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Showing posts with label I. V. Bandurkin. Show all posts
Showing posts with label I. V. Bandurkin. Show all posts
Friday, January 29, 2016
Abstract-Gyrotron with a sectioned cavity based on excitation of a far-from-cutoff operating mode
A typical problem of weakly relativistic low-power gyrotrons (especially in the case of operation at high cyclotron harmonics) is the use of long cavities ensuring extremely high diffraction Q-factors for the operating near-cutoff waves. As a result, a great share of the rf power radiated by electrons is spent in Ohmic losses. In this paper, we propose to use a sectioned cavity with π-shifts of the wave phase between sections. In such a cavity, a far-from-cutoff axial mode of the operating cavity having a decreased diffraction Q-factor is excited by the electron beam in a gyrotron-like regime.
(This paper is focused basically on the problems of the gyrotrons operating at high cyclotron harmonics in the terahertz frequency range)
Thursday, October 22, 2015
Abstract-Negative-mass mitigation of Coulomb repulsion for terahertz undulator radiation of electron bunches
N. Balal1, I. V. Bandurkin2, V. L. Bratman1,2, E. Magory1 and A. V. Savilov2,3
It is proposed to utilize the effect of negative mass for stabilization of the effective axial size of very dense and short electron bunches produced by photo-injector guns by using combined undulator and strong uniform magnetic fields. It has been shown that in the “abnormal” regime, an increase in the electron energy leads to a decrease in the axial velocity of the electron; due to the negative-mass effect, the Coulomb repulsion of electrons leads to their attraction and formation of a fairly stable and compact bunch “nucleus.” An undulator with a strong uniformmagnetic field providing the negative-mass effect is designed for an experimental source of terahertz radiation. The use of the negative-mass regime in this experiment should result in a long-pulse coherent spontaneous undulator emission from a short dense moderately relativistic (5.5 MeV) photo-injector electron bunch with a high (up to 20%) efficiency and a narrow frequency spectrum.
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