Publications by authors named "Sergei S Sazhin"

Article Synopsis
  • New two-dimensional (2D) models for heating, cooling, and evaporation of sessile droplets are introduced, improving upon previous one-dimensional (1D) models by considering the spatial distribution of heat.
  • The advanced 2D model uses COMSOL Multiphysics to numerically solve equations related to mass, momentum, vapor mass fraction, and energy, while the simpler models retain assumptions about droplet shape and do not account for factors like droplet deformation or the Marangoni effect.
  • Validation of the models against experimental data from distilled water droplets indicates that the simplest 1D model effectively predicts droplet radius changes, while the advanced 2D model aligns closely with observed temperature changes during evaporation.
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The evaporation/condensation coefficient (β) and the evaporation rate (γ) for n-dodecane vs. temperature, gas pressure, gas and liquid density, and solvation effects at a droplet surface are analysed using quantum chemical density functional theory calculations of several ensembles of conformers of n-dodecane molecules in the gas phase (hybrid functional ωB97X-D with the cc-pVTZ and cc-pVDZ basis sets) and in liquid phase (solvation method: SMD/ωB97X-D). It is shown that β depends more strongly on a number of neighbouring molecules interacting with an evaporating molecule at a droplet surface (this number is estimated through changes in the surface Gibbs free energy of solvation) than on pressure in the gas phase or conformerisation and cross-conformerisation of molecules in both phases.

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Molecular dynamics simulations are performed to study the evaporation and condensation of n-dodecane (C(12)H(26)) at temperatures in the range 400-600 K. A modified optimized potential for liquid simulation model is applied to take into account the Lennard-Jones, bond bending and torsion potentials with the bond length constrained. The equilibrium liquid-vapor n-dodecane interface thickness is predicted to be ~1.

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