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JOURNALS // Computer Research and Modeling // Archive

Computer Research and Modeling, 2020 Volume 12, Issue 3, Pages 505–546 (Mi crm800)

This article is cited in 1 paper

MODELS IN PHYSICS AND TECHNOLOGY

Physical research, numerical and analytical modeling of explosion phenomena. A review

E. L. Stupitsky, V. A. Andrushchenko

Institute of Computer Aided Design of the Russian Academy of Sciences (ICAD RAS), 19/18 2-nd Brestskaya st., Moscow, 123056, Russia

Abstract: The review considers a wide range of phenomena and problems associated with the explosion. Detailed numerical studies revealed an interesting physical effect — the formation of discrete vortex structures directly behind the front of a shock wave propagating in dense layers of a heterogeneous atmosphere. The necessity of further investigation of such phenomena and the determination of the degree of their connection with the possible development of gas-dynamic instability is shown. The brief analysis of numerous works on the thermal explosion of meteoroids during their high-speed movement in the Earth's atmosphere is given. Much attention is paid to the development of a numerical algorithm for calculating the simultaneous explosion of several fragments of meteoroids and the features of the development of such a gas-dynamic flow are analyzed. The work shows that earlier developed algorithms for calculating explosions can be successfully used to study explosive volcanic eruptions. The paper presents and discusses the results of such studies for both continental and under-water volcanoes with certain restrictions on the conditions of volcanic activity.
The mathematical analysis is performed and the results of analytical studies of a number of important physical phenomena characteristic of explosions of high specific energy in the ionosphere are presented. It is shown that the preliminary laboratory physical modeling of the main processes that determine these phenomena is of fundamental importance for the development of sufficiently complete and adequate theoretical and numerical models of such complex phenomena as powerful plasma disturbances in the ionosphere. Laser plasma is the closest object for such a simulation. The results of the corresponding theoretical and experimental studies are presented and their scientific and practical significance is shown. The brief review of recent years on the use of laser radiation for laboratory physical modeling of the effects of a nuclear explosion on asteroid materials is given.
As a result of the analysis performed in the review, it was possible to separate and preliminarily formulate some interesting and scientifically significant questions that must be investigated on the basis of the ideas already obtained. These are finely dispersed chemically active systems formed during the release of volcanoes; small-scale vortex structures; generation of spontaneous magnetic fields due to the development of instabilities and their role in the transformation of plasma energy during its expansion in the ionosphere. It is also important to study a possible laboratory physical simulation of the thermal explosion of bodies under the influence of high-speed plasma flow, which has only theoretical interpretations.

Keywords: shock wave, vortex structures, meteoroid explosion, volcanic explosion, nuclear explosion, spontaneous magnetic field, laser plasma.

UDC: 004.942; 551.21; 523.68; 537.612; 623.454.83

Received: 21.01.2020
Revised: 23.02.2020
Accepted: 03.03.2020

DOI: 10.20537/2076-7633-2020-12-3-505-546



© Steklov Math. Inst. of RAS, 2024