Please wait a minute...
Acta Metall Sin  2009, Vol. 45 Issue (10): 1267-1271    DOI:
论文 Current Issue | Archive | Adv Search |
MICROSTRUCTURE AND MAGNETOSTRICTION OF Fe-Ga POWDERS PREPARED BY GAS ATOMIZATION
GAO Xuexu; LI Jiheng; ZHU Jie; BAO Xiaoqian; JIA Juncheng; ZHANG Maocai
State Key Laboratory for Advanced Metals and Materials; University of Science and Technology Beijing; Beijing 100083
Cite this article: 

GAO Xuexu LI Jiheng ZHU Jie BAO Xiaoqian JIA Juncheng ZHANG Maocai. MICROSTRUCTURE AND MAGNETOSTRICTION OF Fe-Ga POWDERS PREPARED BY GAS ATOMIZATION. Acta Metall Sin, 2009, 45(10): 1267-1271.

Download:  PDF(1390KB) 
Export:  BibTeX | EndNote (RIS)      
Abstract  

The magnetostrictive composite material such as Terfenol–D, is composed of magnetostrictive particles dispersed within a polymer matrix, which is used to bind these particles to a relatively tough material, and the binder creates an insulating layer between the particles which increases the receptivity and reduces eddy current losses at high frequencies operation. Hong et al. reported that the maximum magnetostriction of 5.4×10−5 was obtained in a composite made by mixing the spherical Fe–Ga particles prepared by spark erosion in liquid Ar with epoxy of 48% volume fraction and curing in a magnetic field. Gaudet et al. investigated firstly the Fe–Ga powders prepared by mechanical alloying. Their results suggested that a disordered bcc A2 phase with no indication of any ordered DO3 phase was observed in these powders. Unfortunately, in their report, they also did not describe how to bond powders into a composite and how its magnetostrictive performance was. In present study, the spherical Fe–Ga particles were prepared by gas atomization and their microstructures were investigated by XRD, DTA, SEM and EDS. The results demonstrate that the Ga concentration of gas–atomized particles is near the nominal composition of Fe81Ga19 and most of particles are polycrystallne mainly composed of A2 phse and a small amount of ordered DO3 phase. It is found that L12 phase appeared in the Fe81Ga19 annealed powders is detimental to improvement of magnetostriction. However, many single crystals were obtained due to crystallization during annealing, which is beneficial to increasing the magnetostriction. The bonded magnetostrictive composite was prepareby magneticallaligning compression molding Fe81Ga19 powders and epoy. The maximum saturation magnetostriction of 6.4×10−5 is obtained in the composite containing annealed powdes.

Key words:  Fe–Ga alloy      gas atomization      powder      magnetostricton     
Received:  16 February 2009     
ZTFLH: 

TG132.27

 
  TM272

 
Fund: 

Supported by National Natural Science Foundation of China (No.50775015)

URL: 

https://www.ams.org.cn/EN/     OR     https://www.ams.org.cn/EN/Y2009/V45/I10/1267

[1] Guruswamy S, Srisukhumbowornchai N, Clark A E, Restorff J B, Wun–Fogle M. Scr Mater, 2000; 43: 239
[2] Clark A E, Wun–Fogle M, Restorff J B, Thomas A, Lograsso T A. Mater Trans, 2002; 43: 881
[3] Datta S, Huang M, Raim J, Lograsso T A. Mater Sci Eng, 2006; A435–436: 221
[4] Zhang M C, Gao X X, Jiang H L, Qiao Y, Zhou S Z. J Alloys Compd, 2007; 431: 42
[5] Han Z Y, Zhang M C, Gao X X, Tang H J, Zhou S Z. Prog Nat Sci, 2007; 14: 638
[6] McGary P D, Tan L, Zou J, Stadler B J H, Downey P R, Flatau A B. J Appl Phys, 2006; 99: 08B310
[7] Downey P R, Flatau A B. In: Flatau A B ed., Proc SPIE, Vol. 5764, SPIE, Bellingham, WA, 2005: 120
[8] Mcgary P D, Stadler B J. J Appl Phys, 2005; 97: 10R503
[9] Hong J I, Solomon V C, Simth J, Parker F T, Summers E M, Berkowitz A E. Appl Phys Lett, 2006; 89: 142506
[10] Gaudet J M, Hatchard T D, Farrell S P, Dunlap R A. J Magn Magn Mater, 2008; 320: 821
[11] Srisukhumbowornchai N, Guruswamy S. J Appl Phys, 2002; 92: 5731
[12] Ikeda O, Kainuma R, Ohnuma I, Fukamichi K, Ishida K. J Alloys Compd, 2002; 347: 198
[13] Lograsso T A, Ross A R, Schlagel D L, Clark A E, Wun–Fogle M, J Alloys Compd, 2003; 350: 95
[14] Zhao X G, Mellores N, Kilcoyne S, Lord D, Henry P. J Appl Phys, 2008; 103: 07B320
[15] Gao F, Jiang C B, Liu J H, Xu H B. Acta Metall Sin, 2007; 43: 683
(高 芳, 蒋成保, 刘敬华, 徐惠彬. 金属学报, 2007; 43: 683)
[16] Wu R. J Appl Phys, 2002; 91: 7358
[17] Saito C, Furuya Y, Furuya T, Okazaki T, Matsuzaki T, Watanabe T. Mater Trans, 2004; 45: 93
[18] Takahashi T, Okazaki T, Furuya Y. Scr Mater, dio: 10.1016/j.scriptamat.2008.12.032

[1] BAI Jiaming, LIU Jiantao, JIA Jian, ZHANG Yiwen. Creep Properties and Solute Atomic Segregation of High-W and High-Ta Type Powder Metallurgy Superalloy[J]. 金属学报, 2023, 59(9): 1230-1242.
[2] ZHENG Liang, ZHANG Qiang, LI Zhou, ZHANG Guoqing. Effects of Oxygen Increasing/Decreasing Processes on Surface Characteristics of Superalloy Powders and Properties of Their Bulk Alloy Counterparts: Powders Storage and Degassing[J]. 金属学报, 2023, 59(9): 1265-1278.
[3] ZHANG Deyin, HAO Xu, JIA Baorui, WU Haoyang, QIN Mingli, QU Xuanhui. Effects of Y2O3 Content on Properties of Fe-Y2O3 Nanocomposite Powders Synthesized by a Combustion-Based Route[J]. 金属学报, 2023, 59(6): 757-766.
[4] XU Lei, TIAN Xiaosheng, WU Jie, LU Zhengguan, YANG Rui. Microstructure and Mechanical Properties of Inconel 718 Powder Alloy Prepared by Hot Isostatic Pressing[J]. 金属学报, 2023, 59(5): 693-702.
[5] ZHU Yunpeng, QIN Jiayu, WANG Jinhui, MA Hongbin, JIN Peipeng, LI Peijie. Microstructure and Properties of AZ61 Ultra-Fine Grained Magnesium Alloy Prepared by Mechanical Milling and Powder Metallurgy Processing[J]. 金属学报, 2023, 59(2): 257-266.
[6] MA Guonan, ZHU Shize, WANG Dong, XIAO Bolv, MA Zongyi. Aging Behaviors and Mechanical Properties of SiC/Al-Zn-Mg-Cu Composites[J]. 金属学报, 2023, 59(12): 1655-1664.
[7] SUN Tengteng, WANG Hongze, WU Yi, WANG Mingliang, WANG Haowei. Effect ofIn Situ 2%TiB2 Particles on Microstructure and Mechanical Properties of 2024Al Additive Manufacturing Alloy[J]. 金属学报, 2023, 59(1): 169-179.
[8] WANG Meng, YANG Yongqiang, Trofimov Vyacheslav, SONG Changhui, ZHOU Hanxiang, WANG Di. Effects of Particle Size on Processability of AlSi10Mg Alloy Manufactured by Selective Laser Melting[J]. 金属学报, 2023, 59(1): 147-156.
[9] YANG Qinzheng, YANG Xiaoguang, HUANG Weiqing, SHI Duoqi. Propagation Behaviors of Small Cracks in Powder Metallurgy Nickel-Based Superalloy FGH4096[J]. 金属学报, 2022, 58(5): 683-694.
[10] BI Jiazi, LIU Xiaobin, LI Ran, ZHANG Tao. Tribological Properties of Polyalphaolefin (PAO6) Lubricant Modified with Particles Additives of Metallic Glass[J]. 金属学报, 2021, 57(4): 559-566.
[11] LIU Chao, YAO Zhihao, GUO Jing, PENG Zichao, JIANG He, DONG Jianxin. Microstructure Evolution Behavior of Powder Superalloy FGH4720Li at Near Service Temperature[J]. 金属学报, 2021, 57(12): 1549-1558.
[12] BI Sheng, LI Zechen, SUN Haixia, SONG Baoyong, LIU Zhenyu, XIAO Bolv, MA Zongyi. Microstructure and Mechanical Properties of Carbon Nanotubes-Reinforced 7055Al Composites Fabricated by High-Energy Ball Milling and Powder Metallurgy Processing[J]. 金属学报, 2021, 57(1): 71-81.
[13] HAO Zhibo, GE Changchun, LI Xinggang, TIAN Tian, JIA Chonglin. Effect of Heat Treatment on Microstructure and Mechanical Properties of Nickel-Based Powder Metallurgy Superalloy Processed by Selective Laser Melting[J]. 金属学报, 2020, 56(8): 1133-1143.
[14] ZHANG Guoqing,ZHANG Yiwen,ZHENG Liang,PENG Zichao. Research Progress in Powder Metallurgy Superalloys and Manufacturing Technologies for Aero-Engine Application[J]. 金属学报, 2019, 55(9): 1133-1144.
[15] Zhengguan LU,Jie WU,Lei XU,Xiaoxiao CUI,Rui YANG. Ring Rolling Forming and Properties of Ti2AlNb Special Shaped Ring Prepared by Powder Metallurgy[J]. 金属学报, 2019, 55(6): 729-740.
No Suggested Reading articles found!