材料科学
粉末冶金
镁
冶金
纳米颗粒
金属
钢筋
粉煤灰
纳米技术
微观结构
复合材料
作者
Essam B. Moustafa,Abdulrahman O. Al‐Youbi,Mahmoud A. Alzahrani,Ahmed O. Mosleh,Asmaa M. Khalil
标识
DOI:10.1002/adem.202402261
摘要
The study explores the impact of fly ash and nanoparticle reinforcements (TiO 2 , hBN, B 4 C) on magnesium alloy properties. Fly ash increases porosity and reduces density. All reinforcements reduce conductivity, and B 4 C significantly decrease thermal expansion. This decrease is attributed to the particles' barrier effect, lower CTEs, and ability to promote uniform particle dispersion. The distribution of reinforcing particles varies, with B 4 C and hBN showing the most even dispersion. All reinforcements improve particle homogeneity, enhancing microhardness, with B 4 C exhibiting the most significant enhancement of 72%. All composite materials show increased compression strength, with B 4 C showing the most significant improvement of over 50%. The Mg hybrid composites display higher longitudinal and shear velocities than pure Mg. B 4 C shows the most substantial increase, with a 30% rise in longitudinal velocity and a 22% increase in shear velocity. Moreover, all composite materials exhibit larger Young's and shear moduli than pure Mg. B 4 C demonstrates the most notable enhancement, with a 50% increase in Young's modulus and a 45% increase in shear modulus. These enhancements result from the composites' heightened rigidity and decreased mass caused by the reinforcements, further amplified by the optimized spatial distribution of particles.
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