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首页> 外文期刊>Journal of Materials Science >Effect of chromium carbide coating on thermal properties of short graphite fiber/Al composites
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Effect of chromium carbide coating on thermal properties of short graphite fiber/Al composites

机译:碳化铬涂层对短石墨纤维/铝复合材料热性能的影响

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A chromium carbide coating was synthesized onto graphite fibers by molten salts method to improve the interfacial bonding and thermal properties of short graphite fiber/Al composites which were fabricated by vacuum pressure infiltration technique. The graphite fiber/Al composites with different thicknesses of chromium carbide coatings were prepared through varying plating times to investigate the influence of chromium carbide layer on the microstructures and thermal properties of the composites. The combined Maxwell-Garnett effective medium approach and acoustic mismatch model schemes were used to theoretically predict thermal conductivities of the composites. The results indicated that the chromium carbide coating formed on graphite fiber surface in molten salts consists mainly of the Cr_7C_3 phase. The Cr_7C_3-coating layer with plating time of 60 min and thickness of 0.5 μm was found to be most effective in improving the interfacial bonding and decreasing the interfacial thermal resistance between graphite fiber and aluminum matrix. The 40 vol% Cr_7C_3-coated graphite fiber/Al composite with Cr_7C_3 thickness of 0.5 μm exhibited 45.4 % enhancement in inplane thermal conductivity of 221 W m~(-1) K~(-1) compared to that of uncoated composite, as well as the coefficient of thermal expansion of 9.4 9 10~(-6) K~(-1), which made it as very interesting material for thermal management applications.
机译:通过熔融盐法在石墨纤维上合成了碳化铬涂层,以改善通过真空压力渗透技术制备的短石墨纤维/ Al复合材料的界面结合和热学性能。通过改变镀敷时间,制备了具有不同厚度的碳化铬涂层的石墨纤维/ Al复合材料,以研究碳化铬层对复合材料微观结构和热性能的影响。 Maxwell-Garnett有效介质方法与声学失配模型方案相结合,可从理论上预测复合材料的热导率。结果表明,在熔融盐中的石墨纤维表面形成的碳化铬涂层主要由Cr_7C_3相组成。发现电镀时间为60分钟,厚度为0.5μm的Cr_7C_3涂层在改善石墨纤维与铝基体之间的界面粘结和降低界面热阻方面最有效。 Cr_7C_3厚度为0.5μm的40 vol%Cr_7C_3涂层石墨纤维/ Al复合材料与未涂层复合材料相比,221 W m〜(-1)K〜(-1)的面内导热率提高45.4%由于其热膨胀系数为9.4 9 10〜(-6)K〜(-1),因此成为热管理应用中非常有趣的材料。

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