析。图形外推法的计算结果表明,复合材料中α-Al基体相的晶格常数从0.40466nm增加到0.40528nm。研究了一系列不同化学元素组成比的反应物对熔化过程特性和非平衡凝固组织的影响。从理论和实验结果中总结了快速连续激光扫描下燃烧化学反应的初步原理。就机械性能而言,适量的陶瓷颗粒可显著提高显微硬度和弹性模量,但混合粉末含量大于0.7 wt%时制备的复合材料的拉伸强度也明显下降。(C) 2020爱思唯尔B.V.版权所有。

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