Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where Oleg P. Kulagin is active.

Publication


Featured researches published by Oleg P. Kulagin.


IEEE Transactions on Plasma Science | 2004

Optimal conditions for drift-orbital resonance in M-type devices

Oleg P. Kulagin; Victor D. Yeryomka

The large-orbit and small-orbit regimes of an M-type oscillator in the drift-orbital resonance mode are considered. The theoretical analysis of oscillator characteristics is performed for each regime. The comparison between experimental and theoretical data is made. Conclusions concerning the electron-wave interaction mechanism in millimeter-band magnetrons are presented.


IEEE Transactions on Plasma Science | 2002

Large-orbit M-type oscillator with the adiabatic electron-optical system

Oleg P. Kulagin; Victor D. Yeryomka

The large-orbit M-type oscillator with the adiabatic electron-optical system in the specific drift-orbital resonance mode is considered. A theoretical analysis of electron trajectories is made. According to early estimates, this system is free from shortcomings typical for a gyrotron and a peniotron when an operating wavelength becomes shortened to a millimeter and submillimeter band.


IEEE Transactions on Plasma Science | 2012

Investigation of Millimeter-Wavelength 20-Vane Spatial-Harmonic Magnetron Using Three-Dimensional Particle-in-Cell Simulation

Jung-Il Kim; Seok-Gy Jeon; Geun-Ju Kim; Jaehong Kim; Victor D. Yeryomka; Oleg P. Kulagin; Anatoly S. Tishchenko; Vasily D. Naumenko

We investigate, using the 3-D particle-in-cell simulation code MAGIC, the millimeter-wavelength 20-vane magnetron operating at one of the spatial nonfundamental harmonics of the backward-traveling wave. This spatial harmonic is characterized by 16 (p = 16) RF electric field variations along the circumference of the magnetron interaction space (oscillation region). We call this magnetron as the “spatial-harmonic” magnetron operating in the “spatial-harmonic mode.” Calculated electron distribution reveals 16 electron spokes in the interaction space, which confirms the spatial-harmonic mode of the magnetron operation at p = 16. We observe a saturated output power of 3.2 kW, which corresponds to a power conversion efficiency of 12.3% when the applied voltage is 6.5 kV and the external magnetic field is 0.4 T. The operating frequency is 35.2 GHz. The collected anode current is 4 A when the current emitted from the cathode is 6.3 A. The dissipated power at each anode vane, depending on the anode vane position, is varied by the factor 1.8. The energy of back-bombarding electrons on the cathode increases from 305 to 503 eV while the spatial-harmonic magnetron operation is stabilized.


international vacuum electronics conference | 2006

3-D Simulation of Millimeter-Wave Cold Secondary-Emission Cathode Drift-Orbital Resonance Magnetrons

Victor D. Yeryomka; M.A. Kopot; Oleg P. Kulagin; V.D. Naumenko

The mathematical 2-D model describing in a self-consistent fashion the physical processes in millimeter-wave (MMW) cold second-emission cathode (SEC) magnetrons operating on a space harmonics of non- pi - mode oscillation can be used to study both the dynamics of establishing self-induced oscillations and the stationary oscillations regimes (Sosnitskiy and Varviv, 2002). However the 2-D model does not take into account the finiteness of its space interaction axial length in these magnetrons. A 3-D mathematical model for the cold SEC magnetrons has been worked out allowing for the finiteness of the axial length of its space interaction (Kopot, 2005). The numerical experiment involves the use of the PIC code. The equations presented in (Vaughn, 1993) have been taken into consideration in simulating the secondary electron emission processes with regard to the angle at incidence of primary electrons. The input data for the numerical experiment are the parameters that can be measured: geometry of magnetrons space interaction, natural frequency and the loaded Q of the oscillatory circuit on an operating mode, a permanent magnetic field and an anode voltage. The device output performances such as anode current, output power and efficiency are the results from calculations and do not require that their rough value are known. Simulations are made of dynamic processes of secondary electron multiplication and the device output in stationary mode


2007 International Kharkov Symposium Physics and Engrg. of Millimeter and Sub-Millimeter Waves (MSMW) | 2007

THz-Range Spatial-Harmonic Magnetrons

Victor D. Yeryomka; Mykhailo A. Kopot; Oleg P. Kulagin; Vasyl' D. Naumenko

The numerical simulation has been used to determine the tentative parameters submm- wavelength SHMs. The reliability of the developed 3-D models is evidenced by the results from testing of the operating laboratory prototypes of the THz-range thermionic-cathode SHMs. The 3-D model thus created can be used in developing the small-size THz-range cold secondary-emission SHMs. The concept of drift-orbital resonance in SHMs allows testing the basic parameters of THz-range magnetrons. It can be used to develop the submm-wavelength spatial-harmonic magnetrons. It can be used to develop the submm-wavelength spatial-harmonics magnetrons.


international vacuum electronics conference | 2004

The flow forming potential in unconventional magnetrons

Oleg P. Kulagin; Victor D. Yeryomka

Unconventional magnetrons are widely used in the millimeter-wave band. Their operating magnetic fields are 3-4 times lower than that of conventional devices. The geometrical dimensions of an interaction space are greater than for conventional ones with the same wavelength. At the present time, the physical and mathematical model of an electron-wave interaction, explaining the essential difference of such magnetrons from conventional devices, is not yet developed. In this paper, an attempt is made to analyze the processes in the millimeter-wave low-field and space harmonics magnetrons, on the basis of parameters uniting all these tubes.


international crimean conference microwave and telecommunication technology | 2006

Multicavity Magnetrons with Cold Secondary Emission Cathode: Achievements, Problems, Perspectives

Victor D. Yeryomka; M.A. Kopot; Oleg P. Kulagin; S. V. Gritsaenko; V. D. Naumenko; S. N. Suvorov

This paper presents the review of investigations of multicavity magnetrons with cold secondary-emission cathode operating over the mm-wave band, side-cathode magnetrons and X-band coaxial magnetrons designed and developed at the A. Ya. Usikov IRE NASU for the period 1955 through 2005 and at Radioastronomical Institute (Rl NASU) for the period 1985 through 2005. The distinctive features of magnetrons design, their operating modes, and energy characteristics are presented. Parameters of magnetron design are given. The results of theoretical and experimental study and applications of cold-cathode magnetrons are briefly described. It is shown that using cold secondary-emission allows extending service life of mm and submm-wave magnetrons, improving energy characteristics, and increasing functional capabilities. It is shown that over 35-150 GHz frequency band magnetron oscillators operating on higher space harmonics of non-pi-mode oscillations have the parameters that satisfy practical requirements


international vacuum microelectronics conference | 1996

Emission of hot electrons out of semiconductors

Fridrich G. Bass; Victor D. Yeremka; Oleg P. Kulagin

This paper gives the expressions for electron emission current out of the semiconductor heated by the constant and variable electric fields when the magnetic field is present or does not exist. The corrections caused by heat dimensional effects have been taken into account. The cases of the normal and anomalous skin-effect have been considered separately. A new method based on the expressions obtained is proposed to find the effective electron mass, electron concentration, and characteristics of electron-phonon interaction in semiconductors.


international conference on microwave and millimeter wave technology | 2008

Spatial-harmonic magnetrons - THz electromagnetic radiation oscillators

Victor D. Yeryomka; M.A. Kopot; Oleg P. Kulagin; V. D. Naumenko

The goal of the present paper is to look into the possibility of constructing small-size pulsed cold-cathode of SHMs at THz frequencies using 3-D numerical simulation. These types of sources whose output power varies between hundreds of mW and units of kW can be employed, say, in developing high-resolution radars as well as in the technology of desk-top charged-particle accelerators, communication lines between ultrahigh-speed computers, THz devices for detecting chemical and biological reagents.


international crimean conference microwave and telecommunication technology | 2006

3-D Simulation of Cold Cathode Magnetrons Operating on a Space Harmonic in a Drift-Orbital Resonance Mode

Victor D. Yeryomka; M.A. Kopot; Oleg P. Kulagin; V.D. Naumenco

The 3-D model of the secondary-electron multiplication dynamics in cold cathode magnetrons having a SEC (second emission cathode), which is bombarded by the primary electrons from the side thermionic emitter. The carried out calculations of start magnetron processes with various values of a injection current shown, that generation in magnetron comes at any injection current, however start time of the device essentially depends on injection current value. At small value of a current c the lateral cathode time of start appears is comparable to duration of a pulse that can result in unstable work of the device

Collaboration


Dive into the Oleg P. Kulagin's collaboration.

Top Co-Authors

Avatar

Victor D. Yeryomka

National Academy of Sciences

View shared research outputs
Top Co-Authors

Avatar

M.A. Kopot

National Academy of Sciences

View shared research outputs
Top Co-Authors

Avatar

Victor D. Yeremka

National Academy of Sciences

View shared research outputs
Top Co-Authors

Avatar

V. D. Naumenko

National Academy of Sciences of Ukraine

View shared research outputs
Top Co-Authors

Avatar

Mykhailo A. Kopot

National Academy of Sciences

View shared research outputs
Top Co-Authors

Avatar

Vasyl' D. Naumenko

National Academy of Sciences

View shared research outputs
Top Co-Authors

Avatar

Anatoly S. Tishchenko

National Academy of Sciences of Ukraine

View shared research outputs
Top Co-Authors

Avatar

S. N. Suvorov

National Academy of Sciences of Ukraine

View shared research outputs
Top Co-Authors

Avatar

S. V. Gritsaenko

National Academy of Sciences of Ukraine

View shared research outputs
Top Co-Authors

Avatar

V.D. Naumenco

National Academy of Sciences of Ukraine

View shared research outputs
Researchain Logo
Decentralizing Knowledge