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Varieties of the gas driven water rivulet flow regimes in the minichannels. / Svetlichnaya, O. V.; Cheverda, V. V.; Kirichenko, E. O.

In: Journal of Physics: Conference Series, Vol. 925, No. 1, 012010, 09.11.2017.

Research output: Contribution to journalArticlepeer-review

Harvard

Svetlichnaya, OV, Cheverda, VV & Kirichenko, EO 2017, 'Varieties of the gas driven water rivulet flow regimes in the minichannels', Journal of Physics: Conference Series, vol. 925, no. 1, 012010. https://doi.org/10.1088/1742-6596/925/1/012010

APA

Svetlichnaya, O. V., Cheverda, V. V., & Kirichenko, E. O. (2017). Varieties of the gas driven water rivulet flow regimes in the minichannels. Journal of Physics: Conference Series, 925(1), [012010]. https://doi.org/10.1088/1742-6596/925/1/012010

Vancouver

Svetlichnaya OV, Cheverda VV, Kirichenko EO. Varieties of the gas driven water rivulet flow regimes in the minichannels. Journal of Physics: Conference Series. 2017 Nov 9;925(1):012010. doi: 10.1088/1742-6596/925/1/012010

Author

Svetlichnaya, O. V. ; Cheverda, V. V. ; Kirichenko, E. O. / Varieties of the gas driven water rivulet flow regimes in the minichannels. In: Journal of Physics: Conference Series. 2017 ; Vol. 925, No. 1.

BibTeX

@article{3b93e207f1184e22ac94fcbb39da05bf,
title = "Varieties of the gas driven water rivulet flow regimes in the minichannels",
abstract = "This paper reports on an experimental study of the gas (nitrogen) driven water rivulet flow regimes in the minichannel. The width of the liquid nozzle is 10 mm, the height and width of minichannel are 1.61 ±0.02 mm and 30 mm correspondently. The new flow regime has been found by authors. Its occurrence is connected with influence of relatively large static wetting angle of water on the flow and comparably small height of the channel. It was named {"}rivulet bridge{"}. The paper presents a map of the various rivulet flow regimes, characterized by different geometry and different kinds of surface deformations at temperature 40°C.",
keywords = "2-PHASE FLOW, LIQUID-FILM, MICROCHANNEL, EVAPORATION",
author = "Svetlichnaya, {O. V.} and Cheverda, {V. V.} and Kirichenko, {E. O.}",
year = "2017",
month = nov,
day = "9",
doi = "10.1088/1742-6596/925/1/012010",
language = "English",
volume = "925",
journal = "Journal of Physics: Conference Series",
issn = "1742-6588",
publisher = "IOP Publishing Ltd.",
number = "1",

}

RIS

TY - JOUR

T1 - Varieties of the gas driven water rivulet flow regimes in the minichannels

AU - Svetlichnaya, O. V.

AU - Cheverda, V. V.

AU - Kirichenko, E. O.

PY - 2017/11/9

Y1 - 2017/11/9

N2 - This paper reports on an experimental study of the gas (nitrogen) driven water rivulet flow regimes in the minichannel. The width of the liquid nozzle is 10 mm, the height and width of minichannel are 1.61 ±0.02 mm and 30 mm correspondently. The new flow regime has been found by authors. Its occurrence is connected with influence of relatively large static wetting angle of water on the flow and comparably small height of the channel. It was named "rivulet bridge". The paper presents a map of the various rivulet flow regimes, characterized by different geometry and different kinds of surface deformations at temperature 40°C.

AB - This paper reports on an experimental study of the gas (nitrogen) driven water rivulet flow regimes in the minichannel. The width of the liquid nozzle is 10 mm, the height and width of minichannel are 1.61 ±0.02 mm and 30 mm correspondently. The new flow regime has been found by authors. Its occurrence is connected with influence of relatively large static wetting angle of water on the flow and comparably small height of the channel. It was named "rivulet bridge". The paper presents a map of the various rivulet flow regimes, characterized by different geometry and different kinds of surface deformations at temperature 40°C.

KW - 2-PHASE FLOW

KW - LIQUID-FILM

KW - MICROCHANNEL

KW - EVAPORATION

UR - http://www.scopus.com/inward/record.url?scp=85036456026&partnerID=8YFLogxK

U2 - 10.1088/1742-6596/925/1/012010

DO - 10.1088/1742-6596/925/1/012010

M3 - Article

AN - SCOPUS:85036456026

VL - 925

JO - Journal of Physics: Conference Series

JF - Journal of Physics: Conference Series

SN - 1742-6588

IS - 1

M1 - 012010

ER -

ID: 9649372