Hostname: page-component-848d4c4894-m9kch Total loading time: 0 Render date: 2024-05-21T10:48:44.442Z Has data issue: false hasContentIssue false

Acceleration of dust particles by vortex ring

Published online by Cambridge University Press:  04 June 2010

ZAHIDA EHSAN
Affiliation:
Center for Plasma Astrophysics, K. U. Leuven, Celestijnenlaan 200B, 3001 Leuven, Belgium (marsstreet@gmail.com) National Center for Physics, Quaid-i-Azam University Campus, Islamabad, Pakistan Blackett Laboratory, Imperial College London, SW72BZ, UK
N. L. TSINTSADZE
Affiliation:
E. Andronikashvili Institute of Physics, 0171Georgia
J. VRANJES
Affiliation:
Center for Plasma Astrophysics, K. U. Leuven, Celestijnenlaan 200B, 3001 Leuven, Belgium (marsstreet@gmail.com)
R. KHAN
Affiliation:
National Tokamak Fusion Program, PO Box 3329, PAEC, Islamabad, Pakistan
S. POEDTS
Affiliation:
Center for Plasma Astrophysics, K. U. Leuven, Celestijnenlaan 200B, 3001 Leuven, Belgium (marsstreet@gmail.com)

Abstract

It is shown that nonlinear interaction between large amplitude circularly polarized EM wave and dusty plasma leads to a non-stationary ponderomotive force, which in turn produces a vortex ring and magnetic field. Then the ensuing vortex ring in the direction of propagation of the pump wave can accelerate the micron-size dust particles, which are initially at rest and eventually form a non-relativistic dust jet. This effect is purely non-stationary and unlike linear vortices, dust particles do not rotate here. Specifically, it is pointed out that the vortex ring or closed filament can become potential candidate for the acceleration of dust in tokamak plasmas.

Type
Papers
Copyright
Copyright © Cambridge University Press 2010

Access options

Get access to the full version of this content by using one of the access options below. (Log in options will check for institutional or personal access. Content may require purchase if you do not have access.)

References

[1]Akhiezer, I. A., Daneliya, L. D. and Tsintsadze, N. L. 1964 Sov. Phys. JETP 19, 208.Google Scholar
[2]Zakharov, V. 1972 Sov. Phys. JETP 35, 908.Google Scholar
[3]Tsintsadze, N. L. 1974 Phys. Lett. 50A, 33.CrossRefGoogle Scholar
[4]Karpman, V. I. and Washimi, H. 1976 Sov. Phys. JETP 44, 528.Google Scholar
[5]Berezhiani, V. I., Tsintsadze, N. L. and Tskhakaya, D. D. 1980 J. Plasma. Phys. 24, 15.CrossRefGoogle Scholar
[6]Tsintasdze, N. L. and Watanabe, M. 1980 Sov. J. Plasma Phys. 6, 6.Google Scholar
[7]Tsintsadze, N. L., Mima, K., Tsintsadze, L. N. and Nishikawa, K. 2002 Phys. Plasmas. 9, 4270.Google Scholar
[8]Freund, H. P., Liu, C. S. and Kulsrud, R. M. 1981 J. Plasma Phys. 25, 465.Google Scholar
[9]Stamper, J. A. 1992 Las. Part. Beams 9, 841.Google Scholar
[10]Tsintsadze, L. N., Callebaut, D. K. and Tsintsadze, N. L. 1996 J. Plasma Phys. 55, 407.CrossRefGoogle Scholar
[11]Sudan, R. N. 1993 Phys. Rev. Lett. 70, 3075; Askaryan, G. A., Bulanov, S. V., Pegoraro, F. and Pukhov, A. M. 1994 Sov. Phys. JETP 60, 251; Gorbunov, L. M., Mora, P. and Antonsen, T. M. 1996 Phys. Rev. Lett. 76, 2945.CrossRefGoogle Scholar
[12]Borghesi, M., MacKinnon, A. J., Bell, A. R., Gaillard, R. and Willi, O. 1998 Phys. Rev. Lett. 81, 112.Google Scholar
[13]Wilks, S. C., Kruer, W. L., Tabak, M. and Langdon, A. B. 1992 Phys. Rev. Lett. 69, 1383.Google Scholar
[14]Tsintsadze, L. N., Mima, K. and Nishikawa, K. 1998 Plasma Phys. Controlled Fusion 40, 1933.CrossRefGoogle Scholar
[15]Tsintsadze, L. N., Nishikawa, K., Tajima, T. and Mendonca, J. T. 1999 Phys. Rev. E 60, 7435.Google Scholar
[16]Tsintsadze, N. L., Pajouh, H. H., Tsintsadze, L. N., Mendonca, J. T. and Shukla, P. K. 2000 Phys. Plasmas 7, 2348.Google Scholar
[17]Vranjes, J., Saleem, H. and Poedts, S. 2007 Phys. Plasmas 14, 034504.Google Scholar
[18]Nakamura, T. and Mima, K. 2008 Phys. Rev. Lett. 100, 205006.Google Scholar
[19]Tatarakis, M., Watts, I., Beg, F. N., Clark, E. L., Dangor, A. E., Gopal, A., Haines, M. G., Norreys, P. A., Wagner, U., Wei, M. S., Zepf, M. and Krushelnick, K. 2002 Nature (London) 415, 280; Wagner, U., Tatarakis, M., Gopal, A., Beg, F. N., Clark, E. L., Dangor, A. E., Evans, R. G., Haines, M. G., Mangles, S. P. D., Norreys, P. A., Wei, M. S., Zepf, M. and Krushelnick, K. 2004 Phys. Rev. E 70, 026401.CrossRefGoogle Scholar
[20]Kolb, E. W. and Turner, M. S. 1994 The Early Universe. Reading, MA: Addison-Wesley.Google Scholar
[21]Ryu, D., Kang, H., Cho, J. and Das, H. 2008 Science 320, 909.CrossRefGoogle Scholar
[22]Widrow, L. M. 2002 Rev. Mod. Phys. 74, 775.Google Scholar
[23]Kulsrud, R. M. and Zweibel, E. G. 2008 Rep. Prog. Phys. 71, 046901.Google Scholar
[24]Bernet, M. L., Miniati, F., Lilly, S. J., Kronberg, P. P. and Dessauges-Zavadsky, M. 2008 Nature (London) 454, 302.CrossRefGoogle Scholar
[25]Bobin, J. L. 1983 Phys. Rep. 122, 173.Google Scholar
[26]Hatchett, S. P., Brown, C. G., Cowan, T. E., Henry, E. A., Johnson, J. S., Key, M. H., Jeffrey, Koch A., Langdon, A. B., Lasinski, B. F., Lee, R. W., Mackinnon, A. J., Pennington, D. M., Perry, M. D., Phillips, T. W., Sangster, M. C., Singh, M. S., Snavely, R. A., Stoyer, M. A., Wilks, S. C. and Yasuike, K. 2000 Phys. Plasmas 7, 2076.Google Scholar
[27]Snavely, R. A., Key, M. H., Hatchett, S. P., Cowan, T. E., Roth, M., Phillips, T. W., Stoyer, M. A., Henry, E. A., Sangster, T. C., Singh, M. S., Wilks, S. C., MacKinnon, A., Offenberger, A., Pennington, D. M., Yasuike, K., Langdon, A. B., Lasinski, B. F., Johnson, J., Perry, M. D. and Campbell, E. M. 2000 Phys. Rev. Lett. 85, 2945.CrossRefGoogle Scholar
[28]Wilks, S. C., Kruer, W. L., Tabak, M. and Langdon, A. B. 1992 Phys. Rev. Lett. 69, 1383.CrossRefGoogle Scholar
[29]Narihara, K. 2001 Nucl. Fusion 41 1967.Google Scholar
[30]Rudakov, D. L., West, W. P., Wong, C. P. C., Brooks, N. H., Evans, T. E., Fenstermacher, M. E., Groth, M., Krasheninnikov, S. I., Lasnier, C. J., McLean, A. G., Pigarov, A. Y., Solomon, W. M., Antar, G. Y., Boedo, J. A., Doerner, R. P., Hollmann, E. M., Hyatt, A. W., Moyer, R. A. and Watkins, J. G. 2007 J. Nucl. Matter. 227, 363.Google Scholar
[31]Castaldo, C., Ratynskaia, S., Pericoli, V., de Angelis, U., Rypdal, K., Pieroni, L., Giovannozzi, E., Maddaluno, G., Marmolino, C., Rufoloni, A., Tuccillo, A., Kretschmer, M. and Morfill, G. E. 2007 Nucl. Fusion 47, L5L9.CrossRefGoogle Scholar
[32]Ratynskaia, S. 2008 Nucl. Fusion 48, 015006.Google Scholar
[33]de Angelis, U., Marmolino, C. and Tsytovich, V. 2005 Phys. Rev. Lett. 95, 095003.CrossRefGoogle Scholar
[34]de Angelis, U., Ivlev, A., Tsytovich, V. and Morfill, G. 2005 Phys. Plasmas 12, 052301.Google Scholar
[35]Shukla, P. K. and Tsintsadze, N. L. 2008 Phys. Lett. A 372, 2053.Google Scholar
[36]Ehsan, Z., Tsintsadze, N. L., Murtaza, G. and Shah, H. A. 2009 Phys. Plasmas 16, 023702.CrossRefGoogle Scholar
[37]Ehsan, Z., Tsintsadze, N. L., Vranjes, J. and Poedts, S. 2009 Phys. Plasmas 16, 053702.Google Scholar
[38]Tsintsadze, N. L., Ehsan, Z., Shah, H. A. and Murtaza, G. 2006 Phys. Plasmas 13, 072103; 2006 In: Proceedings of the Second International Symposium on Unconventional Plasmas (ed. Callebaut, D. K.). Eindhoven: Netherlands, Eindhoven, 2006, vol. 161.CrossRefGoogle Scholar
[39]Saffman, P. G. 1995 Vortex Dynamics. Cambridge: Cambridge University Press.Google Scholar