Magnetic field properties in non-axisymmetric divertors

被引:3
|
作者
Boozera, Allen H. [1 ]
机构
[1] Columbia Univ, Dept Appl Phys & Appl Math, New York, NY 10027 USA
关键词
Axisymmetric - Divertor properties - Field lines - Fourier - Magnetic features - Magnetic-field - Nonresonant - Plasma edges - Property - Stellarator power plant;
D O I
10.1063/5.0167159
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
Stellarator power plants require a plan for the removal of the particles and the heat that are exhausted across the plasma edge. Unless a flowing liquid metal can be used to carry the helium exhaust to places where it can be removed from the plasma chamber, the particle exhaust must be magnetically diverted into pumping chambers. Studies are required to determine how magnetic features relate to the required divertor properties, how these magnetic features can be produced, and how they can be controlled. General studies are clarified and simplified by the use of the magnetic field line Hamiltonian psi(p)(psi, theta, phi) and a vector (x) over right arrow(psi, theta, phi) that gives the point in space associated with each point in the (psi, theta, phi) canonical coordinates, a flux and two angles. The non-resonant Fourier terms in psi(p) can be removed by a canonical transformation, so only resonant Fourier terms can determine the field line properties in the plasma edge and divertor. This paper discusses the important divertor properties and explains how psi(p)(psi, theta, phi) and (x) over right arrow(psi, theta, phi) can be obtained numerically in a special form for any stellarator magnetic field, (B) over right arrow((x) over right arrow). This form holds between an arbitrary magnetic surface and the chamber walls with the non-resonant terms eliminated. Studies based on variations in the terms in such derived field-line Hamiltonians can determine what magnetic features are mathematically possible and how they could be produced and controlled by the external magnetic field coils. (C) 2023 Author(s).
引用
收藏
页数:9
相关论文
共 50 条
  • [31] CONVECTION OF A WEAKLY IONIZED PLASMA IN A STRONG MAGNETIC-FIELD - NON-AXISYMMETRIC WAVES
    SHIVAMOGGI, BK
    UBEROI, MS
    JOURNAL OF PLASMA PHYSICS, 1979, 22 (AUG) : 187 - 191
  • [32] Non-axisymmetric flow field in an axial impulse turbine
    Lim, Byeung Jun
    Song, Seung Jin
    JOURNAL OF MECHANICAL SCIENCE AND TECHNOLOGY, 2008, 22 (01) : 166 - 170
  • [33] Non-axisymmetric magnetic fields and toroidal plasma confinement
    Boozer, Allen H.
    NUCLEAR FUSION, 2015, 55 (02)
  • [34] Drag torque on slowly rotating high temperature superconductor in non-axisymmetric magnetic field
    Ma, KB
    Wu, PM
    Postrekhin, Y
    Ye, H
    Johansen, T
    Chu, WK
    IEEE TRANSACTIONS ON MAGNETICS, 2001, 37 (04) : 2874 - 2876
  • [35] Non-axisymmetric flow field in an axial impulse turbine
    Byeung Jun Lim
    Seung Jin Song
    Journal of Mechanical Science and Technology, 2008, 22
  • [36] Variation of magnetic braking by non-axisymmetric magnetic fields depending on the perturbed field structure in the KSTAR tokamak
    Kim, Kimin
    Jeon, Y. M.
    Park, J. -K.
    Ko, W. H.
    In, Y.
    Choe, W.
    Kim, J.
    Lee, S. G.
    Yoon, S. W.
    Kwak, J. G.
    Oh, Y. K.
    NUCLEAR FUSION, 2017, 57 (03)
  • [37] EQUILIBRIUM MAGNETIC SURFACES FOR A NON-AXISYMMETRIC TOROIDAL PLASMA
    GOLOVATO, SN
    SHOHET, JL
    BULLETIN OF THE AMERICAN PHYSICAL SOCIETY, 1973, 18 (10): : 1291 - 1291
  • [38] Quasi-axisymmetric magnetic fields: weakly non-axisymmetric case in a vacuum
    Plunk, G. G.
    Helander, Per
    JOURNAL OF PLASMA PHYSICS, 2018, 84 (02)
  • [39] Polarization properties of standing shear Alfven waves in non-axisymmetric background magnetic fields
    Kabin, K.
    Rankin, R.
    Mann, I. R.
    Degeling, A. W.
    Marchand, R.
    ANNALES GEOPHYSICAE, 2007, 25 (03) : 815 - 822
  • [40] Destabilization of Alfvenic activity by non-axisymmetric magnetic field induced rotation braking in KSTAR tokamak
    Kim, Kimin
    Kang, Jisung
    Kim, Hyunseok
    Kim, Junghee
    NUCLEAR FUSION, 2020, 60 (12)