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1988

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April

  

Reviews of topical problems


Open-ended traps

The open-ended trap is one of the installations used for the magnetic confinement of thermonuclear plasma. Open-ended traps have a number of important advantages as compared with other confinement systems: they are attractive from the engineering point of view, their magnetic field is efficiently used to confine the plasma, they can be operated under steady-state conditions, and there is no particular problem with removing thermonuclear reaction products and heavy impurities from the plasma. At the same time, it has long been considered that the open-ended trap has a doubtful future as a basis for a thermonuclear reactor because of the relatively high rate of loss of plasma along the magnetic lines of force. The situation has changed for the better during the last decade, and a number of improved traps, that are largely free from this defect, has been proposed. This review examines the physical principles of open-ended traps (ambipolar, centrifugal, multimirror, gas-dynamic, and so on), the present state of research into these systems, and their future prospects. The use of open-ended traps as high-flux generators of 14-MeV neutrons is also discussed.

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Fulltext is also available at DOI: 10.1070/PU1988v031n04ABEH005747
PACS: 52.55.Jd, 52.55.Lf, 52.35.Py, 52.25.Vy, 28.52.−s (all)
DOI: 10.1070/PU1988v031n04ABEH005747
URL: https://ufn.ru/en/articles/1988/4/b/
Citation: Ryutov D D "Open-ended traps" Sov. Phys. Usp. 31 300–327 (1988)
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Оригинал: Рютов Д Д «Открытые ловушки» УФН 154 565–614 (1988); DOI: 10.3367/UFNr.0154.198804b.0565

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  3. Rubin T, Rax J M, Fisch N J J. Plasma Phys. 89 (6) (2023)
  4. Matveev A I Russ Phys J 65 1564 (2023)
  5. Skovorodin D I, Chernoshtanov I S et al Plasma Phys. Rep. 49 1039 (2023)
  6. Skovorodin D I, Chernoshtanov I S et al Fizika Plazmy 49 831 (2023)
  7. Chapurin O, Jimenez M et al 30 (11) (2023)
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  10. Golubev S V, Skalyga V A et al Plasma Phys. Rep. 48 200 (2022)
  11. Shalashov A G, Gospodchikov E D, Khusainov T A Plasma Phys. Rep. 48 1125 (2022)
  12. Sudnikov A V, Ivanov I A et al J. Plasma Phys. 88 (6) (2022)
  13. Kumar A, Caneses M Ju F Plasma Phys. Control. Fusion 64 035012 (2022)
  14. Sudnikov A V, Ivanov I A et al J. Plasma Phys. 88 (1) (2022)
  15. Golubev S, Skalyga V et al Prikl. Fiz. (4) 12 (2021)
  16. Aksyonov D S, Vasyliev V V et al 145 (2021)
  17. Ågren O, Moiseenko V E Fusion Engineering And Design 161 111943 (2020)
  18. Kafle N, Caneses M Ju F et al IEEE Trans. Plasma Sci. 48 1396 (2020)
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  22. Omarov O A, Omarova N O et al J. Phys.: Conf. Ser. 1383 012019 (2019)
  23. Bagryansky P A, Beklemishev A D, Postupaev V V J Fusion Energ 38 162 (2019)
  24. Abramov I S, Gospodchikov E D et al Nucl. Fusion 59 106004 (2019)
  25. Burdakov A V, Postupaev V V Uspekhi Fizicheskikh Nauk 188 651 (2018)
  26. Mansfeld D A, Vodopyanov A V et al Plasma Phys. Control. Fusion 60 115005 (2018)
  27. Yi H, Liu M et al 89 (4) (2018)
  28. Hyde A, Bushmelov M, Batishchev O Journal Of Magnetism And Magnetic Materials 449 197 (2018)
  29. Zeng Q, Chen D, Wang M Nucl. Fusion 57 126059 (2017)
  30. Ågren O, Moiseenko V E Plasma Phys. Control. Fusion 59 115001 (2017)
  31. Ryutov D D, Yushmanov P N et al (AIP Conference Proceedings) Vol. 1721 (2016) p. 060003
  32. Fowler T K, Moir R W, Simonen T C (AIP Conference Proceedings) Vol. 1771 (2016) p. 080003
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  35. Zhang Q, Shi P et al Fusion Science And Technology 68 50 (2015)
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  37. Mironov V, Bogomolov S et al Phys. Rev. ST Accel. Beams 18 (12) (2015)
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  41. Ivanov A A, Prikhodko V V Plasma Phys. Control. Fusion 55 063001 (2013)
  42. Vildjunas M I, Kornev V A et al Tech. Phys. Lett. 39 1019 (2013)
  43. Chirkov A Yu, Ryzhkov S V J Fusion Energ 31 7 (2012)
  44. Skovorodin D I, Beklemishev A D Plasma Phys. Rep. 38 202 (2012)
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  46. Fetterman A J, Fisch N J IEEE Trans. Plasma Sci. 39 2948 (2011)
  47. Ivanov A A Fusion Science And Technology 59 17 (2011)
  48. Ryutov D D, Berk H L et al 18 (9) (2011)
  49. Arsenin V V, Terekhin P N Plasma Phys. Rep. 37 723 (2011)
  50. Fetterman A J, Fisch N J Fusion Science And Technology 59 136 (2011)
  51. Tsventoukh M M Nucl. Fusion 51 112002 (2011)
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  54. Kuteev B V, Goncharov P R et al Plasma Phys. Rep. 36 281 (2010)
  55. Burdakov A V, Ivanov A A, Kruglyakov E P Plasma Phys. Control. Fusion 52 124026 (2010)
  56. Simonen T C Fusion Science And Technology 57 305 (2010)
  57. Teodorescu C, Young W C et al Phys. Rev. Lett. 105 (8) (2010)
  58. Fetterman A J, Fisch N J 17 (4) (2010)
  59. Fetterman A J, Fisch N J 17 (11) (2010)
  60. Burdakov A, Arzhannikov A et al Fusion Science And Technology 55 63 (2009)
  61. Arsenin V V, Terekhin P N Plasma Phys. Rep. 35 995 (2009)
  62. Burdakov A, Azhannikov A et al Fusion Science And Technology 51 106 (2007)
  63. Girka V O, Girka I O Plasma Phys. Rep. 32 1047 (2006)
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  65. Koidan V S, Arzhannikov A V et al Fusion Science And Technology 47 35 (2005)
  66. Ryutov D D Fusion Science And Technology 47 148 (2005)
  67. Burdakov A V, England A C et al Fusion Science And Technology 47 333 (2005)
  68. Belyaev N R, Girka I O, Gritsyna V T Plasma Phys. Rep. 29 399 (2003)
  69. Arsenin V V, Kuyanov A Yu Plasma Phys. Rep. 27 635 (2001)
  70. Girka I O Contrib. Plasma Phys. 41 33 (2001)
  71. Katanuma I, Tatematsu Y et al J. Phys. Soc. Jpn. 69 3244 (2000)
  72. Vol. MMET Conference Proceedings. 1998 International Conference on Mathematical Methods in Electromagnetic Theory. MMET 98 (Cat. No.98EX114)Structure Of The Local Alfven Resonance In Cylindrical Plasmas Placed Into Rippled Magnetic FieldI.GirkaV.Lapshin2 (1998) p. 713
  73. Girka I, Lapshin V MMET Conference Proceedings. 1998 International Conference on Mathematical Methods in Electromagnetic Theory. MMET 98 (Cat. No.98EX114), (1998) p. 710
  74. Gavrilyuk A P, Krasnov I V, Shaparev N Ya Russ Phys J 40 85 (1997)
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  78. Alekseev P N, Ignat’ev V V et al At Energy 79 733 (1995)
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