4.7 Article

AZ91 alloy nanocomposites reinforced with Mg-coated graphene: Phases distribution, interfacial microstructure, and property analysis

Journal

JOURNAL OF ALLOYS AND COMPOUNDS
Volume 902, Issue -, Pages -

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.jallcom.2021.163484

Keywords

Magnesium-matrix composites; Modified graphene; Microstructure; Grain refinement; Strengthening mechanism

Funding

  1. National Defense Foundation of China [61400040208]
  2. China Postdoctoral Science Foundation [2019M661068]
  3. Key Research and Development Project of Shanxi Province [201903D121009]
  4. Scientific and Technological Innovation Projects of Shanxi Province, China [2019L0608]
  5. Major Science and Technology Projects of Shanxi Province, China [20181101009]

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A new organic chemical reduction method was used to synthesize magnesium-coated graphene (GNPs) and fabricate nanocomposites with different contents. The microstructure of the composite was mainly composed of the matrix and the precipitated phase with different morphologies. With the increase of GNPs content, the grain and structure are refined, leading to improved hardness, reduced friction coefficient, and enhanced wear resistance.
A new organic chemical reduction method was successfully used to synthesize magnesium-coated graphene (GNPs), and xGNPs/AZ91 nanocomposites with different contents were fabricated by vacuum hot pressing sintering. The microstructure of the composite was mainly composed of the matrix (alpha-Mg) and the precipitated phase (beta-Mg17Al12) with different morphologies such as rods, spindles, and granules. The coarse irregular beta phases precipitated along the grain boundaries, while fine rod-like beta phases were distributed inside the crystal grains. With the increase of GNPs content, the grain and structure are significantly refined under the action of two mechanisms of increasing the nucleation rate and hindering the growth of grains. The average grain size of the 2.5-wt% GNPs/AZ91 composite dropped from 40.78 mu m to 25.39 mu m, a reduction of 37.7%. In addition, the orientation relationship (OR) between beta-Mg17Al12 and alpha-Mg was shown as [-3 -1 -1](beta-Mg17Al12))parallel to[1 -1 0 -1](alpha-Mg). Further, finer beta phases were further precipitated in the grain boundaries and matrix. Moreover, the beta precipitated phase and the GNP, as well as the GNP and magnesium-matrix formed a nano-scale contact interface and a diffusion bonding interface, thereby greatly enhancing the interface bonding strength between GNP and the matrix. Compared with AZ91 alloy, the grain refinement and load transfer caused by GNPs increased the microhardness of the composite by 17.6% and the friction coefficient was decreased by 37.4%. The significant improvement in the wear resistance of the composites was due to the effect of the lubricating layer formed by GNPs on the wear surface, which changed from severe delamination wear to slight delamination and abrasive wear behavior. (C) 2021 Elsevier B.V. All rights reserved.

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