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Role of Radio Frequency and Microwaves in Magnetic Fusion Plasma Research

  • Park, Hyeon K. (National Fusion Research Institute)
  • Received : 2017.09.29
  • Accepted : 2017.10.17
  • Published : 2017.10.31

Abstract

The role of electromagnetic (EM) waves in magnetic fusion plasma-ranging from radio frequency (RF) to microwaves-has been extremely important, and understanding of EM wave propagation and related technology in this field has significantly advanced magnetic fusion plasma research. Auxiliary heating and current drive systems, aided by various forms of high-power RF and microwave sources, have contributed to achieving the required steady-state operation of plasmas with high temperatures (i.e., up to approximately 10 keV; 1 eV=10000 K) that are suitable for future fusion reactors. Here, various resonance values and cut-off characteristics of wave propagation in plasmas with a nonuniform magnetic field are used to optimize the efficiency of heating and current drive systems. In diagnostic applications, passive emissions and active sources in this frequency range are used to measure plasma parameters and dynamics; in particular, measurements of electron cyclotron emissions (ECEs) provide profile information regarding electron temperature. Recent developments in state-of-the-art 2D microwave imaging systems that measure fluctuations in electron temperature and density are largely based on ECE. The scattering process, phase delays, reflection/diffraction, and the polarization of actively launched EM waves provide us with the physics of magnetohydrodynamic instabilities and transport physics.

Keywords

References

  1. T. H. Stix, Waves in Plasmas. New York, NY: AIP Press, 1992.
  2. J. Adam, "Review of tokamak plasma heating by wave damping in the ion cyclotron range of frequency," Plasma Physics and Controlled Fusion, vol. 29, no. 4, pp. 443-472, 1987. https://doi.org/10.1088/0741-3335/29/4/001
  3. A. C. Riviere, "A review of ECRH experiments," Plasma Physics and Controlled Fusion, vol. 28, no. 9A, pp. 1263-1276, 1986. https://doi.org/10.1088/0741-3335/28/9A/006
  4. M. R. de Baar, M. N. A. Beurskens, G. M. D. Hogeweij, and N. J. Lopes Cardozo, "Tokamak plasmas with dominant electron cyclotron heating; evidence for electron thermal transport barriers," Physics of Plasma, vol. 6, no. 12, pp. 4645-4657, 1999. https://doi.org/10.1063/1.873751
  5. I. H. Hutchinson, Principles of Plasma Diagnostics. New York, NY: Cambridge University Press, 2009.
  6. H. Park, E. Mazzucato, T. Munsat, C. W. Domier, M. Johnson, N. C. Luhmann et al., "Simultaneous microwave imaging system for density and temperature fluctuation measurements on TEXTOR (invited)," Review of Scientific Instruments, vol. 75, no. 10, pp. 3787-3792, 2004. https://doi.org/10.1063/1.1794864
  7. R. J. Hawryluk, "Review of D-T experiments relevant to burning plasma issues," Journal of Plasma and Fusion Research Series, vol. 5, pp. 12-21, 2002.
  8. J. Jacquinot, V. P. Bhatnagar, J. G. Cordey, L. D. Horton, D. F. H. Start, R. Barnsley et al., "Overview of ITER physics deuterium-tritium experiments in JET," Nuclear Fusion, vol. 39, no. 2, pp. 235-254, 1999. https://doi.org/10.1088/0029-5515/39/2/307
  9. K. Tobita, "Latest plasma performance and experiments on JT-60U," Plasma Physics and Controlled Fusion, vol. 41, no. 3A, pp. 333-344, 1999. https://doi.org/10.1088/0741-3335/41/3A/027
  10. M. Kwon, Y. K. Oh, H. L. Yang, H. K. Na, Y. S. Kim, J. G. Kwak et al., "Overview of KSTAR initial operation," Nuclear Fusion, vol. 51, no. 9, article no. 094006, 2011.
  11. J. G. Kwak, Y. K. Oh, H. L. Yang, K. R. Park, Y. S. Kim, W. C. Kim et al., "An overview of KSTAR results," Nuclear Fusion, vol. 53, no. 10, article no. 104005, 2013.
  12. Y. In, J. K. Park, J. M. Jeon, J. Kim, and M. Okabayashi, "Extremely low intrinsic non-axisymmetric field in KSTAR and its implications," Nuclear Fusion, vol. 55, no. 4, article no. 043004, 2015.
  13. G. S. Yun, W. Lee, M. J. Choi, J. B. Kim, H. K. Park, C. W. Domier et al., "Development of KSTAR ECE imaging system for measurement of temperature fluctuations and edge density fluctuations," Review of Scientific Instruments, vol. 81, no. 10, article no. 10D930, 2010.
  14. W. Lee, J. Leem, J. A. Lee, Y. B. Nam, M. Kim, G. S. Yun et al., "Microwave imaging reflectometry for density fluctuation measurement on KSTAR," Nuclear Fusion, vol. 54, no. 2, article no. 023012, 2014.
  15. R. Nazikian, G. J. Kramer, and E. Valeo, "A tutorial on the basic principles of microwave reflectometry applied to fluctuation measurements in fusion plasmas," Physics of Plasmas, vol. 8, no. 5, pp. 1840-1855, 2001. https://doi.org/10.1063/1.1362534
  16. D. R. Smith, E. Mazzucato, T. Munsat, H. Park, D. Johnson, L. Lin, C. W. Domier, M. Johnson, and N. C. Luhmann, "Microwave scattering system design for electron scale turbulence measurements on NSTX," Review of Scientific Instruments, vol. 75, no. 10, pp. 3840-3842, 2004. https://doi.org/10.1063/1.1788851
  17. H. K. Park, C. W. Domier, W. R. Geck, and N. C. Luhmann, "Far infrared tangential interferometry/polarimetry on the National Spherical Tokamak Experiment," Review of Scientific Instruments, vol. 70, no. 1, pp. 710-713, 1999. https://doi.org/10.1063/1.1149364
  18. N. Bertelli, E. F. Jaeger, J. C. Hosea, C. K. Phillips, L. Berry, P. T. Bonoli et al., "Full wave simulations of fast wave efficiency and power losses in the scrape-off layer of tokamak plasmas in mid/high harmonic and minority heating regimes," Nuclear Fusion, vol. 56, no. 1, article no. 016019, 2016.
  19. S. J. Wang, J. Kim, J. H. Jeong, H. J. Kim, M. Joung, Y. S. Bae, and J. G Kwak, "Recent experimental results of KSTAR RF heating and current drive," AIP Conference Proceedings, vol. 1689, no. 1, article no. 030014, 2015.

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