用搅拌铸造法研究碳化硼纳米颗粒AZ61 Mg的力学、腐蚀和摩擦学特性

IF 1.3 4区 材料科学 Q4 MATERIALS SCIENCE, MULTIDISCIPLINARY Materials Science-Poland Pub Date : 2023-08-01 DOI:10.2478/msp-2023-0019
S. Sakthi, S. Mahendran, M. Meignanamoorthy, V. Mohanavel
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引用次数: 0

摘要

镁复合材料是一种创新、紧凑、独特的材料。由于其低密度,镁复合材料适用于汽车、航空、半导体和制药等领域。为了提高az61镁合金的机械磨损和腐蚀性能,采用不同重量百分比的纳米b4c增强剂(2.5、5、7.5和10wt%)进行镁基体强化。采用搅拌铸造法制备了镁复合材料。对铸态试样进行了显微组织分析,结果表明,B4C纳米颗粒分散均匀,与基体结合良好,孔隙率极低。这表明,b4c纳米颗粒的加入对铸态材料的微观组织影响不显著。Mg17Al12相的断裂和分散使材料的抗拉强度、抗压强度、硬度、耐蚀性和耐磨性都得到了很大的提高。利用扫描电镜对AZ61/ b4c纳米复合材料表面进行了观察,发现增强层在基体内分布均匀。AZ61/7.5wt% b4c纳米复合材料力学性能最高,腐蚀性能最低。这些结果表明,AZ61/7.5wt% b4c纳米复合材料是航空航天和汽车工程部件的优越材料,需要高抗压强度,耐腐蚀性和耐磨性。
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Investigation of the mechanical, corrosion, and tribological characteristics of AZ61 Mg with boron carbide nano particles via the stir casting route
Abstract Magnesium composites are innovative, compact, and distinctive materials. Because of their low density, magnesium composites are suitable for applications in the automobile, aviation, semiconductor, and pharmaceutical sectors. To enhance the mechanical wear and corrosion behavior of theAZ61 Mg alloy, different weight percentages of nano-B4C reinforcements (2.5, 5, 7.5, and 10wt%) were strengthened with magnesium matrix. Fabrication of magnesium composites was achieved through the stir casting method. The as-cast specimens were subjected to microstructural analysis, which showed that the B4C nanoparticles were dispersed uniformly, well bonded to the matrix, and had a minimal level of porosity. This shows that the inclusion of B 4 C nanoparticles has aninsignificanteffect on the microstructure of the as-cast material. The material’s tensile strength, compressive strength, hardness, corrosion resistance, and wear resistance were all greatly increased by the Mg17Al12 phase’s fracture and dispersion. Scanning electron microscopy was utilized to inspect the surfaces of AZ61/B 4 C nanocomposites and witnessed the uniform dispersal of reinforcement within the matrix.The maximum value for mechanical properties was obtained for AZ61/7.5wt%B 4 C nanocomposite and the lowest value was found to be the corrosion test. These results show that the AZ61/7.5wt%B 4 C nanocomposite is a superior material for aerospace and automotive engineering components where high compressive strength, corrosion resistance, and wear resistance are required.
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来源期刊
Materials Science-Poland
Materials Science-Poland MATERIALS SCIENCE, MULTIDISCIPLINARY-
自引率
18.20%
发文量
18
期刊介绍: Material Sciences-Poland is an interdisciplinary journal devoted to experimental research into results on the relationships between structure, processing, properties, technology, and uses of materials. Original research articles and review can be only submitted.
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