Intrinsic molybdenum impurity density and radiative power losses with their scalings in ohmically and ICRF heated Alcator C-Mod and FTU tokamak plasmas

被引:19
作者
May, MJ [1 ]
Fournier, KB
Goetz, JA
Terry, JL
Pacella, D
Finkenthal, M
Marmar, ES
Goldstein, WH
机构
[1] Johns Hopkins Univ, Dept Phys & Astron, Plasma Spect Grp, Baltimore, MD 21218 USA
[2] Lawrence Livermore Natl Lab, Livermore, CA 94551 USA
[3] MIT, Ctr Plasma Fus, Cambridge, MA 02139 USA
[4] EURATOM, ENEA, Ctr Ric Frascati, Rome, Italy
[5] Hebrew Univ Jerusalem, Racah Inst Phys, IL-91904 Jerusalem, Israel
关键词
D O I
10.1088/0741-3335/41/1/004
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
A new radiative cooling curve for molybdenum, determined from the Hebrew University, Jerusalem-Lawrence Livermore atomic code (HULLAC) has been used to estimate the radiative power losses from various ion cyclotron resonance frequency (ICRF) and ohmically heated Alcator C-Mod tokamak plasmas and ohmically heated Frascati tokamak upgrade (FTU) plasmas. This cooling curve has been found to accurately predict the radiative losses from molybdenum ions in plasma. Radiative losses from molybdenum computed by using the HULLAC cooling curve could typically account for greater than 60% of the total radiative losses as measured by bolometry in Alcator C-Mod tokamak plasmas. The molybdenum density was found to be as high as similar to 10(11) particles cm(-3) (n(Mo)/n(e) similar to 0.001) in ICRF heated plasmas. Plasmas after botonization of the plasma facing surfaces had the lowest molybdenum density and radiated power of all the plasmas examined; ICRF heated plasmas had the highest. The molybdenum density and radiative power losses were found to increase roughly linearly with input ICRF power during different heating schemes in plasmas with both I-I-mode and L-mode confinement. Although the molybdenum densities were found to decrease with increasing electron density, the radiative power losses did not change significantly for II types of plasmas studied in Alcator C-Mod and FTU: diverted plasmas heated with ICRF and both limited and diverted plasmas heated ohmically.
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页码:45 / 63
页数:19
相关论文
共 42 条
[11]   Calculation of the radiative cooling coefficient for molybdenum in a low density plasma [J].
Fournier, KB ;
Pacella, D ;
May, MJ ;
Finkenthal, M ;
Goldstein, WH .
NUCLEAR FUSION, 1997, 37 (06) :825-834
[12]   POWER BALANCE AND SCALING OF THE RADIATED POWER IN THE DIVERTOR AND MAIN PLASMA OF ALCATOR C-MOD [J].
GOETZ, JA ;
LIPSCHULTZ, B ;
GRAF, MA ;
KURZ, C ;
NACHTRIEB, R ;
SNIPES, JA ;
TERRY, JL .
JOURNAL OF NUCLEAR MATERIALS, 1995, 220 :971-975
[13]   SPECTROSCOPIC MEASUREMENT OF IMPURITY TRANSPORT-COEFFICIENTS AND PENETRATION EFFICIENCIES IN ALCATOR C-MOD PLASMAS [J].
GRAF, MA ;
RICE, JE ;
TERRY, JL ;
MARMAR, ES ;
GOETZ, JA ;
MCCRACKEN, GM ;
BOMBARDA, F ;
MAY, MJ .
REVIEW OF SCIENTIFIC INSTRUMENTS, 1995, 66 (01) :636-638
[14]  
GRAF MA, 1995, PFCRR956 MIT
[15]  
HSU TC, 1993, P 8 JOINT WORKSH ECE, P409
[16]   NUMERICAL-STUDIES OF IMPURITIES IN FUSION PLASMAS [J].
HULSE, RA .
NUCLEAR TECHNOLOGY-FUSION, 1983, 3 (02) :259-272
[17]   1ST RESULTS FROM ALCATOR-C-MOD [J].
HUTCHINSON, IH ;
BOIVIN, R ;
BOMBARDA, F ;
BONOLI, P ;
FAIRFAX, S ;
FIORE, C ;
GOETZ, J ;
GOLOVATO, S ;
GRANETZ, R ;
GREENWALD, M ;
HORNE, S ;
HUBBARD, A ;
IRBY, J ;
LABOMBARD, B ;
LIPSCHULTZ, B ;
MARMAR, E ;
MCCRACKEN, G ;
PORKOLAB, M ;
RICE, J ;
SNIPES, J ;
TAKASE, Y ;
TERRY, J ;
WOLFE, S ;
CHRISTENSEN, C ;
GARNIER, D ;
GRAF, M ;
HSU, T ;
LUKE, T ;
MAY, M ;
NIEMCZEWSKI, A ;
TINIOS, G ;
SCHACHTER, J ;
URBAHN, J .
PHYSICS OF PLASMAS, 1994, 1 (05) :1511-1518
[18]   2-COLOR INTERFEROMETER SYSTEM FOR ALCATOR C-MOD [J].
IRBY, JH ;
MARMAR, ES ;
SEVILLANO, E ;
WOLFE, SM .
REVIEW OF SCIENTIFIC INSTRUMENTS, 1988, 59 (08) :1568-1570
[19]   1S-3P KBETA-LIKE X-RAY-SPECTRUM OF HIGHLY IONIZED IRON [J].
KLAPISCH, M ;
SCHWOB, JL ;
FRAENKEL, BS ;
OREG, J .
JOURNAL OF THE OPTICAL SOCIETY OF AMERICA, 1977, 67 (02) :148-155
[20]   PROGRAM FOR ATOMIC WAVEFUNCTION COMPUTATIONS BY PARAMETRIC POTENTIAL METHOD [J].
KLAPISCH, M .
COMPUTER PHYSICS COMMUNICATIONS, 1971, 2 (05) :239-&