Characterization and thermo-mechanical analysis of centrifugally fabricated aluminium-boron carbide functionally graded composites

R. Ambigai, S. Prabhu
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Abstract

This research focuses on developing lightweight functionally gradient composites (FGCs) having graded distribution B4C in aluminium matrix by employing centrifugal casting technique. Two different sizes of reinforcement, that is, 100 and 50 μm was chosen to analyse its effect on the thermo mechanical properties and its distribution were analysed in this study. Advanced characterization revealed smooth graded distribution of the reinforcement across the thickness of the fabricated FGCs. The density and micro Vickers hardness test showed that they are 1.5% higher at outer periphery ensuring the graded distribution of B4C. The tensile strength was 31% higher for 50 μm sized reinforcement in the FGC, due to the increased surface area-to-volume ratio of the reinforcement. The thermal properties like thermal conductivity was 46.4% higher, thermal diffusivity was 27.8% higher for 100 μm sized reinforcement than for 50 μm sized reinforcement in the FGC. The above research work provides a new perspective on deploying aluminium based B4C graded composites for heat exchangers or fins subjected to varying thermal loads.
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离心制造的铝硼碳化功能分级复合材料的特性和热机械分析
本研究的重点是采用离心铸造技术,开发铝基体中分级分布 B4C 的轻质功能梯度复合材料(FGCs)。本研究选择了两种不同尺寸的增强材料,即 100 微米和 50 微米,以分析其对热机械性能的影响及其分布情况。高级特性分析表明,加固材料在所制造的 FGC 厚度上呈平滑的梯度分布。密度和显微维氏硬度测试表明,它们在外围高出 1.5%,确保了 B4C 的分级分布。由于增强材料的表面积与体积比增大,FGC 中 50 μm 尺寸增强材料的拉伸强度提高了 31%。与 FGC 中 50 μm 尺寸的钢筋相比,100 μm 尺寸的钢筋的热导率高出 46.4%,热扩散率高出 27.8%。上述研究工作为将铝基 B4C 梯度复合材料用于承受不同热负荷的热交换器或鳍片提供了新的视角。
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