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Charge Exchange Recombination Spectroscopy Based on Diagnostic Neutral Beam in HT-7 Tokamak 被引量:1

Charge Exchange Recombination Spectroscopy Based on Diagnostic Neutral Beam in HT-7 Tokamak
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摘要 Charge exchange recombination spectroscopy (CXRS) based on a diagnostic neutral beam (DNB) installed in the HT-7 tokamak is introduced. DNB can provide a 6 A extracted current at 50 kV for 0.1 s in hydrogen. It can penetrate into the core plasma in HT-7. The CXRS system is designed to observe charge exchange (CX) transitions in the visible spectrum. CX light from the beam is focused onto 10 optical fibers, which view the plasma from -5 cm to 20 cm. The CXRS system can measure the ion temperature as low as 0.1 keV. With CXRS, the local ion temperature profile in HT-7 was obtained for the first time. Charge exchange recombination spectroscopy (CXRS) based on a diagnostic neutral beam (DNB) installed in the HT-7 tokamak is introduced. DNB can provide a 6 A extracted current at 50 kV for 0.1 s in hydrogen. It can penetrate into the core plasma in HT-7. The CXRS system is designed to observe charge exchange (CX) transitions in the visible spectrum. CX light from the beam is focused onto 10 optical fibers, which view the plasma from -5 cm to 20 cm. The CXRS system can measure the ion temperature as low as 0.1 keV. With CXRS, the local ion temperature profile in HT-7 was obtained for the first time.
出处 《Plasma Science and Technology》 SCIE EI CAS CSCD 2010年第1期11-14,共4页 等离子体科学和技术(英文版)
基金 supported by the Instruments R&D Project of the Chinese Academy of Sciences (title: Active Beam Spectra Diagnostic) partially supported by National Natural Science Foundation of China (Nos. 10725523, 10975155) the U. S. Department of Energy Under Grant No. DE-FG02-03ER54729 to the University of Texas
关键词 charge exchange recombination spectroscopy diagnostic neutral beam charge exchange recombination spectroscopy, diagnostic neutral beam
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  • 1Isler R C. 1994, Plasma Phys. Control. Fusion, 36:171.
  • 2Fonck R J, Darrow D S, Jaehnig K P. 1984, Phys. Rev. A, 29:3288.
  • 3Isler R C, Murray L E. 1983, Appl. Phys. Lett., 42: 355.
  • 4Groebner R J, Brooks N H, Burrell K H, et al. 1983, Appl. Phys. Lett., 43:920.
  • 5Seraydarian R P, Burrell K H, Brooks N H, et al. 1986, Rev. Sci. Instrum., 57:155.
  • 6Boileau A, Von Hellermann M, Horton L D, et al. 1989, Plasma Phys. Control. Yhsion, 31:779.
  • 7Ida K, Hidekuma S. 1989, Rev. Sci. Instrum., 60:867.
  • 8Koide Y, Sakasai A, Sakamoto Y, et al. 2001, Rev. Sci. Instrum., 72:119.
  • 9Meister H, Kallenbach A, Peeters A G, et al. 2001, Nucl. Fusion, 41:1633.
  • 10Marmar E S, Terry J L, Rowan W L, et al. 1997, Rev. Sci. Instrum., 68:265.

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