Microscopic Analysis of the Synergistic Mechanism of Strength and Toughness of Magnesium Alloys Reinforced by Graphene Nanoplatelets

IF 2.1 4区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY
JOM Pub Date : 2025-04-01 DOI:10.1007/s11837-025-07302-5
Zhenhu Hua, Yongting Lan
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Abstract

In order to examine the influence of graphene nanoplatelet (GNP) incorporation on the microstructure and tensile characteristics of AZ31 magnesium alloys, a dispersion processing method was employed to prepare magnesium matrix composites (GNPs/AZ31) with varying mass fractions of GNPs, specifically 0.1 wt.%, 0.3 wt.%, and 0.6 wt.%. Uniaxial tensile loading tests were conducted to evaluate and compare the effects of different GNP concentrations on the GNPs/AZ31 properties, focusing on tensile strength, yield strength, elongation, and fracture work. Additionally, microstructural characterization techniques, including optical microscopy, scanning electron microscopy, energy-dispersive X-ray spectroscopy, and X-ray diffraction, were utilized to investigate the microstructural evolution of the GNPs/AZ31 in terms of grain size, composition, phase distribution, dislocation density, and texture. The results from the uniaxial tensile tests indicated a synergistic enhancement in both strength and toughness of the GNPs/AZ31 with increasing GNP content. Notably, at a GNP concentration of 0.6 wt.%, the GNPs/AZ31 exhibited tensile strength, yield strength, elongation, and fracture work values of 360 MPa, 253 MPa, 23.7%, and 72 J m−3, respectively. Microstructural analysis indicates that the GNPs are evenly dispersed throughout the GNPs/AZ31. As the quantity of GNPs increases, there is a corresponding reduction in the grain size; concurrently, there is an increase in dislocation density. This phenomenon is advantageous for enhancing the strength of the GNPs/AZ31. Furthermore, the texture intensity of the (0002) basal plane exhibits a slight reduction in the GNPs/AZ31, which promotes the activation of multiple crystal slip systems and enhances the plasticity of the material. This study may provide significant experimental data which could facilitate the advancement of high-performance GNPs/AZ31 and enhance the utilization of AZ31 magnesium alloy in aerospace, automotive, and consumer electronics applications.

石墨烯纳米片增强镁合金强度与韧性协同机理的微观分析
为了研究石墨烯纳米血小板(GNP)掺入对AZ31镁合金微观结构和拉伸特性的影响,采用分散加工方法制备了GNPs质量分数分别为0.1 wt.%、0.3 wt.%和0.6 wt.%的镁基复合材料(GNPs/AZ31)。进行了单轴拉伸加载试验,以评估和比较不同GNP浓度对GNPs/AZ31性能的影响,重点是抗拉强度、屈服强度、伸长率和断裂功。此外,利用光学显微镜、扫描电镜、能量色散x射线能谱和x射线衍射等微观结构表征技术,从晶粒尺寸、成分、相分布、位错密度和织构等方面研究了GNPs/AZ31的微观结构演变。单轴拉伸试验结果表明,GNPs/AZ31的强度和韧性随GNP含量的增加而协同增强。值得注意的是,当GNP浓度为0.6 wt.%时,GNPs/AZ31的抗拉强度、屈服强度、伸长率和断裂功值分别为360 MPa、253 MPa、23.7%和72 J m−3。显微组织分析表明,GNPs均匀分布在GNPs/AZ31中。随着GNPs数量的增加,晶粒尺寸相应减小;同时,位错密度增加。这种现象有利于提高GNPs/AZ31的强度。此外,GNPs/AZ31中(0002)基面织构强度略有降低,促进了多晶滑移体系的激活,增强了材料的塑性。该研究为高性能GNPs/AZ31镁合金的发展提供了重要的实验数据,有助于提高AZ31镁合金在航空航天、汽车和消费电子等领域的应用。
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来源期刊
JOM
JOM 工程技术-材料科学:综合
CiteScore
4.50
自引率
3.80%
发文量
540
审稿时长
2.8 months
期刊介绍: JOM is a technical journal devoted to exploring the many aspects of materials science and engineering. JOM reports scholarly work that explores the state-of-the-art processing, fabrication, design, and application of metals, ceramics, plastics, composites, and other materials. In pursuing this goal, JOM strives to balance the interests of the laboratory and the marketplace by reporting academic, industrial, and government-sponsored work from around the world.
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