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Dive into the research topics where A. A. Shoshin is active.

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Featured researches published by A. A. Shoshin.


Fusion Science and Technology | 2009

STATUS AND PROSPECTS OF GOL-3 MULTIPLE-MIRROR TRAP

A. V. Burdakov; A. V. Arzhannikov; V. T. Astrelin; V.I. Batkin; V. S. Burmasov; G. E. Derevyankin; V. G. Ivanenko; I. A. Ivanov; M. V. Ivantsivskiy; I. V. Kandaurov; V. V. Konyukhov; K. N. Kuklin; Sergei A. Kuznetsov; A. Makarov; M. A. Makarov; K. I. Mekler; S. V. Polosatkin; S. S. Popov; V. Postupaeva; A. F. Rovenskikh; A. A. Shoshin; S. L. Sinitsky; V. D. Stepanov; Yu. S. Sulyaev; Yu. A. Trunev; L. N. Vyacheslavov; Zubairov

Abstract The paper reviews recent experimental results from GOL-3. Currently efforts are focused on further development of a physical database for multiple-mirror confinement systems and also on an upgrade of plasma heating systems of GOL-3 device. In general, current GOL-3 parameters demonstrate good prospects of a multiple-mirror trap as a fusion reactor.


Fusion Science and Technology | 2007

Plasma Heating and Confinement in GOL-3 Multi Mirror Trap

A. V. Burdakov; A. Azhannikov; V. T. Astrelin; A. D. Beklemishev; V. S. Burmasov; G. E. Derevyankin; V. G. Ivanenko; I. A. Ivanov; M. V. Ivantsivsky; I. V. Kandaurov; V. V. Konyukhov; I. Kotelnikov; V. Kovenya; T. Kozlinskaya; K. N. Kuklin; A. S. Kuznetsov; Sergei A. Kuznetsov; K. Lotov; I. V. Timofeev; A. Makarov; K. I. Mekler; V. S. Nikolaev; S. S. Popov; V. V. Postupaev; S. V. Polosatkin; A. F. Rovenskikh; A. A. Shoshin; I. Shvab; S. L. Sinitsky; Yu. S. Sulyaev

Recent results of the experiments at GOL-3 facility are presented. In present configuration of the device, plasma with a density of 1014[divided by]1016 cm-3 is confined in a 12-meter-long solenoid, which comprises 55 corrugation cells with mirror ratio Bmax/Bmin=4.8/3.2 T. The plasma in the solenoid is heated up to 2-4 keV temperature by a high power relativistic electron beam (˜1 MeV, ˜30 kA, ˜8 μs, ˜120 kJ) injected through one of the ends. Mechanism of experimentally observed fast ion heating, issues of plasma stability and confinement are discussed.


Plasma Physics Reports | 2005

Study of the mechanism for fast ion heating in the GOL-3 multimirror magnetic confinement system

A. V. Arzhannikov; V. T. Astrelin; A. V. Burdakov; I. A. Ivanov; V. S. Koidan; Sergei A. Kuznetsov; K. I. Mekler; S. V. Polosatkin; V. V. Postupaev; A. F. Rovenskikh; S. L. Sinitskii; Yu. S. Sulyaev; A. A. Shoshin

Results are presented from experimental studies of ion heating in the GOL-3 device. The experiments were carried out in a multimirror configuration with a local magnetic well. It was found that, during the injection of a relativistic electron beam, a decrease in the local density of the beam in a magnetic well, which is proportional to the decrease in the strength of the longitudinal magnetic field, results in the formation of a short plasma region with a low electron temperature. The measured longitudinal gradient of the plasma pressure corresponds to an electron temperature gradient of ∼2–3 keV/m. Axially nonuniform heating of the plasma electrons gives rise to the macroscopic motion of the plasma along the magnetic field in each cell of the multimirror confinement system. The mixing of the counterpropagating plasma flows inside each cell leads to fast ion heating. Under the given experimental conditions, the efficiency of this heating mechanism is higher than that due to binary electron-ion collisions. The collision and mixing of the counterpropagating plasma flows is accompanied by a neutron and γ-ray burst. The measured ratio of the plasma pressure to the vacuum magnetic field pressure in these experiments reaches 0.2.


Fusion Science and Technology | 2005

Progress on the Multimirror Trap GOL-3

V. S. Koidan; A. V. Arzhannikov; V. T. Astrelin; A. V. Burdakov; G. E. Derevyankin; V. G. Ivanenko; I. A. Ivanov; M. V. Ivantsivsky; V. V. Konyukhov; Sergei A. Kuznetsov; A. Makarov; K. I. Mekler; V. S. Nikolaev; S. V. Polosatkin; V. V. Postupaev; A. F. Rovenskikh; A. A. Shoshin; S. L. Sinitsky; Yu. S. Sulyaev; E. R. Zubairov

Main results of researches on plasma heating and confinement of dense plasma in the multimirror trap GOL-3 are presented. Recently magnetic system of the facility was converted into completely multimirror one. This results in further improvement of energy confinement time of plasma with ion temperature ~1 keV. Collective plasma heating by ~120 kJ (~8 ɷs) relativistic electron beam results in Te ~ 2 keV at ~1021 m-3 density. High Te exists for ~10 μs. To this time Ti reaches ~2 keV. Ion temperature keeps at the high level during ~1 ms. The energy confinement time sufficiently increases and a value of nτE = (1.5 [divide] 3)·1018 m-3s.


Fusion Science and Technology | 2011

Experiments with “Thin” Electron Beam at GOL-3

V. V. Postupaev; A. V. Arzhannikov; V. T. Astrelin; V.I. Batkin; A. V. Burdakov; V. S. Burmasov; I. A. Ivanov; M. V. Ivantsivsky; K. N. Kuklin; Sergei A. Kuznetsov; M. A. Makarov; K. I. Mekler; S. V. Polosatkin; S. S. Popov; A. F. Rovenskikh; A. A. Shoshin; S. L. Sinitsky; V. F. Sklyarov; N. V. Sorokina; A. V. Sudnikov; Yu. S. Sulyaev; L. N. Vyacheslavov

Abstract The latest experimental campaign at the GOL-3 multiple-mirror trap was mainly aimed at features of heating and stability of the electron-beam-heated turbulent plasma. The discussed experiments feature a reduced-cross-section electron beam with the current decreased down to 1 ÷ 1.5 kA at the current density of ~1 kA/cm2 (the same as in the “full-scale” experiments). The hot plasma cross-section decreased correspondingly. Lowered current of the electron beam became less than the critical vacuum current. This gives the possibility to make a direct comparison of regimes with the beam injection into a neutral or a preliminary ionized deuterium. New experimental results will be presented on the beam relaxation in the plasma and on heating and stability of the reduced-cross-section plasma with low central safety factor q(0) ~ 0.3. Stabilization of some MHD modes by a controlled coupling of the plasma with an exit receiver plate was demonstrated.


OPEN MAGNETIC SYSTEMS FOR PLASMA CONFINEMENT (OS2016): Proceedings of the 11th International Conference on Open Magnetic Systems for Plasma Confinement | 2016

Heating of tungsten target by intense pulse electron beam

Yu. A. Trunev; A. S. Arakcheev; A. V. Burdakov; I. V. Kandaurov; A. A. Kasatov; V. V. Kurkuchekov; K. I. Mekler; V.A. Popov; A. A. Shoshin; D. I. Skovorodin; A.A. Vasilyev; L. N. Vyacheslavov

A test facility for experimental simulation of transient heat loads in ITER divertor with the use of high power electron beam is developed at the Budker Institute of Nuclear Physics. This report presents an experimental study of the absorption of the electron beam with an incident heat power flux of 10-50 GW/m2 on the area of about 2 cm2 of a tungsten target. The electron beam has duration of 0.1-0.3 ms and electron energy of 80-95 keV, Diagnostics for measuring of the beam parameters on the target are briefly discussed. Results of measurement of the beam profile and calorimetry of beam energy deposited in tungsten sample at ELM-like heat load are presented.


Fusion Science and Technology | 2013

Development of Extended Heating Pulse Operation Mode at GOL-3

A. V. Burdakov; A. P. Avrorov; A. V. Arzhannikov; V. T. Astrelin; V.I. Batkin; A. D. Beklemishev; V. S. Burmasov; P. V. Bykov; G. E. Derevyankin; V. G. Ivanenko; I. A. Ivanov; M. V. Ivantsivsky; I. V. Kandaurov; A. A. Kasatov; Sergei A. Kuznetsov; V. V. Kurkuchekov; K. N. Kuklin; K. I. Mekler; S. V. Polosatkin; S. S. Popov; V. V. Postupaev; A. F. Rovenskikh; A. A. Shoshin; S. L. Sinitsky; V. F. Sklyarov; N. V. Sorokina; V. D. Stepanov; A. V. Sudnikov; Yu. S. Sulyaev; I. V. Timofeev

Novel technology of electron beam generation for plasma heating in GOL-3 was developed and for the first time used in the experiment. The distinctive features of the new beam are non-relativistic energy, medium power and sub-ms duration. The experiments were done at the following beam and plasma parameters: ~100 keV, ~10 MW, >100 μs, ~1020 m-3. The beam was safely transported through the 13-m-long deuterium-filled multiple-mirror solenoid. The plasma was created and then heated by the beam. Main physical task for the reported experiments was to reach quasi-stationary plasma conditions during the long-pulse beam injection.


Fusion Science and Technology | 2011

Plasma-Surface Interaction During ITER Type 1 ELMs: Comparison of Simulation with QSPA KH-50 and the GOL-3 Facilities

A. A. Shoshin; A. V. Arzhannikov; A. V. Burdakov; V.V. Chebotarev; I.E. Garkusha; I. A. Ivanov; K. N. Kuklin; M. A. Makarov; V.A. Makhlaj; A.K. Marchenko; K. I. Mekler; A. F. Rovenskikh; S. V. Polosatkin; V. V. Postupaev; S. L. Sinitsky; V.I. Tereshin

Abstract The paper presents experimental investigations of plasma-surface interaction and materials behavior under plasma loads relevant to type I ITER ELMs. The experiments were performed with quasi-stationary plasma accelerator QSPA Kh-50 and multi-mirror trap GOL-3 devices located in Kharkov (Ukraine) and Novosibirsk (Russia) respectively. QSPA generated repetitive plasma streams of duration 0.25 ms and the energy density up to 2.5 MJ/m2. In GOL-3 multi-mirror trap plasma was heated up to temperature of 2-4 keV by a high power relativistic electron beam. Energy density in the exhaust plasma stream vary from 0.5 to 30 MJ/m2. Surface patterns of the targets exposed by QSPA and GOL-3 plasma are analyzed. Cracking, development of tungsten surface morphology and droplets splashing are discussed. It is shown that under an applied energy density loads (>1 MJ/m2) the evolution of surface morphology due to plasma irradiation are similar for two devices in spite of the qualitative differences of particles energy of the impact plasma streams. Formation of three different crack networks with typical cell sizes of 1000, 10 and 0.3 μm are identified after irradiation of tungsten surface. Experiments show that major cracks (cell size of 1000 μm) are attributed to a ductile-to-brittle transition. The key role of heat loads magnitude on development of surface due to powerful plasma impacts is demonstrated.


OPEN MAGNETIC SYSTEMS FOR PLASMA CONFINEMENT (OS2016): Proceedings of the 11th International Conference on Open Magnetic Systems for Plasma Confinement | 2016

Observation of dust particles ejected from tungsten surface under impact of intense transient heat load

A. A. Kasatov; A. S. Arakcheev; A. V. Burdakov; I. V. Kandaurov; V. V. Kurkuchekov; V.A. Popov; A. A. Shoshin; D. I. Skovorodin; Yu. A. Trunev; A.A. Vasilyev; L. N. Vyacheslavov

A test facility for experimental simulation of transient heat load expected for ELMs type I events in ITER is developed at BINP SB RAS. Dynamics of tungsten particles in the ablation plume is investigated by small-angle light scattering technique and using fast CCD and ICCD cameras. The threshold of intense particle generation, sizes and velocities of particles ejected from the surface are estimated.


Fusion Science and Technology | 2009

DYNAMICS OF ELECTRON DISTRIBUTION FUNCTION IN MULTIPLE MIRROR TRAP GOL-3

V. V. Postupaev; A. V. Arzhannikov; V. T. Astrelin; A. V. Burdakov; V. S. Burmasov; I. A. Ivanov; M. V. Ivantsivsky; K. N. Kuklin; K. I. Mekler; S. V. Polosatkin; S. S. Popov; A. F. Rovenskikh; A. A. Shoshin; S. L. Sinitsky; Yu. S. Sulyaev; L. N. Vyacheslavov

Abstract Electron distribution function in experiments with intensive beam-plasma interaction is usually non-Maxwellian with high-energy tail. Details of such distribution function can clarify physics of the beam-plasma interaction process. The paper presents new experimental data from Thomson scattering measurements at GOL-3.

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A. V. Burdakov

Budker Institute of Nuclear Physics

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K. I. Mekler

Budker Institute of Nuclear Physics

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S. V. Polosatkin

Budker Institute of Nuclear Physics

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A. F. Rovenskikh

Budker Institute of Nuclear Physics

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I. A. Ivanov

Budker Institute of Nuclear Physics

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V. V. Postupaev

Budker Institute of Nuclear Physics

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S. L. Sinitsky

Budker Institute of Nuclear Physics

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A. V. Arzhannikov

Budker Institute of Nuclear Physics

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V. T. Astrelin

Budker Institute of Nuclear Physics

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Yu. S. Sulyaev

Budker Institute of Nuclear Physics

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