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Aerodynamically-driven rupture of a liquid film by turbulent shear flow

Kozul, Melissa (författare)
Department of Energy and Process Eng., NTNU, N-7491 Trondheim, Norway
Costa, Pedro (författare)
KTH,Linné Flow Center, FLOW,SeRC - Swedish e-Science Research Centre,Strömningsmekanik och Teknisk Akustik,Faculty of Industrial Eng., Mechanical Eng. and Computer Science, 107 University of Iceland, Reykjavík, Iceland, 107
Dawson, James R. (författare)
Department of Energy and Process Eng., NTNU, N-7491 Trondheim, Norway
visa fler...
Brandt, Luca (författare)
KTH,Linné Flow Center, FLOW,SeRC - Swedish e-Science Research Centre,Strömningsmekanik och Teknisk Akustik
visa färre...
Department of Energy and Process Eng, NTNU, N-7491 Trondheim, Norway Linné Flow Center, FLOW (creator_code:org_t)
Brisbane, Australia : University of Queensland Library, 2020
2020
Engelska.
Ingår i: 22nd Australasian Fluid Mechanics Conference, AFMC 2020. - Brisbane, Australia : University of Queensland Library.
  • Konferensbidrag (refereegranskat)
Abstract Ämnesord
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  • The rupture of a liquid film due to co-flowing turbulent shear flows in the gas phase is studied using a volume-of-fluid method. To simulate this multiphase problem, we use a simplified numerical setup where the liquid film is 'sandwiched' between two fully developed boundary layers from a turbulent channel simulation. The film deforms and eventually ruptures within the shear zone created by the co-flows. This efficient setup allows systematic variation of physical parameters to gauge their role in the aerodynamically-driven deformation and rupture of a liquid film under fully developed sheared turbulence. The developing pressure field over the deforming film and related aerodynamic effects is studied, the importance of which was previously suggested by other authors, and in particular the role of the inviscid lift and drag forces. A cumulative lift force is introduced to capture the effect of the alternating pressure minima and maxima forming over the film which amplify and eventually rupture the film. A velocity scale derived from the lift-induced drag force reflects the state of the turbulent boundary layer over the film and collapses the temporal development of this cumulative lift force as well as the amplitude of film deformation with some success for the different film thicknesses and Reynolds numbers.

Ämnesord

TEKNIK OCH TEKNOLOGIER  -- Maskinteknik -- Strömningsmekanik och akustik (hsv//swe)
ENGINEERING AND TECHNOLOGY  -- Mechanical Engineering -- Fluid Mechanics and Acoustics (hsv//eng)

Nyckelord

Multiphase flows
primary breakup
shear flow
turbulence

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Av författaren/redakt...
Kozul, Melissa
Costa, Pedro
Dawson, James R.
Brandt, Luca
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TEKNIK OCH TEKNOLOGIER
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