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Instability of axisymmetric flow in thermocapillary liquid bridges: Kinetic and thermal energy budgets for two-phase flow with temperature-dependent material properties

Article dans une revue avec comité de lecture
Auteur
STOJANOVIĆ, Mario
19098 Vienna University of Technology = Technische Universität Wien [TU Wien]
ccROMANO, Francesco
531216 Laboratoire de Mécanique des Fluides de Lille - Kampé de Fériet [LMFL]
KUHLMANN, Hendrik C.
19098 Vienna University of Technology = Technische Universität Wien [TU Wien]

URI
http://hdl.handle.net/10985/24482
DOI
10.1017/s0956792523000189
Date
2023-07
Journal
European Journal of Applied Mathematics

Résumé

In numerical linear stability investigations, the rates of change of the kinetic and thermal energy of the perturbation flow are often used to identify the dominant mechanisms by which kinetic or thermal energy is exchanged between the basic and the perturbation flow. Extending the conventional energy analysis for a single-phase Boussinesq fluid, the energy budgets of arbitrary infinitesimal perturbations to the basic two-phase liquid–gas flow are derived for an axisymmetric thermocapillary bridge when the material parameters in both phases depend on the temperature. This allows identifying individual transport terms and assessing their contributions to the instability if the basic flow and the critical mode are evaluated at criticality. The full closed-form energy budgets of linear modes have been derived for thermocapillary two-phase flow taking into account the temperature dependence of all thermophysical parameters. The influence of different approximations to the temperature dependence on the linear stability boundary of the axisymmetric flow in thermocapillary liquid bridges is tested regarding their accuracy. The general mechanism of symmetry breaking turns out to be very robust.

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  • Laboratoire de Mécanique des Fluides de Lille (LMFL)

Documents liés

Visualiser des documents liés par titre, auteur, créateur et sujet.

  • Stability of thermocapillary flow in liquid bridges fully coupled to the gas phase 
    Article dans une revue avec comité de lecture
    STOJANOVIĆ, Mario; ccROMANO, Francesco; KUHLMANN, Hendrik C. (Cambridge University Press (CUP), 2022-09)
    The linear stability of the axisymmetric steady thermocapillary flow in a liquid bridge made from 2 cSt silicone oil (Prandtl number 28) is investigated numerically in the framework of the Boussinesq approximation. The ...
  • MaranStable: A linear stability solver for multiphase flows in canonical geometries 
    Article dans une revue avec comité de lecture
    STOJANOVIĆ, Mario; ccROMANO, Francesco; KUHLMANN, Hendrik C. (Elsevier BV, 2023-07)
    MaranStable is a software to perform three-dimensional linear stability analyses of steady two-dimensional non-isothermal multiphase flows in canonical geometries. Different approximations to the Navier–Stokes equations ...
  • Lagrangian chaos in steady three-dimensional lid-driven cavity flow 
    Article dans une revue avec comité de lecture
    ccROMANO, Francesco; TÜRKBAY, Tuǧçe; KUHLMANN, Hendrik C. (AIP Publishing, 2020-07)
    Steady three-dimensional flows in lid-driven cavities are investigated numerically using a high-order spectral-element solver for the incompressible Navier–Stokes equations. The focus is placed on critical points in the ...
  • Finite-size coherent particle structures in high-Prandtl-number liquid bridges 
    Article dans une revue avec comité de lecture
    BARMAK, Ilya; ccROMANO, Francesco; KUHLMANN, Hendrik C. (American Physical Society (APS), 2021-08)
    The transport of liquid and of small rigid spherical particles in a high-Prandtl-number (Pr = 68) thermocapillary liquid bridge under zero gravity is studied by highly resolved numerical simulations when the flow arises ...
  • Attractors for the motion of a finite-size particle in a two-sided lid-driven cavity 
    Article dans une revue avec comité de lecture
    WU, Haotian; ccROMANO, Francesco; KUHLMANN, Hendrik C. (Cambridge University Press (CUP), 2020-11)
    The motion of a single spherical particle in a two-sided lid-driven cavity is investigated experimentally. The flow in which the particle moves is created by two facing cavity sidewalls which move with equal velocity in ...

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