Forces on Particles in Time-Varying Magnetic Fields

被引:8
|
作者
Ray, Jaclyn D. [1 ]
Nagel, James R. [1 ]
Cohrs, Dave [1 ]
Rajamani, Raj K. [1 ]
机构
[1] Univ Utah, Dept Met Engn, 135 S 1460 E,ROOM 412, Salt Lake City, UT 84112 USA
关键词
electrodynamics; eddy current; time-varying magnetic field; scrap metal waste; SPHERE;
D O I
10.14356/kona.2018016
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Electrodynamic sorting is a process that sorts metals based on conductivity, density, and geometry. The process works by inducing electrical eddy currents within particles placed in a time-varying magnetic field. For the special case of a perfect, uniform sphere, an approximate equation can be used to predict the net force under a linear magnetic gradient. This paper explores the accuracy of that model by measuring the net force on spherical samples of copper, brass, and aluminum with varying sizes and excitation frequencies. Results consistently show strong agreement with the approximate models over all conditions. We also explore several non-spherical geometries, including cylinders, cubes, and disks. We found that they could be modeled as equivalent spheres, given an appropriate radius, and had reasonable accuracy over frequency.
引用
收藏
页码:251 / 257
页数:7
相关论文
共 50 条
  • [31] Particle Acceleration by a Time-Varying Electric Field in Merging Magnetic Fields
    Yuri E. Litvinenko
    [J]. Solar Physics, 2003, 216 : 189 - 203
  • [32] Ferrohydrodynamic pumping in spatially traveling sinusoidally time-varying magnetic fields
    Mao, LD
    Koser, H
    [J]. JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2005, 289 : 199 - 202
  • [33] Crustal and time-varying magnetic fields at the InSight landing site on Mars
    Johnson, Catherine L.
    Mittelholz, Anna
    Langlais, Benoit
    Russell, Christopher T.
    Ansan, Veronique
    Banfield, Don
    Chi, Peter J.
    Fillingim, Matthew O.
    Forget, Francois
    Haviland, Heidi Fuqua
    Golombek, Matthew
    Joy, Steve
    Lognonne, Philippe
    Liu, Xinping
    Michaut, Chloe
    Pan, Lu
    Quantin-Nataf, Cathy
    Spiga, Aymeric
    Stanley, Sabine
    Thorne, Shea N.
    Wieczorek, Mark A.
    Yu, Yanan
    Smrekar, Suzanne E.
    Banerdt, William B.
    [J]. NATURE GEOSCIENCE, 2020, 13 (03) : 199 - +
  • [34] THE EFFECTS OF TIME-VARYING MAGNETIC-FIELDS ON BIOLOGICAL-MATERIALS
    BARNES, FS
    [J]. IEEE TRANSACTIONS ON MAGNETICS, 1990, 26 (05) : 2092 - 2097
  • [35] A solution of the inhomogeneous Bloch equation for a class of time-varying magnetic fields
    Kobayashi, M
    [J]. PROGRESS OF THEORETICAL PHYSICS, 2004, 112 (05): : 773 - 783
  • [36] Simulating the effects of time-varying magnetic fields with a realistic simulated scanner
    Drobnjak, Ivana
    Pell, Gaby S.
    Jenkinson, Mark
    [J]. MAGNETIC RESONANCE IMAGING, 2010, 28 (07) : 1014 - 1021
  • [37] Observation of the Intrinsic Abraham Force in Time-Varying Magnetic and Electric Fields
    Rikken, G. L. J. A.
    van Tiggelen, B. A.
    [J]. PHYSICAL REVIEW LETTERS, 2012, 108 (23)
  • [38] DYNAMIC BEHAVIORS OF CONDUCTIVE CIRCULAR PLATE IN TIME-VARYING MAGNETIC FIELDS
    Yuanwen Gao1 Bang Xu(Key Laboratory of Mechanics on Western Disaster and Environment
    [J]. Acta Mechanica Solida Sinica, 2010, 23 (01) : 66 - 76
  • [39] PRINCIPLES OF NERVE AND HEART EXCITATION BY TIME-VARYING MAGNETIC-FIELDS
    REILLY, JP
    [J]. ANNALS OF THE NEW YORK ACADEMY OF SCIENCES-SERIES, 1992, 649 : 96 - 117
  • [40] Calculations of Cell Transmembrane Voltage Induced by Time-Varying Magnetic Fields
    Hu, Qin
    Joshi, Ravi P.
    Miklavcic, Damijan
    [J]. IEEE TRANSACTIONS ON PLASMA SCIENCE, 2020, 48 (04) : 1088 - 1095