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Combined nonlocal hydrodynamic model of high-speed penetration of metal jets into high-strength barriers. / Savenkov, G.G.; Khantuleva, T.A.

в: Technical Physics, № 1, 2014, стр. 36-41.

Результаты исследований: Научные публикации в периодических изданияхстатья

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@article{d14f33c099e94732a5044f40494d2e22,
title = "Combined nonlocal hydrodynamic model of high-speed penetration of metal jets into high-strength barriers",
abstract = "We propose a new mathematical model of high-speed penetration of metal jets, which makes it possible to describe two (elastic and hydrodynamic) stages of their penetration into high-strength barriers. The proposed model describes both stages from unified positions and gives high convergence with experimental results. {\textcopyright} 2014 Pleiades Publishing, Ltd.",
author = "G.G. Savenkov and T.A. Khantuleva",
year = "2014",
doi = "10.1134/S1063784214010162",
language = "English",
pages = "36--41",
journal = "Technical Physics",
issn = "1063-7842",
publisher = "Pleiades Publishing",
number = "1",

}

RIS

TY - JOUR

T1 - Combined nonlocal hydrodynamic model of high-speed penetration of metal jets into high-strength barriers

AU - Savenkov, G.G.

AU - Khantuleva, T.A.

PY - 2014

Y1 - 2014

N2 - We propose a new mathematical model of high-speed penetration of metal jets, which makes it possible to describe two (elastic and hydrodynamic) stages of their penetration into high-strength barriers. The proposed model describes both stages from unified positions and gives high convergence with experimental results. © 2014 Pleiades Publishing, Ltd.

AB - We propose a new mathematical model of high-speed penetration of metal jets, which makes it possible to describe two (elastic and hydrodynamic) stages of their penetration into high-strength barriers. The proposed model describes both stages from unified positions and gives high convergence with experimental results. © 2014 Pleiades Publishing, Ltd.

U2 - 10.1134/S1063784214010162

DO - 10.1134/S1063784214010162

M3 - Article

SP - 36

EP - 41

JO - Technical Physics

JF - Technical Physics

SN - 1063-7842

IS - 1

ER -

ID: 7319388