Synthesis of titanium carbide and titanium diboride for metal processing and ceramics production

IF 0.4 Q4 METALLURGY & METALLURGICAL ENGINEERING
Yuriy L. Krutskii, E. Maksimovskii, R. Petrov, O. Netskina, A. Ukhina, T. Krutskaya, T. Gudyma
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引用次数: 0

Abstract

Introduction. Titanium carbide and diboride are characterized by high values of hardness, chemical inertness and for this reason are widely used in modern technology. This paper provides information on the synthesis of titanium carbide and diboride by carbothermal and carbide-boron methods, respectively, on the use of titanium carbide as an abrasive and in the manufacture of tungsten-free hard alloys, carbide steels, wear-resistant coatings, as well as titanium diboride in the production of cutting tools and ceramics based on boron carbide The aim of this work is to study the processes of synthesis of highly dispersed powders of titanium carbide and diboride, which are promising for the manufacture of cutting tools, wear-resistant coatings, abrasives and ceramics. Research methods. Titanium oxide TiO2, nanofibrous carbon (NFC), and highly dispersed boron carbide were used as reagents for the synthesis of titanium carbide and diboride. Experiments to obtain titanium carbide were carried out in a resistance furnace, and titanium diboride in an induction furnace. X-ray studies of the phase composition of titanium carbide and diboride samples were carried out on an ARL X-TRA diffractometer (Thermo Electron SA). The determination of the content of titanium and impurities in the samples of titanium carbide and diboride was carried out by the X-ray spectral fluorescence method on an ARL-Advant'x analyzer. The total carbon content in the titanium carbide samples was determined on an S-144 device from LECO. The content of boron and other elements for titanium diboride samples was determined by inductively coupled plasma atomic emission spectrometry (ICP AES) on an IRIS Advantage spectrometer (Thermo Jarrell Ash Corporation). The surface morphology and particle sizes of the samples were studied using a Carl Zeiss Sigma scanning electron microscope (Carl Zeiss). The determination of the particle/aggregate size distribution was performed on a MicroSizer 201 laser analyzer (BA Instruments). Results. The paper proposes technological processes for obtaining highly dispersed powders of titanium carbide and diboride. The optimum synthesis temperature for titanium carbide is 2,000…2,100 oC, and for titanium diboride 1,600…1,700 oC. The content of the basic substance is at the level of 97.5…98.0 wt. %. Discussion. A possible mechanism for the formation of titanium carbide and diboride is proposed, which consists in the transfer of vapors of titanium oxides to the surface of solid carbon (synthesis of titanium carbide) and vapors of boron and titanium oxides to the surface of solid carbon (synthesis of titanium diboride). Due to the high purity and dispersion values, the resulting titanium carbide powder can be used as an abrasive material and for the manufacture of tungsten-free hard alloys, carbide steels, wear-resistant coatings, and titanium diboride powder can be used for the preparation of cutting tools and ceramics based on boron carbide.
合成用于金属加工和陶瓷生产的碳化钛和二硼化钛
介绍。碳化钛和二硼化钛具有较高的硬度和化学惰性,因此在现代技术中得到了广泛的应用。本文介绍了碳热法和碳化物-硼法合成碳化钛和二硼化钛的情况,以及碳化钛作为磨料在无钨硬质合金、碳化钢、耐磨涂层、硬质合金和硬质合金中的应用。本文的目的是研究高分散的碳化钛和二硼化钛粉末的合成工艺,这些粉末在刀具、耐磨涂层、磨料和陶瓷等领域具有广阔的应用前景。研究方法。以氧化钛TiO2、纳米纤维碳(NFC)和高度分散的碳化硼为原料合成碳化钛和二硼化物。在电阻炉和感应炉中分别制备了碳化钛和二硼化钛。在ARL X-TRA衍射仪(热电子SA)上对碳化钛和二硼化钛样品的相组成进行了x射线研究。在ARL-Advant'x分析仪上,用x射线光谱荧光法测定了碳化钛和二硼化钛样品中钛和杂质的含量。用LECO公司的S-144装置测定了碳化钛样品中的总碳含量。采用IRIS Advantage光谱仪(Thermo Jarrell Ash Corporation)电感耦合等离子体原子发射光谱法(ICP AES)测定了二硼化钛样品中硼和其他元素的含量。利用卡尔蔡司西格玛扫描电子显微镜(Carl Zeiss)对样品的表面形貌和粒径进行了研究。采用MicroSizer 201激光分析仪(BA Instruments)测定颗粒/骨料粒度分布。结果。提出了制备高度分散的碳化钛和二硼化钛粉末的工艺流程。碳化钛的最佳合成温度为2000 ~ 2100℃,二硼化钛的最佳合成温度为1600 ~ 1700℃。基本物质的含量为97.5 ~ 98.0% wt. %。讨论。提出了一种可能形成碳化钛和二硼化钛的机制,即钛氧化物的蒸气转移到固体碳表面(碳化钛的合成),硼和钛氧化物的蒸气转移到固体碳表面(二硼化钛的合成)。由于高纯度和分散值,所得的碳化钛粉可作为磨料,用于制造无钨硬质合金、碳化钢、耐磨涂层,二硼化钛粉可用于制备基于碳化硼的刀具和陶瓷。
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Obrabotka Metallov-Metal Working and Material Science
Obrabotka Metallov-Metal Working and Material Science METALLURGY & METALLURGICAL ENGINEERING-
CiteScore
1.10
自引率
50.00%
发文量
26
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