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Dynamics of discontinuity formation in a cavitating liquid layer under shock wave loading. / Bolshakova, E. S.; Kedrinskii, V. K.

In: Journal of Applied Mechanics and Technical Physics, Vol. 58, No. 5, 01.09.2017, p. 837-844.

Research output: Contribution to journalArticlepeer-review

Harvard

Bolshakova, ES & Kedrinskii, VK 2017, 'Dynamics of discontinuity formation in a cavitating liquid layer under shock wave loading', Journal of Applied Mechanics and Technical Physics, vol. 58, no. 5, pp. 837-844. https://doi.org/10.1134/S0021894417050091

APA

Bolshakova, E. S., & Kedrinskii, V. K. (2017). Dynamics of discontinuity formation in a cavitating liquid layer under shock wave loading. Journal of Applied Mechanics and Technical Physics, 58(5), 837-844. https://doi.org/10.1134/S0021894417050091

Vancouver

Bolshakova ES, Kedrinskii VK. Dynamics of discontinuity formation in a cavitating liquid layer under shock wave loading. Journal of Applied Mechanics and Technical Physics. 2017 Sept 1;58(5):837-844. doi: 10.1134/S0021894417050091

Author

Bolshakova, E. S. ; Kedrinskii, V. K. / Dynamics of discontinuity formation in a cavitating liquid layer under shock wave loading. In: Journal of Applied Mechanics and Technical Physics. 2017 ; Vol. 58, No. 5. pp. 837-844.

BibTeX

@article{01b856998f0f4836b2d168eae360602c,
title = "Dynamics of discontinuity formation in a cavitating liquid layer under shock wave loading",
abstract = "The problem of experimental modeling of discontinuity formation in a cavitating liquid layer under shock wave loading is considered. It is shown that the discontinuity takes the shape of a spherical segment and retains it up to the closure instant. The discontinuity surface becomes covered with a dynamically growing thin boundary layer consisting of bubbles, which transforms to a ring-shaped vortex bubble cluster at the instant of the discontinuity closure, generating a secondary shock wave. Specific features of the structure of the cavitating flow discontinuity arising at loading intensities lower than 0.1 and 5 kJ are discussed.",
keywords = "cavitation process, discontinuity, liquid layer, scale factor, shock wave",
author = "Bolshakova, {E. S.} and Kedrinskii, {V. K.}",
year = "2017",
month = sep,
day = "1",
doi = "10.1134/S0021894417050091",
language = "English",
volume = "58",
pages = "837--844",
journal = "Journal of Applied Mechanics and Technical Physics",
issn = "0021-8944",
publisher = "Maik Nauka-Interperiodica Publishing",
number = "5",

}

RIS

TY - JOUR

T1 - Dynamics of discontinuity formation in a cavitating liquid layer under shock wave loading

AU - Bolshakova, E. S.

AU - Kedrinskii, V. K.

PY - 2017/9/1

Y1 - 2017/9/1

N2 - The problem of experimental modeling of discontinuity formation in a cavitating liquid layer under shock wave loading is considered. It is shown that the discontinuity takes the shape of a spherical segment and retains it up to the closure instant. The discontinuity surface becomes covered with a dynamically growing thin boundary layer consisting of bubbles, which transforms to a ring-shaped vortex bubble cluster at the instant of the discontinuity closure, generating a secondary shock wave. Specific features of the structure of the cavitating flow discontinuity arising at loading intensities lower than 0.1 and 5 kJ are discussed.

AB - The problem of experimental modeling of discontinuity formation in a cavitating liquid layer under shock wave loading is considered. It is shown that the discontinuity takes the shape of a spherical segment and retains it up to the closure instant. The discontinuity surface becomes covered with a dynamically growing thin boundary layer consisting of bubbles, which transforms to a ring-shaped vortex bubble cluster at the instant of the discontinuity closure, generating a secondary shock wave. Specific features of the structure of the cavitating flow discontinuity arising at loading intensities lower than 0.1 and 5 kJ are discussed.

KW - cavitation process

KW - discontinuity

KW - liquid layer

KW - scale factor

KW - shock wave

UR - http://www.scopus.com/inward/record.url?scp=85037534207&partnerID=8YFLogxK

U2 - 10.1134/S0021894417050091

DO - 10.1134/S0021894417050091

M3 - Article

AN - SCOPUS:85037534207

VL - 58

SP - 837

EP - 844

JO - Journal of Applied Mechanics and Technical Physics

JF - Journal of Applied Mechanics and Technical Physics

SN - 0021-8944

IS - 5

ER -

ID: 9646932