Dynamic powder compaction method by electromagnetic force

被引:0
|
作者
Murakoshi, Y. [1 ]
Takahashi, M. [1 ]
Hanada, K. [1 ]
Sano, T. [1 ]
Negishi, H. [1 ]
机构
[1] Japan Science and Technology Corp., 4-1-8 Honchou, Kawaguchi 332-0012, Japan
关键词
Aluminum powder metallurgy - Deformation - Density (specific gravity) - Failure analysis - Sintering - Stiffness;
D O I
10.2497/jjspm.48.565
中图分类号
学科分类号
摘要
Hollow cylinder product has been made from aluminum powder by a dynamic compaction method that electromagnetic force shrinks an aluminum tube named as a sheath and utilises deformation of the sheath to compact the aluminum powder. A female screw and a taper can be formed inside of the product by this method. The electromagnetic force appears between the sheath and a solenoid coil according to Flemming's left hand law and can be controlled by discharge energy of a power supply. By using a cylindrical core with high stiffness the sheath shrinks uniformly without wrinkles and the aluminum powder can be compacted uniformly. The compacted powder compact, which was sintered at 893 K for 1 hour in a vacuum furnace, has shown about 2.0g/cm3 of density and 50 MPa of compression failure strength. The density and strength increase with an increase in the discharge energy. However, the strength has decreased due to applying the same electromagnetic force on the sheath repeatedly.
引用
收藏
页码:565 / 570
相关论文
共 50 条
  • [41] DYNAMIC POWDER COMPACTION OF SOME RAPIDLY SOLIDIFIED CRYSTALLINE AND AMORPHOUS POWDERS - COMPACTION CHARACTERISTICS
    PAGE, NW
    RAYBOULD, D
    MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 1989, 118 : 179 - 195
  • [42] Investigation of Electromagnetic Pulse Compaction on Conducting Graphene/PEKK Composite Powder
    Wang, Quanbin
    Jia, Deli
    Pei, Xiaohan
    Wu, Xuelian
    Xu, Fan
    Wang, Huixiong
    Cao, Minghao
    Chen, Haidong
    MATERIALS, 2021, 14 (03) : 1 - 17
  • [43] Sealing and compaction of powder materials in metal shells by a pulsed electromagnetic field
    Mironovs, Viktors
    Usherenko, Yulia
    Stankevics, Pavels
    Glushchenkov, Vladimir
    MATERIALS TODAY-PROCEEDINGS, 2020, 30 : 487 - 489
  • [44] Simulation of low-voltage electromagnetic compaction process of powder material
    Huang, SY
    Wu, YC
    Zhang, QF
    COMPOSITE MATERIALS III, 2003, 249 : 489 - 493
  • [45] System Design for High Energy Rate Electromagnetic Powder Compaction Devices
    Liu, Jun
    Zhou, Gangyi
    Dong, Xinlong
    Li, Guofu
    MANUFACTURING SCIENCE AND ENGINEERING, PTS 1-5, 2010, 97-101 : 1146 - 1149
  • [46] Study of measurement method for large imbalance evaluation based on dynamic electromagnetic force
    Wang, Qiuxiao
    Wu, Zhaofu
    Wang, Dequan
    Fu, Xiaoyan
    MEASUREMENT, 2017, 104 : 142 - 150
  • [47] Calculation of force parameters during compaction of powder materials in screw extruders
    Atoyan, SV
    Generalov, MB
    Trutnev, NS
    CHEMICAL AND PETROLEUM ENGINEERING, 1998, 34 (11-12) : 730 - 734
  • [48] Calculation of force parameters during compaction of powder materials in screw extruders
    S. V. Atoyan
    M. B. Generalov
    N. S. Trutnev
    Chemical and Petroleum Engineering, 1998, 34 : 730 - 734
  • [49] EFFECT OF PARTICLE SIZE DISTRIBUTION ON FORCE CHAIN EVOLUTION MECHANISM IN IRON POWDER COMPACTION BY DISCRETE ELEMENT METHOD
    Zhang, Wei
    Xiao, Weijian
    Yuan, Chuanniu
    Zhang, Ning
    Liu, Kun
    Lixue Xuebao/Chinese Journal of Theoretical and Applied Mechanics, 2022, 54 (09): : 2489 - 2500
  • [50] Dynamic powder compaction for parts with high-aspect ratio
    Sukegawa, N
    Sano, T
    Horikoshi, S
    Takeishi, H
    INTERNATIONAL JOURNAL OF IMPACT ENGINEERING, 2000, 24 (6-7) : 561 - 570