[Table of Contents]

Plasma and Fusion Research

Volume 8, 2503024 (2013)

Overview Articles


Collisional-Radiative Modeling for Highly-Charged Ions of Tungsten
Yuri RALCHENKO
National Institute of Standards and Technology, Gaithersburg MD 20899-8422, USA
(Received 10 December 2012 / Accepted 5 February 2013 / Published 23 April 2013)

Abstract

We present an overview of the recent advances in collisional-radiative modeling of highly-charged ions of tungsten that are relevant to fusion research. The status of spectroscopic data for W ions is briefly discussed as well. Strategies and peculiarities of building models for Maxwellian fusion plasmas and non-Maxwellian plasmas of electron beam ion traps are outlined. Comparisons with the measured x-ray and extreme ultraviolet spectra are also given.


Keywords

tungsten, spectra, collisional-radiative modeling, highly-charged ion

DOI: 10.1585/pfr.8.2503024


References

  • [1] R.J. Hawryluk et al., Nucl. Fusion 49, 065012 (2009).
  • [2] T. Pütterich et al., Nucl. Fusion 50, 025012 (2010).
  • [3] C. Suzuki et al., J. Phys. B 44, 175004 (2011).
  • [4] J. Yanagibayashi et al., J. Phys. B 43, 144013 (2010).
  • [5] A.T. Graf et al., Can. J. Phys. 89, 615 (2011).
  • [6] G.S. Osborne et al., Can. J. Phys. 89, 599 (2011).
  • [7] S.B. Utter et al., Can. J. Phys. 80, 1503 (2002).
  • [8] J. Clementson et al., Can. J. Phys. 89, 571 (2011).
  • [9] Yu. Ralchenko et al., Phys. Rev. A 83, 032517 (2011).
  • [10] J.D. Gillaspy et al., Phys. Rev. A 80, 010509 (2009).
  • [11] Yu. Ralchenko et al., J. Phys. B 41, 021003 (2008).
  • [12] Yu. Ralchenko et al., Phys. Rev. A 74, 042514 (2006).
  • [13] H. Watanabe et al., Can. J. Phys. 90, 497 (2012).
  • [14] A.E. Kramida and T. Shirai, J. Phys. Chem. Ref. Data 35, 423 (2006).
  • [15] A.E. Kramida and T. Shirai, At. Data Nucl. Data Tables 95, 305 (2009); Erratum: 95, 1051 (2009).
  • [16] A.E. Kramida, Can. J. Phys. 89, 551 (2011).
  • [17] A.E. Kramida and J. Reader, At. Data Nucl. Data Tables 92, 457 (2006).
  • [18] A. Kramida, Yu. Ralchenko, J. Reader and NIST ASD Team, (2012). NIST Atomic Spectra Database (version 5.0), (Online). Available: http://physics.nist.gov/asd (Tuesday, 27-Nov-2012). National Institute of Standards and Technology, Gaithersburg, MD.
  • [19] J.D. Gillaspy, Phys. Scr. T71, 99 (2001).
  • [20] D.R. Bates, A.E. Kingston and R.W.P. McWhirter, Proc. R. Soc. Lond. 267, 297 (1962).
  • [21] O. Marchuk, Yu. Ralchenko, R.K. Janev et al., J. Phys. B 43, 011002 (2010).
  • [22] M.F. Gu, Can. J. Phys. 86, 675 (2007).
  • [23] Yu.V. Ralchenko and Y. Maron, J. Quant. Spectr. Rad. Transfer 71, 609 (2001).
  • [24] R. Neu et al., Phys. Scr. T92, 307 (2001).
  • [25] T. Pütterich et al., Plasma Phys. Control. Fusion 50, 085016 (2008).
  • [26] J. Clementson et al., Phys. Rev. A 81, 012505 (2010).
  • [27] Yu. Ralchenko, J. Phys. B 40, F175 (2007).
  • [28] R.W. Lee, J.K. Nash and Yu. Ralchenko, J. Quant. Spectr. Rad. Transfer 58, 737 (1997).
  • [29] C.J. Fontes et al., High En. Dens. Phys. 5, 15 (2009).
  • [30] Yu. Ralchenko et al., AIP Conf. Proc. 1116, 242 (2009).
  • [31] D. Post et al., At. Data Nucl. Data Tables 20, 397 (1977).

This paper may be cited as follows:

Yuri RALCHENKO, Plasma Fusion Res. 8, 2503024 (2013).