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Lookup NU author(s): Dr Francesco Zonta
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© 2024 American Society of Mechanical Engineers (ASME). All rights reserved. We study the heat transfer process in a multiphase turbulent system composed by a swarm of large and deformable drops and a continuous carrier phase. For a shear Reynolds number of Re = 300 and a constant drops volume fraction of Φ = 5.4%, we perform a campaign of direct numerical simulations (DNS) of turbulence coupled with a phase-field method and the energy equation; the Navier-Stokes equations are used to describe the flow field, while the phase-field method and the energy equation are used to describe the dispersed phase topology and the temperature field, respectively. Considering four Prandtl numbers, Pr = 1, 2, 4 and 8 and twoWeber numbers,We = 1.5 and 3.0, we investigate the heat transfer process from warm drops to a colder turbulent flow. Using detailed statistics, we first characterize the time evolution of the temperature field in both the dispersed and carrier phase. Then, we develop an analytic model able to accurately reproduce the behaviour of the dispersed and continuous phase temperature. We find that an increase of the Prandtl number, obtained via a decrease of the thermal diffusivity, leads to a slower heat transfer between the dispersed and carrier phase. Finally, we correlate the drop diameters and their average temperatures.
Author(s): Mangani F, Zonta F, Roccon A, Soldati A
Publication type: Conference Proceedings (inc. Abstract)
Publication status: Published
Conference Name: ASME 2024 Fluids Engineering Division Summer Meeting
Year of Conference: 2024
Pages: FEDSM2024-130520
Online publication date: 10/09/2024
Acceptance date: 02/04/2018
Publisher: American Society of Mechanical Engineers (ASME)
URL: https://doi.org/10.1115/FEDSM2024-130520
DOI: 10.1115/FEDSM2024-130520
Library holdings: Search Newcastle University Library for this item
ISBN: 9780791888124