首页> 外文期刊>Journal of Korean Institute of Metal and Materials >Influence of Nanosized AlN Powders on the Microstructure, Brazeability, and Tensile Properties of Al-based Filler for Low Temperature Al/Cu Dissimilar Brazing
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Influence of Nanosized AlN Powders on the Microstructure, Brazeability, and Tensile Properties of Al-based Filler for Low Temperature Al/Cu Dissimilar Brazing

机译:纳米型AlN粉末对低温Al / Cu异种钎焊的铝填料微观结构,脱血性和拉伸性能的影响

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摘要

This study examined the influence of nanosized aluminum nitride (AlN) powders (0, 0.01, 0.05, 0.10, 0.30, and 0.50 wt%), on an Al4047-based filler metal. Nanosized AlN powders were dispersed uniformly into the filler metal by a mechanical mixing and melting route using a stainless steel propeller. The influences of nanosized AN powders on the melting behavior, microstructure, brazeability, and tensile properties were examined, and interfacial reactions between aluminum and copper were carried out. The experimental results showed that the thicknesses of Si and IMC keep decreasing with additions of nanosized AlN powders up to 0.10% in the brazing filler metal, which is attributed to the adsorption theory of nanosized AlN powders on the surface of Si and IMCs. In addition, the AlN-reinforced filler metal with 0.10 wt% samples showed a 2.61% enhancement in wettability due to the decreased surface tension in the filler metal matrix in the presence of nanosized AlN powders. Furthermore, aluminum to copper dissimilar brazing with 0.10 wt% AlN-reinforced filler metal showed a 16.07% improvement in the tensile strength compared to the 0% AlN filler due to the grain refinement of a filler metal matrix by the Orowan strengthening effect.
机译:该研究检测了纳米铝氮化物(AlN)粉末(0,0.01,0.05,0.10,0.30和0.50wt%)的影响,基于Al4047的填料金属。使用不锈钢螺旋桨通过机械混合和熔化途径将纳米型AlN粉末均匀地分散到填充金属中。纳米粉末对熔化行为,微观结构,钎焊性和拉伸性能的影响,进行铝和铜之间的界面反应。实验结果表明,在钎焊填料金属中,Si和IMC的厚度保持减少高达0.10%的纳米型AlN粉末,其归因于Si和IMC的表面上的纳米型AlN粉末的吸附理论。此外,由于在纳米AlN粉末存在下,具有0.10wt%样品的Aln加固填料金属在填充金属基质中的表面张力下降,润湿性的增强表现为2.61%。此外,与0.10wt%AlN增强填充金属的铜不同钎焊的铜脱铜显示出与0%AlN填料的拉伸强度提高了16.07%,由于钙化金属基质通过orowan强化效果,与填料金属基质的晶粒细化相比。

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