Laboratory Model for Low Current Excitation of Metal Vapor Active Media Lasers

Author(s):  
Pavel I. Gembukh ◽  
Valeriy F. Fedorov ◽  
Dmitriy V. Shiyanov ◽  
Maxim V. Trigub
2016 ◽  
Vol 671 ◽  
pp. 012060 ◽  
Author(s):  
S N Torgaev ◽  
M V Trigub ◽  
G S Evtushenko ◽  
T G Evtushenko

1993 ◽  
Vol 23 (7) ◽  
pp. 545-563 ◽  
Author(s):  
A V Karelin ◽  
Sergei I Yakovlenko

1997 ◽  
Author(s):  
Mishik A. Kazaryan ◽  
Yury P. Vasil'ev ◽  
Nikolay P. Korotkov ◽  
Harazat M. Kazaryan ◽  
Nikolay A. Lyabin
Keyword(s):  

Mathematics ◽  
2021 ◽  
Vol 9 (23) ◽  
pp. 2995
Author(s):  
Alexander V. Shapovalov ◽  
Anton E. Kulagin

A semiclassical approach based on the WKB–Maslov method is developed for the kinetic ionization equation in dense plasma with approximations characteristic of metal vapor active media excited by a contracted discharge. We develop the technique for constructing the leading term of the semiclassical asymptotics of the Cauchy problem solution for the kinetic equation under the supposition of weak diffusion. In terms of the approach developed, the local cubic nonlinear term in the original kinetic equation is considered in a nonlocal form. This allows one to transform the nonlinear nonlocal kinetic equation to an associated linear partial differential equation with a given accuracy of the asymptotic parameter using the dynamical system of moments of the desired solution of the equation. The Cauchy problem solution for the nonlinear nonlocal kinetic equation can be obtained from the solution of the associated linear partial differential equation and some algebraic equations for the coefficients of the linear equation. Within the developed approach, the plasma relaxation in metal vapor active media is studied with asymptotic solutions expressed in terms of higher transcendental functions. The qualitative analysis of such the solutions is given.


2020 ◽  
Vol 63 (1) ◽  
pp. 62-67
Author(s):  
S. N. Torgaev ◽  
D. N. Ogorodnikov ◽  
I. S. Musorov ◽  
A. E. Kulagin ◽  
G. S. Evtushenko

2019 ◽  
Vol 1327 ◽  
pp. 012048
Author(s):  
E G Bukreev ◽  
O A Kozhemyak ◽  
I S Musorov ◽  
D N Ogorodnikov ◽  
V V Drobchik

Author(s):  
Henry S. Slayter

Electron microscopic methods have been applied increasingly during the past fifteen years, to problems in structural molecular biology. Used in conjunction with physical chemical methods and/or Fourier methods of analysis, they constitute powerful tools for determining sizes, shapes and modes of aggregation of biopolymers with molecular weights greater than 50, 000. However, the application of the e.m. to the determination of very fine structure approaching the limit of instrumental resolving power in biological systems has not been productive, due to various difficulties such as the destructive effects of dehydration, damage to the specimen by the electron beam, and lack of adequate and specific contrast. One of the most satisfactory methods for contrasting individual macromolecules involves the deposition of heavy metal vapor upon the specimen. We have investigated this process, and present here what we believe to be the more important considerations for optimizing it. Results of the application of these methods to several biological systems including muscle proteins, fibrinogen, ribosomes and chromatin will be discussed.


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