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Effect of titanium carbide coating on the microstructure and thermal conductivity of short graphite fiber/copper composites

机译:碳化钛涂层对短石墨纤维/铜复合材料微观结构和导热性的影响

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摘要

Graphite fiber-Cu composites have drawn much attention in electronic packaging due to its excellent machinability and thermal properties. However, the weak interface bonding between graphite fiber and copper resulted in low thermo-mechanical properties of composites. In this work, a titanium carbide coating with thickness of 0.1 μm or 1 μm was synthesized on the surface of graphite fiber through molten salts method to strengthen interfacial bonding. The enhanced composites present 24-43 % increase in thermal conductivity and achieve the thermal conductivity of 330-365 W m~(-1) K~(-1) as well as the coefficient of thermal expansion of 6.5 × 10~(-6)-14 × 10~(-6) K~(-1). A Maxwell-Garnett effective medium approach on the anisotropic short fiber reinforcement with interfacial thermal resistance was established. The obtained enhancement was in good agreement with the estimates. The results suggest that the major factor that influences the thermal conductivities is not the interfacial thermal resistance but the low thermal conductivity of fiber in transversal direction when a well interfacial bonding is obtained.
机译:石墨纤维-铜复合材料因其优异的可加工性和热性能而在电子包装中引起了广泛关注。然而,石墨纤维与铜之间的弱界面键合导致复合材料的低热机械性能。在这项工作中,通过熔融盐法在石墨纤维的表面上合成了厚度为0.1μm或1μm的碳化钛涂层,以增强界面结合。增强复合材料的导热系数提高24-43%,并实现330-365 W m〜(-1)K〜(-1)的导热率以及6.5×10〜(-6)的热膨胀系数)-14×10〜(-6)K〜(-1)。建立了具有界面热阻的各向异性短纤维增强的Maxwell-Garnett有效介质方法。获得的增强与估算值非常吻合。结果表明,当获得良好的界面粘结时,影响导热率的主要因素不是界面热阻,而是纤维在横向上的低导热率。

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