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Effect of WC particle size and Ag volume fraction on electrical contact resistance and thermal conductivity of Ag-WC contact materials

机译:WC粒径和Ag体积分数对Ag-WC接触材料的电接触电阻和导热系数的影响

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摘要

In this work, theoretically dense (> 99%) composites of Ag and WC have been prepared by press–sintering–infiltration for making electrical contacts used as an arc-resistant material in a model switching device. Composites with varying silver content and WC particle size were investigated to get an insight on their electrical contact resistance (Rc) and their ability to withstand enormous thermal stresses during switching. A break-only model switching sequence was used, where the evolution of Rc was measured over 50 cycles and the post-switching microstructures were investigated for thermal stress induced crack formation. A well-established 2D computational microstructure based model, object-oriented finite element analysis version 2 (OOF2), was used to determine the composite thermal conductivity (k) for various grades as a function of temperature. Rc was observed to be consistently low for the coarser WC containing composite and higher silver content composites. This response was attributed to the ductility of the surface layers formed during switching. Crack formation after switching was found to be a direct consequence of large thermal gradients during 50 cycles, which was minimal for coarser WC grained and higher silver content composites which have a higher thermal shock resistance.
机译:在这项工作中,通过压制-烧结-浸渗制备了理论上致密的(> 99%)Ag和WC复合材料,以使电触点在模型切换设备中用作耐电弧材料。对具有不同银含量和WC粒度的复合材料进行了研究,以了解其电接触电阻(Rc)及其在切换过程中承受巨大热应力的能力。使用了仅中断模型切换序列,其中在50个循环中测量了Rc的演变,并研究了切换后的微结构以研究热应力引起的裂纹形成。面向对象的有限元分析版本2(OOF2)是一种建立完善的基于2D计算微观结构的模型,用于确定各种等级的复合材料导热系数(k)与温度的关系。对于含粗WC的复合材料和较高银含量的复合材料,观察到Rc始终较低。该响应归因于在切换期间形成的表面层的延展性。发现切换后的裂纹形成是在50个循环中较大的热梯度的直接结果,这对于较粗的WC晶粒和具有较高抗热冲击性的较高银含量复合材料而言是最小的。

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