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

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Featured researches published by A. Sorokin.


Review of Scientific Instruments | 2010

Characterization of 1 MW, 40 keV, 1 s neutral beam for plasma heating

A. Sorokin; V. P. Belov; V. I. Davydenko; P. P. Deichuli; A. A. Ivanov; A. Podyminogin; I. V. Shikhovtsev; G. I. Shulzhenko; N. V. Stupishin; M.A. Tiunov

Neutral beam with geometrical focusing for plasma heating in moderate-size plasma devices has been developed in Budker Institute of Nuclear Physics, Novosibirsk. When operated with hydrogen, the neutral beam power is 1 MW, pulse duration is 1 s, beam energy is 40 keV, and angular divergence is 1.2 degrees. Initial ion beam is extracted and accelerated by triode multiapertures ion-optical system. To produce 1 MW neutral beam, about 40 A proton current is extracted with nominal current density of 320 mA/cm(2). Ion-optical system has 200 mm diameter grids with 44% transparency. The grids have inertia cooling and heat is removed between the pulses by water flowing in channels placed on periphery of the grids. A plasma emitter for ion extraction is produced by rf-plasma box. Ion species mix of rf plasma source amounts to 70%, 20%, and 10% of H(+), H(2)(+), and H(3)(+) ions, respectively, by current. Heavy impurities contribute less than 0.3%.


Review of Scientific Instruments | 2015

Low energy, high power hydrogen neutral beam for plasma heating

P. P. Deichuli; V. I. Davydenko; A. A. Ivanov; S. Korepanov; V. V. Mishagin; A. Smirnov; A. Sorokin; N. V. Stupishin

A high power, relatively low energy neutral beam injector was developed to upgrade of the neutral beam system of the gas dynamic trap device and C2-U experiment. The ion source of the injector produces a proton beam with the particle energy of 15 keV, current of up to 175 A, and pulse duration of a few milliseconds. The plasma emitter of the ion source is produced by superimposing highly ionized plasma jets from an array of four arc-discharge plasma generators. A multipole magnetic field produced with permanent magnets at the periphery of the plasma box is used to increase the efficiency and improve the uniformity of the plasma emitter. Multi-slit grids with 48% transparency are fabricated from bronze plates, which are spherically shaped to provide geometrical beam focusing. The focal length of the Ion Optical System (IOS) is 3.5 m and the initial beam diameter is 34 cm. The IOS geometry and grid potentials were optimized numerically to ensure accurate beam formation. The measured angular divergences of the beam are ±0.01 rad parallel to the slits and ±0.03 rad in the transverse direction.


Review of Scientific Instruments | 2016

Multi-slit triode ion optical system with ballistic beam focusing.

V. I. Davydenko; V. Amirov; A. I. Gorbovsky; P. P. Deichuli; A. A. Ivanov; A. Kolmogorov; V. Kapitonov; V. V. Mishagin; I. V. Shikhovtsev; A. Sorokin; N. V. Stupishin; A. Smirnov; R. Uhlemann

Multi-slit triode ion-optical systems with spherical electrodes are of interest for formation of intense focused neutral beams for plasma heating. At present, two versions of focusing multi-slit triode ion optical system are developed. The first ion optical system forms the proton beam with 15 keV energy, 140 A current, and 30 ms duration. The second ion optical system is intended for heating neutral beam injector of Tokamak Configuration Variable (TCV). The injector produces focused deuterium neutral beam with 35 keV energy, 1 MW power, and 2 s duration. In the later case, the angular beam divergence of the neutral beam is 20-22 mrad in the direction across the slits of the ion optical system and 12 mrad in the direction along the slits.


Review of Scientific Instruments | 2014

Development of a negative ion-based neutral beam injector in Novosibirska)

A. Ivanov; G. Abdrashitov; V. V. Anashin; Yu. I. Belchenko; A. V. Burdakov; V. I. Davydenko; P. Deichuli; G. I. Dimov; A. N. Dranichnikov; V. Kapitonov; V. V. Kolmogorov; A. Kondakov; A. Sanin; I. V. Shikhovtsev; N. Stupishin; A. Sorokin; S. S. Popov; M.A. Tiunov; V. P. Belov; A. I. Gorbovsky; V. V. Kobets; M. Binderbauer; S. Putvinski; A. Smirnov; L. Sevier

A 1000 keV, 5 MW, 1000 s neutral beam injector based on negative ions is being developed in the Budker Institute of Nuclear Physics, Novosibirsk in collaboration with Tri Alpha Energy, Inc. The innovative design of the injector features the spatially separated ion source and an electrostatic accelerator. Plasma or photon neutralizer and energy recuperation of the remaining ion species is employed in the injector to provide an overall energy efficiency of the system as high as 80%. A test stand for the beam acceleration is now under construction. A prototype of the negative ion beam source has been fabricated and installed at the test stand. The prototype ion source is designed to produce 120 keV, 1.5 A beam.


Review of Scientific Instruments | 2008

Beam formation by ion optical system with slit finite length apertures.

V. I. Davydenko; A. A. Ivanov; I. V. Shikhovtsev; A. Sorokin; R. Uhlemann

Ion beam formation by four-electrode ion optical system with slit finite length apertures is considered. Results of numerical simulations by two and three dimensional codes shown that accurate ion beam formation in slit aperture with semicircular ends can be provided. In experimental studies of beam formation in single slit ion optical system angular beam divergences of 0.53 degrees across the slit and 0.35 degrees along it were measured. Studied slit ion optical system will be used for ion beam formation in diagnostic neutral injector for large W-7X stellarator.


Review of Scientific Instruments | 2012

Commissioning of heating neutral beams for COMPASS-D tokamak.

P. P. Deichuli; V. I. Davydenko; V. P. Belov; A. Gorbovsky; A. Dranichnikov; A. A. Ivanov; A. Sorokin; V. V. Mishagin; A. Abdrashitov; V. V. Kolmogorov; A. Kondakov

Two neutral beam injectors have been developed for plasma heating on COMPASS-D tokamak (Institute of Plasma Physics, Prague). The 4-electrodes multihole ion-optical system with beam focusing was chosen to provide the low divergence 300 kW power in both deuterium and hydrogen atoms. The accelerating voltage is 40 kV at extracted ion current up to 15 A. The power supply system provides the continuous and modulated mode of the beam injection at a maximal pulse length 300 ms. The optimal arrangement of the cryopanels and the beam duct elements provides sufficiently short-length beamline which reduces the beam losses. The evolution of the impurities and molecular fraction content is studied in the process of the high voltage conditioning of the newly made ion sources. Two injectors of the same type have been successfully tested and are ready for operation at tokamak in IPP, Prague.


THIRD INTERNATIONAL SYMPOSIUM ON NEGATIVE IONS, BEAMS AND SOURCES (NIBS 2012) | 2013

Development of a negative ion-based neutral beam injector in Novosibirsk

A. Ivanov; G. Abdrashitov; V. V. Anashin; Yu. I. Belchenko; A. V. Burdakov; V. I. Davydenko; P. Deichuli; G. I. Dimov; A. N. Dranichnikov; V. Kapitonov; V. V. Kolmogorov; A. Kondakov; S. S. Popov; A. Sanin; I. V. Shikhovtsev; A. Sorokin; N. Stupishin; M.A. Tiunov; V. P. Belov; A. I. Gorbovsky; V. V. Kobets; M. Binderbauer; S. Putvinski; A. Smirnov; L. Sevier

The negative-ion based injector of a hydrogen neutral beam with the energy up to 1 MeV is being developed in the Budker Institute. In order to provide high energy efficiency, the injector will employ a plasma (or photon) beam neutralization target and electrostatic beam energy recuperators. The design of the injector components is in progress. The experimental test facility for acceleration of a 1.5-Ampere hydrogen negative ion beam to the energy of 120 keV is under construction.


Fusion Engineering and Design | 2015

Upgrade of the TCV tokamak, first phase: Neutral beam heating system

S. Alberti; R. Chavan; V. I. Davydenko; B.P. Duval; A. A. Ivanov; D. Fasel; A. Fasoli; Aleksander I. Gorbovsky; T. P. Goodman; V. V. Kolmogorov; Y. Martin; O. Sauter; A. Sorokin; Matthieu Toussaint


Fusion Engineering and Design | 2017

Neutral beam heating on the TCV tokamak

R. Chavan; S. Coda; V. I. Davydenko; F. Dolizy; Aleksandr N. Dranitchnikov; B.P. Duval; A. A. Ivanov; D. Fasel; A. Fasoli; V. V. Kolmogorov; Pierre Lavanchy; X. Llobet; B. Marletaz; Philippe Marmillod; Y. Martin; A. Merle; A. Perez; O. Sauter; Ugo Siravo; I. V. Shikhovtsev; A. Sorokin; Matthieu Toussaint


symposium on fusion technology | 2015

Supply equipment to the new NBH system for the TCV tokamak

D. Fasel; J. Dubray; V. V. Kolmogorov; A. Perez; Ugo Siravo; A. Sorokin

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V. I. Davydenko

Budker Institute of Nuclear Physics

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I. V. Shikhovtsev

Budker Institute of Nuclear Physics

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V. V. Kolmogorov

Budker Institute of Nuclear Physics

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A. A. Ivanov

Budker Institute of Nuclear Physics

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P. P. Deichuli

Budker Institute of Nuclear Physics

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V. Kapitonov

Budker Institute of Nuclear Physics

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A. Ivanov

Budker Institute of Nuclear Physics

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A. N. Dranichnikov

Budker Institute of Nuclear Physics

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M.A. Tiunov

Budker Institute of Nuclear Physics

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N. Stupishin

Budker Institute of Nuclear Physics

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