Exothermic synthesis of binary solid solutions based on hafnium and zirconium carbides

V. Shcherbakov, A. Gryadunov, M. Alymov
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Abstract

The paper presents the results of an experimental study into the possibility of producing ultra-high temperature ceramics  constituting solid solutions of HfC and ZrC carbides by the single-stage electro-thermal explosion (ETE) method under pressure.  Adiabatic flame temperature and phase composition of the equilibrium final product were calculated based on thermodynamic  data. It was shown that when the ZrC content in the final product is less than 20 wt.%, adiabatic flame temperature reaches 3800– 3900 K, and the combustion product contains hafnium and zirconium carbides. The effect of mechanical activation modes in an  AGO-2 planetary centrifugal mill used for a reaction mixture containing Hf, Zr and C powders on its properties, phase composition  formation and the microstructure of carbide solid solutions was studied. It was shown that high-energy mixing in hexane leads to  the destruction of the crystal structure of Hf and Zr particles and the formation of amorphous composite particles. The synthesized  samples of ultra-high temperature ceramics were studied by X-ray phase and microstructure analyzes. It was shown that exothermic  synthesis leads to the formation of single-phase solid solutions of HfC and ZrC carbides with the average particle size of 0.2–1.5 μm.  The residual porosity of the binary carbides obtained is 10–12 %. It was found that, despite the high temperature of sample heating  during ETE under pressure, the particle size of the resulting solid solutions is significantly (by an order of magnitude) smaller than  the particle size of similar complex carbides (20–50 μm) obtained by other methods (SPS and hot pressing). This is associated with  the rapidity of the exothermic interaction of the reagents (10–50 ms) during ETE.
基于碳化铪和氧化锆的二元固溶体的放热合成
本文对高压下单级电热爆炸法制备HfC和ZrC碳化物固溶体超高温陶瓷的可能性进行了实验研究。根据热力学数据计算了绝热火焰温度和平衡终产物的相组成。结果表明,当最终产物中ZrC含量小于20wt .%时,绝热火焰温度达到3800 ~ 3900 K,燃烧产物中含有碳化铪和碳化锆。研究了AGO-2型行星离心机中机械活化方式对Hf、Zr和C粉末反应混合物性能、相组成形成和碳化物固溶体微观结构的影响。结果表明,在正己烷中进行高能混合会破坏Hf和Zr粒子的晶体结构,形成非晶复合粒子。对合成的超高温陶瓷样品进行了x射线物相分析和显微结构分析。结果表明,放热合成可形成平均粒径为0.2 ~ 1.5 μm的HfC和ZrC碳化物单相固溶体。所得二元碳化物的残余孔隙率为10 ~ 12%。研究发现,尽管在压力下加热时样品温度很高,但所得固溶体的粒径明显小于其他方法(SPS和热压)获得的类似复合碳化物(20-50 μm)的粒径(一个数量级)。这与电激放电过程中试剂的放热相互作用的速度(10-50 ms)有关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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