Mo-Si-B三元系中T2相合金的制备工艺研究*

展开
  • 2 北京科技大学新金属材料国家重点实验室, 北京 100083
    3 洛阳理工学院材料科学与工程学院, 洛阳 471023

网络出版日期: 2015-07-07

基金资助

*国家自然科学基金项目50871012 和U1504514, 长江学者和创新团队发展计划项目IRT1234, 及河南省科技攻关项目20140401 资助

STUDY ON THE PREPARATION PROCESS OF T2 ALLOY IN THE Mo-Si-B SYSTEM

  • Kunming PAN ,
  • Laiqi ZHANG ,
  • Shizhong WEI ,
  • Jiwen LI ,
  • Hao LI ,
  • Junpin LIN
Expand
  • 1 Engineering Research Center of Tribology and Materials Protection, Ministry of Education, Henan University of Science and Technology, Luoyang 471023
    2 State Key Laboratory for Advanced Metals and Materials, University of Science and Technology Beijing, Beijing 100083
    3 School of Materials Science and Engineering, Luoyang Institute of Science and Technology, Luoyang 471023

Online published: 2015-07-07

Supported by

Supported by National Natural Science Foundation of China (Nos.50871012 and U1504514), Program for Changjiang Scholars and Innovative Research Team in University (No.IRT1234) and Science & Technology Project of Henan Province (No.20140401)

摘要

分别通过还原气氛常压烧结法 (TFS) 和放电等离子烧结法 (SPS) 制备Mo5SiB2 (T2) 相合金, 并采用XRD, SEM和TEM等方法对合金的微观结构进行表征. 结果表明: 快的升温速率是合成T2相的动力学条件, 相比传统烧结方式, SPS法以独特的等离子活化烧结方式提供快的加热速率, 能够在较短的时间内升温到所需温度1500 ℃, 避免Mo, Si和B混合粉末在中温区间 (600~1200 ℃) 通过固-固反应生成Mo3Si, Mo5Si3和MoB等二元相, 而通过固-液反应原位合成T2相. 合金平均晶粒尺寸为1.44 mm, 晶界清晰、洁净、无过渡区且在晶体内没有观察到位错等缺陷.

本文引用格式

潘昆明,张来启,魏世忠,李继文,李豪,林均品 . Mo-Si-B三元系中T2相合金的制备工艺研究*[J]. 金属学报, 2015 , 51(11) : 1377 -1383 . DOI: 10.11900/0412.1961.2015.00053

Abstract

Mo5SiB2 (T2) can be used as a promising elevated-temperature structural material because of its high melting temperature (about 2200 ℃), and excellent resistance to oxidation and creep. The Mo5SiB2 (T2) alloy was prepared by both spark plasma sintering (SPS) and tube furnace sintering (TFS), and then the microstructures were characterized by XRD, SEM-EDS and TEM. The results show that the rapid heating rate is one of important dynamic conditions responsible for the synthesis of T2. Compared with traditional methods, SPS can provide the fast synthesis in a particular way of labilized plasma sintering so that the sample can be heated to the expected temperature of 1500 ℃ with a short period. The melted Si can rapidly react with Mo and B to synthesize T2 in the solid-liquid state prior to the formation of binary phases (Mo3Si, Mo5Si3, MoB, etc.) in the solid state in the range of 600~1200 ℃. The average size of grains is equal to 1.44 μm. The boundaries are clear and have the shape of a straight line without transition zones. Moreover, no defects such as dislocations were found in the T2 alloys prepared by SPS.

参考文献

[1] Depka T, Somsen C, Eggeler G, Mukherji D, R?sler J, Krüger M, Saage H, Heilmaier M. Mater Sci Eng, 2009; A510-511: 337
[2] Sakidja R, Perepezko J H, Kim S. Acta Mater, 2008; 56: 5223
[3] Zhang F, Zhang L, Shan A, Wu J. Intermetallics, 2006; 14: 406
[4] Mandal P, Thom A J, Kramer M J. Mater Sci Eng, 2004; A371: 335
[5] Meyer M K, Kramer M J, Akinca M. Intermetallics, 1996; 4: 273
[6] Nunes C A, Sakidja R, Dong Z. Intermetallics, 2000; 8: 327
[7] Pan K M, Liu W, Zhang L Q, Wei S Z, You L, Lin J P, Li J W, Xu L J, Zhou S Z, Han M R. Mater Sci Eng, 2015; A623: 124
[8] Zhang L Q, Pan K M, Du W, Wang M, Lin J P, Ni X D, Shang H K, Sun J H. Intermetallics, 2014; 50: 79
[9] Pan K M, Zhang L Q, Wang J, Du W, Lin J P. Acta Metall Sin, 2013; 49: 1392 (潘昆明, 张来启, 王 珏, 杜 伟, 林均品. 金属学报, 2013; 49: 1392
[10] Zhang L Q, Pan K M, Lin J P. Intermetallics, 2013; 38: 49
[11] Rawn C J, Schneibel J H, Hoffmann C M. Intermetallics, 2001; 9: 209
[12] Yamauchi A, Yoshimi K, Kurokawa K. J Alloys Compd, 2007; 434-435: 420
[13] Abbasi A R, Shamanian M. Mater Sci Eng, 2011; A528: 3295
[14] Urquhart A W. Mater Sci Eng, 1991; A144: 75
[15] Wan D T, Zhou Y C, Bao Y W. Ceram Int, 2006; 32: 883
[16] Pan K M, Zhang L Q, Wang J, Lin J P, Chen G L. Surf Interface Anal, 2013; 45: 955
[17] Nesmeianov A N. Vapor Pressure of the Chemical Elements. Amsterdam: Elsevier Pub. Co., 1963: 85
[18] Mandal P, Thom A J, Kramer M J. Mater Sci Eng, 2004; A371: 335
[19] Deevi S C, Thadhani N N. Mater Sci Eng, 1995; A192-193: 604
[20] Shen Z, Johnsson M, Zhao Z. J Am Ceram Soc, 2002; 85: 1921
[21] Ls D, Gurry R W. Physical Chemistry of Metals. Tokyo: McGraw-Hill Book Company and Kogakusha Company Ltd., 1993: 126
[22] Zhang L Q, Huang L. J Univ Sci Technol Beijing, 2008; 30: 281 (张来启, 黄 蕾, 北京科技大学学报, 2008; 30: 281)
[23] Yoon J, Lee J, Lee K. Intermetallics, 2003; 11: 687
[24] Rosales I, Schneibel J H. Intermetallics, 2000; 8: 885
[25] Str?m E. Mater Charact, 2005; 55: 402
[26] Huebsch J. Intermetallics, 2000; 8: 143
[27] Hayashi T, Ito K, Numakura H. Intermetallics, 2005; 13: 93
[28] Wang S W, Chen L D, Hirai T. J Mater Res, 2000; 15: 982
文章导航

/