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Evaluation of thermal conductivity of GNPs-doped B4C/Al-Si composites in terms of interface interaction and electron mobility

机译:在界面相互作用和电子迁移率方面评价GNPS掺杂B4C / Al-Si复合材料的热导率

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摘要

The examination of the interactions between graphene and other components commonly used in thermal applications is an important approach for the development of materials with high thermal conductivity. For this purpose, graphene-doped boron carbide reinforced Al Si matrix composites were produced using semi-powder and pressure infiltration methods together. These composites were then characterized by SEM, TEM and XRD analysis. Thermal conductivity coefficients of these composites were determined experimentally by Laser Flash method. In order to examine the effect of phonon transfer on the experimental data, the interacting components were simulated, and the interfacial thermal conductivity was calculated with the acoustic mismatch model. Then, theoretical thermal conductivity of composites was calculated by Hasselman-Johnson model and Maxwell's approach. The electrical conductivity of the composites was measured by four-point probe method for electron mobility. As a result, experimental results were found to be slightly lower than the theoretical ones. This was affected by several different factors but the most important one is thought to be related to porosity.
机译:考验热应用中常用的石墨烯和其他组件之间的相互作用是具有高导热率的材料的重要方法。为此目的,使用半粉末和压力渗透方法在一起生产石墨烯掺杂的碳化硼增强Al Si基质复合材料。然后通过SEM,TEM和XRD分析表征这些复合材料。通过激光闪光法实验确定这些复合材料的导热系数。为了检查声子传递对实验数据的影响,模拟了相互作用组分,并用声波错配模型计算界面导热率。然后,通过Hasselman-Johnson Model和Maxwell的方法计算了复合材料的理论热导率。复合材料的电导率通​​过四点探针方法测量电子迁移率。结果,发现实验结果略低于理论效果。这受到了几种不同因素的影响,但最重要的是被认为与孔隙有关。

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