Influence of the Doppler effect on radiative transfer in a spherical plasma under macroscopic motion of substance
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URI (для ссылок/цитирований):
https://doi.org/10.1016/j.jqsrt.2017.12.026https://elib.sfu-kras.ru/handle/2311/110967
Автор:
Косарев, Николай Иванович
Коллективный автор:
Институт цветных металлов и материаловедения
Кафедра фундаментального естественнонаучного образования
Дата:
2018-03Журнал:
JOURNAL OF QUANTITATIVE SPECTROSCOPY & RADIATIVE TRANSFERКвартиль журнала в Scopus:
Q1Квартиль журнала в Web of Science:
Q2Библиографическое описание:
Косарев, Николай Иванович. Influence of the Doppler effect on radiative transfer in a spherical plasma under macroscopic motion of substance [Текст] / Николай Иванович Косарев // JOURNAL OF QUANTITATIVE SPECTROSCOPY & RADIATIVE TRANSFER. — 2018. — Т. 207. — С. 54-60Аннотация:
The non-LTE radiative transfer in spherical plasma containing resonantly absorbing of light ions has been studied numerically under conditions of macroscopic motion of substance. Two types of macroscopic motion were simulated: radial expansion and compression (pulsation) of spherical plasma; rotation of plasma relative to an axis of symmetry. The calculations of absorption line profile of transmitted broadband radiation and the emission line profile were performed for the optically dense plasma of calcium ions on the resonance transition with wavelength 397 nm. Numerical results predict frequency shifts in the emission line profile to red wing of the spectrum for radial expansion of the plasma and to blue wing of the spectrum for the plasma compression at an average velocity of ions along the ray of sight equals to zero. The width of the emission line profile of a rotating plasma considerably exceeds the width of the profile of the static plasma, and the shift of the central frequency of resonance transition from the resonance frequency of the static plasma gives a linear velocity of ion motion along a given ray trajectory in units of thermal velocity. Knowledge of the linear radial velocity of ions can be useful for diagnostic purposes in determining the frequency and period of rotation of optically dense plasmas.