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Hot pressing of nanocrystalline tantalum using high frequency induction heating and pulse plasma sintering

机译:使用高频感应加热和脉冲等离子体烧结的纳米晶钽的热压

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The paper presents the results of nanocrystalline powder tantalum consolidation using hot pressing. The authors used two different heating techniques during hot pressing: high-frequency induction heating (HFIH) and pulse plasma sintering (PPS). A comparison of the structure, microstructure, mechanical properties and corrosion resistance of the bulk nanocrystalline tantalum obtained in both techniques was performed. The nanocrystalline powder was made to start from the microcrystalline one using the high-energy ball milling process. The nanocrystalline powder was hot-pressed at 1000° C, whereas, for comparison, the microcrystalline powder was hot pressed up to 1500 ° C for proper consolidation. The authors found that during hot pressing, the powder partially reacts with the graphite die covered by boron nitride, which facilitated punches and powder displacement in the die during densification. Tantalum carbide and boride in the nanocrystalline material was found, which can improve the mechanical properties. The hardness of the HFIH and PPS nanocrystalline tantalum was as high as 625 and 615 HV, respectively. The microstructure was more uniform in the PPS nanomaterial. The corrosion resistance in both cases deteriorated, in comparison to the microcrystalline material, while the PPS material corrosion resistance was slightly better than that of the HFIH one.
机译:本文采用热压呈现纳米粉钽整合的结果。高频感应加热(HFIH)和脉冲等离子体烧结(PPS):作者热压过程中使用的两个不同的加热技术。进行在两种技术得到的块体纳米晶钽的结构,微观结构,机械性能和耐腐蚀性能的比较。被做了纳米结晶粉末从使用高能球磨过程中微晶之一启动。纳米晶粉末进行热压在1000℃,而,为了比较,微晶粉末进行热压高达1500℃进行适当的合并。作者发现,在热压中,粉末部分地与由氮化硼,其中致密化过程中促进了拳和粉末位移在模具所覆盖的石墨模具反应。碳化钽和硼化物中的纳米晶体材料被发现,这可以改善机械性能。的HFIH和PPS纳米晶体钽的硬度高达625分别和615 HV。该组织是在PPS纳米材料更均匀。在两种情况下的耐腐蚀性变差,相比于微晶材料,而PPS材料的耐腐蚀性略好于所述HFIH之一。

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