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Fabrication and microstructure of CNTs activated sintered W-Nb alloys

机译:碳纳米管活化的烧结钨铌合金的制备和微观结构

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摘要

In order to fabricate highly dense W-based alloys at low temperature, in the present work, high-energy ball milling and hot pressing were applied to fabricate W-Nb alloys (mass fraction of Nb varied from 0.5% to 5%), where CNTs were used as the activated sintering additives. The phase composition and micro-structure were characterized by XRD and SEM equipped with EDS, respectively. The study found coupled effects of CNTs activated sintering and Nb addition on the enhanced sintering ability and refined micro-structure of W at 1500 °C. The main results are: (i) XRD characterization revealed that the high-energy ball milling could significantly reduce the crystallite size of W particles and increase lattice distortion, which would enhance the sintering behavior of W alloys, (ii) The addition of CNTs to W (W-0.lCNTs) led to the formation of nanoScale interfacial layer between W grains during hot pressing, resulting in considerable densification and grain growth. Based on this result, it suggested that the activated sintering of W in the present work is due to an enhanced diffusion of W atoms along the GBs induced by CNTs. (iii) With the addition of CNTs to W-Nb alloys, the densification was improved again, but was not so obvious. The optimal densification was obtained for the W-0.lCNTs-lNb specimen. Moreover, the microstructure characterization in CNTs activated sintered W-Nb alloys indicated that the distribution of sphere-like W(Nb) solid solution particles and decreased W grain sizes with increasing Nb content are the main microstructure features, (iv) The micro-hardness is varied from 4.84 to 6.07 GPa for the CNTs activated sintered W-Nb alloys, which is much higher than that of pure W specimen. The high micro-hardness could be attributed to the increased density and reduced grain size.
机译:为了在低温下制造高密度的W基合金,在当前工作中,高能球磨和热压被用于制造W-Nb合金(Nb的质量分数从0.5%到5%不等),其中CNT被用作活化的烧结添加剂。相组成和微观结构分别由配备EDS的XRD和SEM表征。研究发现,在1500°C下,CNTs激活烧结和Nb添加对W的增强烧结能力和细微组织的耦合作用。主要结果是:(i)XRD表征表明,高能球磨可以显着减小W颗粒的微晶尺寸并增加晶格畸变,从而增强W合金的烧结性能,(ii)将CNTs添加到W(W-0.lCNTs)导致在热压过程中W晶粒之间形成了纳米尺度的界面层,导致相当大的致密化和晶粒长大。基于该结果,表明本工作中W的活化烧结是由于W原子沿CNT诱导的沿GBs的扩散增强所致。 (iii)在W-Nb合金中添加CNT后,致密化得到了进一步的改善,但并不是很明显。 W-0.lCNTs-1Nb标本获得了最佳的致密化。此外,CNTs活化烧结W-Nb合金的微观结构表征表明,球状W(Nb)固溶体颗粒的分布以及随着Nb含量的增加而减小的W晶粒尺寸是主要的显微组织特征,(iv)显微硬度碳纳米管活化的烧结钨铌合金的介电常数在4.84至6.07 GPa之间,远高于纯钨试样。高显微硬度可归因于增加的密度和减小的晶粒尺寸。

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