Role of Sn as a Process Control Agent on Mechanical Alloying Behavior of Nanocrystalline Titanium Based Powders

被引:9
|
作者
Matula, Izabela [1 ]
Zubko, Maciej [1 ,2 ]
Dercz, Grzegorz [1 ]
机构
[1] Univ Silesia Katowice, Inst Mat Engn, 75 Pulku Piechoty 1a, PL-41500 Chorzow, Poland
[2] Univ Hradec Kralove, Fac Sci, Dept Phys, Rokitanskeho 62, Hradec Kralove 50003, Czech Republic
关键词
Sn; process control agent; nanocrystalline Ti based alloy; mechanical alloying; Rietveld method; X-RAY; BETA-TI; MICROSTRUCTURAL EVOLUTION; COMPOSITE POWDER; MILLING TIME; NB ALLOY; ZR; PHASE; SUPERELASTICITY; TRANSFORMATION;
D O I
10.3390/ma13092110
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
In this study, the effects of Sn as a process control agent (PCA) on the final powder sizes, morphology, homogenization and alloying process of a new titanium alloy were investigated. Two kinds of powders, Ti10Ta8Mo and Ti10Ta8Mo3Sn (wt %), were prepared using a mechanical alloying process. For the Ti10Ta8Mo3Sn (wt %) alloy, the Sn element was used as PCA to enhance the milling process in the planetary ball mill. The milling process of both compositions was carried out with 200 rpm for 10, 15, 20, 40, 60, 80 and 100 h. The results confirmed that using Sn as a process control agent can result in a relatively good size distribution and better yield performance compared to samples without Sn addition. The phase analysis using X-ray diffraction proved the formation of the alpha nanocrystalline phase and the partial phase transformation from alpha to nanocrystalline beta phases of both alloy compositions. The Scaning Electron Micoscope- Backscattered Electrons SEM-BSE results confirmed that the use of Sn as the PCA can provide a better homogenization of samples prepared by at least 60 h of ball milling. Furthermore, the presence of Sn yielded the most uniform, spheroidal and finest particles after the longest milling time.
引用
收藏
页数:18
相关论文
共 50 条
  • [1] Role of process control agent on mechanical alloying of nano structured TiAl-based alloy
    Bahmanpour, H.
    Heshmati-Manesh, S.
    INTERNATIONAL JOURNAL OF MODERN PHYSICS B, 2008, 22 (18-19): : 2933 - 2938
  • [2] SYNTHESIS OF NANOCRYSTALLINE TIC POWDERS BY MECHANICAL ALLOYING
    YE, LL
    QUAN, MX
    NANOSTRUCTURED MATERIALS, 1995, 5 (01): : 25 - 31
  • [3] Mechanical alloying of FeCo Nanocrystalline magnetic powders
    H. F. Li
    R. V. Ramanujan
    Journal of Electronic Materials, 2004, 33 : 1289 - 1297
  • [4] Mechanical alloying of FeCo nanocrystalline magnetic powders
    Li, HF
    Ramanujan, RV
    JOURNAL OF ELECTRONIC MATERIALS, 2004, 33 (11) : 1289 - 1297
  • [5] Fabrication of nanocrystalline WC powders by mechanical alloying of elemental powders
    Cha, SI
    Hong, SH
    METASTABLE, MECHANICALLY ALLOYED AND NANOCRYSTALLINE MATERIALS, 2003, : 319 - 324
  • [6] Nanocrystalline Ag-CdO powders by mechanical alloying
    Uupadhyay, GH
    Marathe, GR
    Joshi, PB
    Gadgeel, VL
    Ramakrishnan, P
    Raole, M
    TRENDS IN MECHANICAL ALLOYING, 2002, : 149 - 158
  • [7] Functionally graded nanocrystalline silicon powders by mechanical alloying
    Goyal, Ankit
    Soni, P. R.
    MATERIALS LETTERS, 2018, 214 : 111 - 114
  • [8] STUDY OF NANOCRYSTALLINE AND AMORPHOUS POWDERS PREPARED BY MECHANICAL ALLOYING
    SCHAAF, P
    RIXECKER, G
    YANG, E
    WAGNER, CNJ
    GONSER, U
    HYPERFINE INTERACTIONS, 1994, 94 (1-4): : 2239 - 2244
  • [9] Formation of new Cu-based nanocrystalline powders by mechanical alloying technique
    Gogebakan, Musa
    Kursun, Celal
    Eckert, Juergen
    POWDER TECHNOLOGY, 2013, 247 : 172 - 177
  • [10] A MICROSTRUCTURAL STUDY OF MECHANICAL ALLOYING OF FE AND SN POWDERS
    LECAER, G
    MATTEAZZI, P
    FULTZ, B
    JOURNAL OF MATERIALS RESEARCH, 1992, 7 (06) : 1387 - 1395