scispace - formally typeset
G

G. G. Denisov

Researcher at Russian Academy of Sciences

Publications -  323
Citations -  3082

G. G. Denisov is an academic researcher from Russian Academy of Sciences. The author has contributed to research in topics: Gyrotron & Microwave. The author has an hindex of 24, co-authored 323 publications receiving 2699 citations. Previous affiliations of G. G. Denisov include Novosibirsk State University & Saratov State University.

Papers
More filters
Proceedings ArticleDOI

New results and new trends in development of gyrotrons for fusion

TL;DR: In this article, the main ITER requirements to a gyrotron have been demonstrated: 170 GHz frequency, 1MW power, 1000 seconds pulse duration, 53% efficiency, and a novel scheme for a tunable window was developed.
Journal ArticleDOI

Problems of autobunching and phase stability for the TBA-driver: calculations and design for a modeling experiment

TL;DR: In this article, the stability and phase correlation of TBA-driver radiation were studied on the basis of nonstationary spatio-temporal equations, applied to the model of discrete driver cells without RF connection between them.
Proceedings ArticleDOI

High precision frequency stabilization of a 100W/263 GHz continuous wave gyrotron

TL;DR: In this paper, the phase lock loop control of anode voltage has been used to obtain a frequency spectrum as narrow as 1 Hz at the output radiation of a THz band continuous wave gyrotron at the power level about 100 Watts.
Journal ArticleDOI

Synthesis of the sequence of phase correctors forming the desired field

TL;DR: In this paper, the authors proposed a novel procedure for synthesis of a sequence of phase correctors forming a scalar wave beam with desired amplitude distribution, which is used for designing quasi-optical converters of gyrotrons and millimeter-wave transmission lines.
Journal ArticleDOI

Enhancement of cavity selectivity in relativistic gyrotrons operated at axisymmetric modes

TL;DR: In this article, the authors proposed several electrodynamic methods of mode selection, which allow separating the electrically strong axisymmetric higher-order mode from spurious modes, by using either wide slits in the cavity, or azimuthal corrugations on the walls of the tapered cavity.