Complex atomic spectral line shapes in the presence of an external magnetic field

被引:17
作者
Adams, ML
Lee, RW
Scott, HA
Chung, HK
Klein, L
机构
[1] MIT, Dept Nucl Engn, Cambridge, MA 02139 USA
[2] Lawrence Livermore Natl Lab, Livermore, CA 94551 USA
[3] Howard Univ, Dept Phys & Astron, Washington, DC 20059 USA
来源
PHYSICAL REVIEW E | 2002年 / 66卷 / 06期
关键词
D O I
10.1103/PhysRevE.66.066413
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
Both the theoretical basis and the computational approach for extending the capabilities of an established spectral line broadening code are presented. By following standard line broadening theory, the effects of an external magnetic field are incorporated into the plasma average and atomic Hamiltonian. An external magnetic field introduces a preferential axis that destroys the symmetry of the quasistatic electric ion microfield. An external magnetic field also modifies the angular properties of the atomic Hamiltonian-atomic energy levels are perturbed and the spectral emission line is polarized. These extensions have been incorporated in an atomic line shape code for complex atoms and applied to several problems of importance to the understanding of tokamak edge plasmas. Applications fall into two broad categories: (1) determination of local plasma properties, such as the magnetic field strength, from distinct line shape features; and (2) consideration of global plasma phenomenon, such as radiation transport. Observable features of the Zeeman effect make H-alpha a good line for diagnosing the magnetic field. H-beta does not make a good electron density diagnostic since the Zeeman effect is comparable to the Stark effect for a majority of tokamak edge plasma conditions. For optically thick lines, the details of the spectral line shapes are shown to significantly influence the transport of radiation throughout the system.
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页数:12
相关论文
共 52 条
[1]  
Adams ML, 2002, CONTRIB PLASM PHYS, V42, P395, DOI 10.1002/1521-3986(200204)42:2/4<395::AID-CTPP395>3.3.CO
[2]  
2-0
[3]   Application of magnetically-broadened hydrogenic line profiles to computational modeling of a plasma experiment [J].
Adams, ML ;
Scott, HA ;
Lee, RW ;
Terry, JL ;
Marmar, ES ;
Lipschultz, B ;
Pigarov, AY ;
Freidberg, JP .
JOURNAL OF QUANTITATIVE SPECTROSCOPY & RADIATIVE TRANSFER, 2001, 71 (2-6) :117-128
[4]  
[Anonymous], 1977, Quantum mechanics
[5]   HULLAC, an integrated computer package for atomic processes in plasmas [J].
Bar-Shalom, A ;
Klapisch, M ;
Oreg, J .
JOURNAL OF QUANTITATIVE SPECTROSCOPY & RADIATIVE TRANSFER, 2001, 71 (2-6) :169-188
[6]   ELECTRIC FIELD DISTRIBUTIONS IN AN IONIZED GAS [J].
BARANGER, M ;
MOZER, B .
PHYSICAL REVIEW, 1959, 115 (03) :521-525
[7]   PROBLEM OF OVERLAPPING LINES IN THE THEORY OF PRESSURE BROADENING [J].
BARANGER, M .
PHYSICAL REVIEW, 1958, 111 (02) :494-504
[8]   Phase-amplitude algorithms for atomic continuum orbitals and radial integrals [J].
BarShalom, A ;
Klapisch, M ;
Oreg, J .
COMPUTER PHYSICS COMMUNICATIONS, 1996, 93 (01) :21-32
[9]   H-ALPHA AND H-BETA SPECTRAL PROFILES FROM NEUTRAL BEAMS AND PLASMAS IN HIGH MAGNETIC-FIELDS [J].
BRETON, C ;
DEMICHELIS, C ;
FINKENTHAL, M ;
MATTIOLI, M .
JOURNAL OF PHYSICS B-ATOMIC MOLECULAR AND OPTICAL PHYSICS, 1980, 13 (08) :1703-1718
[10]  
Brillant S, 1998, ASTRON ASTROPHYS, V339, P286