TUNGSTEN CARBIDE NANOPOWDER SYNTHESIS UNDER THE EXPOSURE OF 24 GHZ GYROTRON RADIATION ON THE NANOCOMPOSITE OF THE W-C SYSTEM OBTAINED IN A THERMAL PLASMA

A. Vodopyanov, A. Samokhin, Nikolay Aleksev, M. Sinayskiy, A. Sorokin, S. Sintsov
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Abstract

Nanoscale tungsten carbide WC powders are of practical interest for the creation of nanostructured hard alloys with enhanced physical and mechanical characteristics, wear-resistant nanostructured coatings, electrocatalysts in fuel cells, metal melt modifiers [1]. An efficient method for producing tungsten carbide nanopowder is a plasma-chemical synthesis of a multi-component powder nanocomposite system W-C in combination with its subsequent heat treatment [2]. Experimental studies have shown the possibility of producing tungsten carbide WC nanopowder by this method. But the transformation of the nanocomposite in the target product is accompanied by an increase in the size of nanoparticles. We assume that this growth is associated with prolonged heating (several hours) in an electric furnace at a temperature of about 1000 ° C. This time is necessary for the complete transformation of the nanocomposite into the target product. The aim of the work was an experimental study of the formation of tungsten carbide nanopowder WC when processing a multi-component powder nanocomposite system W-C in an electromagnetic field with a frequency of 24 GHz. A multipurpose gyrotron system with a nominal power of 7 kW with at a frequency of 24 GHz was used for the experiments. The microwave application system described in [3]. The powders were treated in an argon flow. The experiments were carried varying exposure time and microwave power. The samples of nanopowders obtained in the experiments were analyzed using the following methods: XRD, TEM, SEM, BET, LDA, CEA. It was established that microwave radiation with a frequency of 24 GHz allows heating samples of powders to a temperature of 1100-1200 C almost immediately (after 1-2 s) after switching on. The tungsten carbide WC is formed in a few minutes under the exposure to microwave radiation of the original W-C nanocomposite system. There is only a slight increase in the average particle size from 20 to 30 nm. The investigations showed that the synthesis of tungsten carbide WC under the microwave heating as compared to conventional heating in an electric furnace may be carried out for significantly less time while maintaining the particles in the nanometer range.The work was carried out within the framework of the Program #14 "Physical chemistry of adsorption phenomena and actinide nanoparticles" of the Presidium of the Russian Academy of Sciences.References Z. Zak Fang, Xu Wang, et al. Int. Journal of Refractory Metals & Hard Materials, 2009, 27, 288–299.Samokhin A., Alekseev N., et al. Plasma Chem. Plasma Proc., 2013, 33, 605–616.Samokhin A., Alekseev N., et al. J. Nanotechnol. Eng. Med., 2015, 6, 011008. 
在24 GHZ回旋辐射照射下合成碳化钨纳米粉末,在热等离子体中获得w-c体系的纳米复合材料
纳米级碳化钨WC粉末在制造具有增强物理和机械特性的纳米结构硬质合金、耐磨纳米结构涂层、燃料电池中的电催化剂、金属熔体改性剂等方面具有实际意义[1]。制备碳化钨纳米粉末的一种有效方法是等离子体化学合成多组分粉末纳米复合体系W-C,并结合后续热处理[2]。实验研究表明,用该方法制备碳化钨纳米WC粉是可行的。但纳米复合材料在目标产物中的转化伴随着纳米颗粒尺寸的增大。我们假设这种生长与在大约1000°c的电炉中长时间加热(几个小时)有关,这是纳米复合材料完全转变为目标产品所必需的时间。实验研究了多组分粉末纳米复合体系W-C在24 GHz频率的电磁场中加工时碳化钨纳米粉末WC的形成情况。实验采用标称功率为7kw,频率为24ghz的多用途回旋管系统。[3]中描述的微波应用系统。粉末在氩气中处理。实验采用不同的辐照时间和微波功率进行。采用XRD、TEM、SEM、BET、LDA、CEA等方法对实验所得的纳米粉体样品进行了分析。结果表明,24 GHz频率的微波辐射可以使粉末样品在打开后几乎立即(1-2 s后)加热到1100-1200℃的温度。在原W-C纳米复合体系的微波辐射下,在几分钟内形成碳化钨WC。从20纳米到30纳米的平均粒径只有轻微的增加。研究表明,与电炉加热相比,微波加热合成碳化钨碳化钨的时间明显缩短,且颗粒保持在纳米范围内。这项工作是在俄罗斯科学院主席团第14号“吸附现象和锕系纳米粒子的物理化学”计划的框架内进行的。方正克,王旭,等。Int。耐火材料学报,2009,27,288-299。Samokhin A., Alekseev N.等。等离子体化学等离子体学报,2013,33(3):559 - 564。Samokhin A., Alekseev N.等。j . Nanotechnol。Eng。医学杂志,2015,6,011008。
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