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难熔金属/合金的微波烧结:钨、钼、铼、钨铜、钨镍铜和钨镍铁合金。

Microwave sintering of refractory metals/alloys: W, Mo, Re, W-Cu, W-Ni-Cu and W-Ni-Fe alloys.

作者信息

Mondal Avijit, Agrawal Dinesh, Upadhyaya Anish

机构信息

Department of Materials & Metallurgical Engineering, Indian Institute of Technology, Kanpur 208016, India.

出版信息

J Microw Power Electromagn Energy. 2010;44(1):28-44. doi: 10.1080/08327823.2010.11689768.

Abstract

Refractory metals and alloys are well known for their high mechanical properties which make them useful for wide range of high temperature applications. However, owing to the refractoriness of these metals and alloys, it is very difficult to consolidate them under moderate conditions. Conventional P/M processing is a viable sintering technique for these refractory metals. One of the constraints in conventional sintering is long residence time which results in undesirable microstructural coarsening. This problem gets further aggravated when using smaller (submicron and nano) precursor powder sizes. Furthermore, conventional heating is mostly radiative, which leads to non-uniform heating in large components. This review article describes recent research findings about how these refractory metals and alloys (W, Mo, Re, W-Cu, W-NiCu and W-Ni-Fe) have been successfully consolidated using microwave sintering. A comparative study with conventional data has been made. In most cases, microwave sintering resulted in an overall reduction of sintering time of up to 80%. This sintering time reduction prevents grain growth substantially providing finer microstructure and as a result better mechanical properties have been observed.

摘要

难熔金属及其合金以其高机械性能而闻名,这使得它们在广泛的高温应用中很有用。然而,由于这些金属及其合金的难熔性,在中等条件下将它们固结非常困难。传统的粉末冶金工艺是用于这些难熔金属的一种可行的烧结技术。传统烧结的一个限制是停留时间长,这会导致微观结构出现不希望的粗化。当使用较小(亚微米和纳米)的前驱体粉末尺寸时,这个问题会进一步加剧。此外,传统加热大多是辐射加热,这会导致大型部件加热不均匀。这篇综述文章描述了关于如何使用微波烧结成功固结这些难熔金属及其合金(钨、钼、铼、钨铜、钨镍铜和钨镍铁)的最新研究成果。并与传统数据进行了对比研究。在大多数情况下,微波烧结使烧结时间总体减少了高达80%。这种烧结时间的减少极大地防止了晶粒生长,提供了更精细的微观结构,结果观察到了更好的机械性能。

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