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Diamond-based Metal Matrix Composites for Thermal Management made by Liquid Metal Infiltration-Potential and Limits

机译:基于金刚石的金属基质复合材料,用于液态金属渗透 - 潜在和限制

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Diamond-based metal matrix composites have been made based on pure Al and eutectic Ag-3Si alloy by gas pressure infiltration into diamond powder beds with the aim to maximize thermal conductivity and to explore the range of coefficient of thermal expansion (CTE) that can be covered. The resulting composites covered roughly the range between 60 and 75 vol-% of diamond content. For the Al-based composites a maximum thermal conductivity at room temperature of 7.6 W/cmK is found while for the Ag-3Si based composites an unprecedented value of 9.7 W/cmK was achieved. The CTE at room temperature varied as a function of the diamond volume fraction between 3.3 and 7.0 ppm/K and 3.1 and 5.7 ppm/K for the Al-based and the Ag-3Si-based composites, respectively. The CTE was further found to vary quite significantly with temperature for the Al-based composites while the variation with temperature was less pronounced for the Ag- 3Si-based composites. The results are compared with prediction by analytical modeling using the differential effective medium scheme for thermal conductivity and the Schapery bounds for the CTE. For the thermal conductivity good agreement is found while for the CTE a transition of the experimental data from Schapery's upper to Schapery's lower bound is observed as volume fraction increases. While the thermophysical properties are quite satisfactory, there is a trade-off to be made in these materials between high thermal conductivity and low CTE on the one side and surface quality and machinability on the other.
机译:基于纯Al和共晶Ag-3Si合金的金刚石基金属基复合材料通过气体压力渗透到金刚石粉床中,目的是最大化导热率和探索可以是热膨胀系数(CTE)的范围覆盖。得到的复合材料大致占钻石内容的60和75伏粒的范围。对于基于Al基复合材料,在7.6W / cmp的室温下的最大导热率在Ag-3Si基复合材料中发现,实现了前所未有的9.7W / CMK。室温下的CTE分别为3.3和7.0ppm / k和3.1和5.7ppm / k的金刚石体积分别为基于Al基和基于Ag-3Si基复合材料的函数而变化。进一步发现CTE在铝基复合材料的温度下变化非常显着,而温度的变化对于基于Ag-3Si的复合材料的温度不太明显。将结果与使用差分有效介质方案进行分析建模的预测进行了比较,用于导热率和CTE的Schapery界限。对于导热率,对于CTE的同时发现,随着体积分数的增加,CTE在CTE中发现了Schapery的上限的实验数据的转变。虽然热物理性能非常令人满意,但在这些材料中在高导热率和低CTE之间的一侧和表面质量和机械加工性之间进行折衷。

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