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自蔓延冶金法制备TiB_2微粉的生长机理研究 被引量:8

Growth Mechanism of TiB_2 Powder Prepared by SHS-metallurgy
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摘要 采用自蔓延冶金法制备了TiB2微粉.对相关的反应体系进行了DTA分析,并采用 XRD、扫描电镜以及粒度分布技术对燃烧产物及浸出产物进行了分析和表征.结果表明: Mg-B2O3-TiO2之间的反应为固-液-液-固反应机制;燃烧产物主要有TiB2和MgO,以及少量的Mg2TiO4和Mg3B2O6等相组成;随着压样压力增加,TiB2颗粒变小,添加MgO,TiB2 颗粒亦减小,添加TiB2,TiB2颗粒则明显增大.结合扫描电镜分析了燃烧产物的微观结构以及微观区域形成的原因,确定了TiB2生长机制为一种在颗粒间生长,另一种在颗粒内部形成. TiB2 powder was prepared by SHS-metallurgy. The relative reaction systems were analyzed by DTA. The combustion products and leachable products were analyzed and characterized by XRD, SEM and granularity distribution. The results indicate that SHS reaction of Mg-TiO2-B2O3 system takes place through solid-liquid-liquid-solid reaction process. The combustion products consist of TiB2, MgO and a little Mg2TiO4 & Mg3B2O6. The TiB2 particles become thinner when the sample pressure increases; TiB2 particle becomes thinner when adding MgO to the reaction system and TiB2 particles become bigger when adding TiB2 to the reaction system. The microstructure of combustion products and the forming mechanism of the different micro-regions were analyzed by Micro-region-technology based on SEM. The growth mechanism of TiB2 can be determined that one is growing in particle-particle interfaces and the other is growing within particles.
出处 《无机材料学报》 SCIE EI CAS CSCD 北大核心 2006年第3期583-590,共8页 Journal of Inorganic Materials
基金 国家自然科学基金(59971016) 辽宁省重点学科带头人培养计划项目(200117124206)
关键词 自蔓延高温合成 TIB2 差热分析 生长机理 TiB2 self-propagating high-temperature synthesis DTA growing mechanism
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  • 1陈绍衣.紫色氧化钨制取钨粉[J].中南矿冶学院学报,1994,25(5):607-611. 被引量:19
  • 2刘业翔,邹忠.导电陶瓷TiB_2开发与应用的最新进展[J].稀有金属,1996,20(6):438-443. 被引量:19
  • 3[1]Takaho T,Eisuke B,Shichio K.Preparation of EuB6 single crystal[J].J Cryst Growth,1977,40:125-128.
  • 4[2]Takahashi T,Kunii S.Single crystal growth and properties of incogruently melting ThB6,DyB,HaB6,YB6[J].J Solid State Chem,1977,133:198-200.
  • 5[3]Bat I,Bat Ko M,Flachhart K K,et al.Electrical resistivity and superconductivity of LaB6 and LuB6[J].J Alloys Compd,1995,217:L1-L3.
  • 6[5]Matsusshita,Junichi,Mori,et al.Oxidation of calcium boride at high temperature[J].J Mater Syn Pro,1986,6(6):407-410.
  • 7[6]Paderno V B,Paderno Y B,Martynenko A N,et al.Effect of production procedure on structure formation and fracture of CaB6-TiB2 pseude alloy[J].Poroshk Metal,1992,10:52-55.(in Russian)
  • 8[8]Otani S.Preparation of CaB6 crystal by the floating zone method[J].Journal of Crystal Growth,1998,192:346-349.
  • 9[9]Kubaschewski O,Alcock C B.冶金热化学[M].邱竹贤,梁英教译.北京:冶金工业出版社,1985.216-239.Kubaschewski O,Alcock C B.Thermodynamics Chemistry of Metallurgy[M].QIU Zhu-xian,LIANG Ying-jiao transl.Beijing:Metallurgical Industry Press,1985.216-239.
  • 10[11]Burgan B R,Hall R C,Hele-mann R F.Dissociation pressure:Hg-Pb[J].J Inst Metals,1951,80,41.

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