通过多道搅拌摩擦工艺开发的镁基纳米复合材料及强化机理探索 通过多道搅拌摩擦焊接工艺开发的镁基纳米复合材料及强化机理探索

IF 1.2 4区 材料科学 Q4 MATERIALS SCIENCE, MULTIDISCIPLINARY
P. Sagar, A. Handa, Sushma Sangwan
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引用次数: 0

摘要

在当前的实验工作中,使用二级硬质纳米碳化钛 (TiC) 颗粒作为增强材料,通过搅拌摩擦加工合成了两种不同的镁金属基材,即 AZ31B/TiC 和 AZ61 A/TiC 复合材料。采用传统的测试方法,对所开发的材料进行了冶金、机械、电气和摩擦学特性的同步增益测试。AZ31B/TiC 和 AZ61 A/TiC 复合材料的微观结构研究结果表明,增强颗粒分布均匀,晶粒大小也有所变化,分别从 82 μm 减小到 4.2 μm,从 74 μm 减小到 3.7 μm,因此这两种复合材料的显微硬度都有显著提高,分别是基体金属的 2.2 倍和 2.67 倍。与整体合金相比,合成的 AZ31B/TiC 和 AZ61 A/TiC 复合材料在抗拉强度、抗压强度和摩擦系数方面分别提高了 1.81 倍和 1.64 倍、1.74 倍和 1.58 倍,以及 57.92 % 和 58.47 %。此外,这些特性的改善还提高了纳米复合材料的最终强度并降低了导电率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Magnesium-based nanocomposites developed through multi-pass friction stir processing and strengthening mechanisms exploration
      Entwicklung von magnesiumbasierten Nanoverbundwerkstoffen durch einen mehrstufigen Rührreibschweißprozess und Erforschung der Verfestigungsmechanismen

Magnesium-based nanocomposites developed through multi-pass friction stir processing and strengthening mechanisms exploration Entwicklung von magnesiumbasierten Nanoverbundwerkstoffen durch einen mehrstufigen Rührreibschweißprozess und Erforschung der Verfestigungsmechanismen

In the current experimental work, using secondary phase hard nano titanium carbide (TiC) particles as reinforcement, two different magnesium metal matrices i. e., AZ31B/TiC and AZ61 A/TiC composite materials were synthesized by friction stir processing. Using the traditional testing approach for the developed materials, the simultaneous gain in metallurgical, mechanical, electrical, and tribological characteristics compared to the base substrate was examined. The microstructure study results for AZ31B/TiC and AZ61 A/TiC composites showed a uniform distribution of reinforced particles as well as an evolution in grain size, from 82 μm to 4.2 μm and from 74 μm to 3.7 μm, respectively, which consequently contribute in a significant gain in the microhardness of both composites i. e., around 2.2 times and 2.67 times respectively, greater than the base metal. When compared to monolithic alloys, the synthesized AZ31B/TiC and AZ61 A/TiC composites showed improvements in the areas of tensile strength, compressive strength, and coefficient of friction up to 1.81 times, and 1.64 times, 1.74 times and 1.58 times, and 57.92 % and 58.47 %, respectively. Furthermore, these improvements in characteristics also increase the final strengthening of the nanocomposite and reduce electrical conductivity.

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来源期刊
Materialwissenschaft und Werkstofftechnik
Materialwissenschaft und Werkstofftechnik 工程技术-材料科学:综合
CiteScore
2.10
自引率
9.10%
发文量
154
审稿时长
4-8 weeks
期刊介绍: Materialwissenschaft und Werkstofftechnik provides fundamental and practical information for those concerned with materials development, manufacture, and testing. Both technical and economic aspects are taken into consideration in order to facilitate choice of the material that best suits the purpose at hand. Review articles summarize new developments and offer fresh insight into the various aspects of the discipline. Recent results regarding material selection, use and testing are described in original articles, which also deal with failure treatment and investigation. Abstracts of new publications from other journals as well as lectures presented at meetings and reports about forthcoming events round off the journal.
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