期刊文献+

原料表面改性对微波合成TiC粉体的影响

Effects of Surface Modification of Raw Materials on Microwave Synthesis of Nano-Ti C Powders
下载PDF
导出
摘要 通过调节p H值和添加分散剂(聚丙烯酸),对微波合成Ti C的原料Ti O2和乙炔炭黑进行表面改性处理,将处理后的原料通过湿磨混料,并在微波窑中利用碳热还原反应合成Ti C粉体。利用Zeta电位测试、X射线衍射、激光粒度分析等手段,研究p H值、分散剂、球磨等原料表面改性及混料工艺对微波合成Ti C粉体的物相组成、化学计量、粒度分布的影响。结果表明:Ti O2和乙炔炭黑的较佳改性p H值均为4,其较佳分散剂用量分别是2.4 wt%和9.0 wt%;湿磨混料的较佳时间为6 h;与未经表面改性处理相比,原料经表面改性处理后,微波合成Ti C粉体的温度较低(合成温度降低150℃),粉体粒度较小,化学计量更准确。 The raw materials of Ti O2 and acetylene carbon black used to synthesize Ti C were modified by means of adjusting p H values and adding dispersant(polyacrylic acid). The treated raw materials were blended by wet milling. The Ti C was synthesized by carbothermal reduction in microwave oven. The Zeta potential measurements, X-Ray Diffraction and laser particle-size distribution were used to analyze the effect of surface modification(p H, dispersant) and milling process on the phase, stoichiometry and particle size distribution of the prepared Ti C powders. The results show that the optimum modified p H value of Ti O2 or carbon black was 4 and the optimum dosage of dispersant was 2.4wt% or 9.0 wt%, respectively. The optimum time of wet milling was 6 h. Compared with the Ti C powders prepared by raw materials without surface modification, the synthetic temperature becomes lower(reduced by 150 ℃) after surface modification, the particle size becomes smaller and the stoichiometry is more accurate.
出处 《中国陶瓷》 CAS CSCD 北大核心 2016年第4期12-15,共4页 China Ceramics
基金 国家高技术研究发展计划(863计划)(2013AA032001) 国家自然科学基金(11275158) 国家级大学生创新创业训练计划资助项目(201410619010)
关键词 表面改性 合成温度 化学计量 粒度分布 Surface modification Synthetic temperature Stoichiometry Particle size
  • 相关文献

参考文献14

二级参考文献36

  • 1刘付胜聪,肖汉宁,李玉平,胡智荣.纳米TiO_2表面吸附聚乙二醇及其分散稳定性的研究[J].无机材料学报,2005,20(2):310-316. 被引量:37
  • 2张武装,刘咏,黄伯云.纳米晶WC-Co硬质合金的研究现状[J].材料导报,2007,21(2):79-82. 被引量:23
  • 3Hashe N G, Nething J H, Berndt P R, et al. A comparison of the microstructure of WC-VC-TiC-Co and WC-VC-Co cemented carbides [ J ]. International Journal of Refractory & Hard Matals, 2007, 25(3 ) :207-213. 被引量:1
  • 4Lee K H, Cha S I, Kim B K, et al. Effect of WC/TiC grain size ratio on microstructure and mechanical properties of WC-TiC-Co cemented carbides[J]. International Journal of Refractory & Hard Matals, 2006,24 (1-2) : 109-114. 被引量:1
  • 5Paranosenkov V P, Kelina I Y, Plyasunkova L A, et al. Preparation of dense ceramics based on silicon nitride nanopowders [ J ]. Refractories and Industrial Ceramic, 2003, 44:223-226. 被引量:1
  • 6Bellosi A, Vieens J, Medri V, et al. Nanosize Silicon Nitride: Characteristic of doped powders and of the related sintered materials[J]. Appl. Phys. A, 2004,10:1007-1023. 被引量:1
  • 7Awaji H, Choi S M, Yagi E. Mechanisms of toughening and strengthening in ceramic-based nanocomposites[J]. Mechanics of Materials, 2002,34 : 411-422. 被引量:1
  • 8Ohji, jeong Y K, Choa Y H, et al. Strengthening and toughening mechanisms of ceramic nanocomposite [ J ]. J. Am. Ceram. Soc, 1998,81 (6) : 1453-1460. 被引量:1
  • 9王霖林.特种陶瓷[M].长沙:中南工业大学出版社,2003:129-132. 被引量:1
  • 10Yang M C, Xu J, Hu Z Q. Synthesis of WC-TiC35-Co10 nanocomposite powder by a novel method [ J ]. International Journal of Refractory & Hard Matals, 2004,22 : 1-7. 被引量:1

共引文献37

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部