4.7 Article

Molecular dynamics and phase field simulations of droplets on surfaces with wettability gradient

出版社

ELSEVIER SCIENCE SA
DOI: 10.1016/j.cma.2019.112773

关键词

Phase field modeling; Molecular dynamics simulation; Multiscale modeling; Surface wettability; Droplet motion

资金

  1. Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) [172116086 - SFB 926]
  2. DFG [IRTG 2057]
  3. Boltzmann-Zuse Society for Computational Molecular Engineering (BZS)
  4. Federal Ministry of Education and Research, Germany [01IH16008]
  5. Regional University Computing Center Kaiserslautern (RHRK) under the grant TUKL-TLMV
  6. HAZELHEN at the Supercomputing Centre Stuttgart (HLRS) under the grant 'Molecular Modelling of Hydrogen Bonding Fluids' (MMHBF2)

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To understand how the motion of a droplet on a surface can be controlled by wettability gradients is interesting in a variety of technical applications. Phase field (PF) models can be used to study such scenarios but their application requires suitable models of the properties of the interacting phases: vapor, liquid, and solid. In this work, the PF simulations are linked to molecular models by using an equation of state as well as a correlation for the viscosity, that are both consistent with results determined by molecular dynamics (MD) simulations. The motion of a nanoscale droplet on a surface with a wettability gradient is studied both by MD simulations and PF simulations and the results are compared. In both methods, the wettability gradient is solely determined by the surface tensions of the liquid-vapor, solid-liquid, and solid-vapor interfaces. Simulations are conducted for two different profiles of the wettability and at two different temperatures. The qualitative and the quantitative behavior such as the shape of the droplet and the velocity of the motion are in good agreement. This validates the PF model for the determination of nanoscale phenomena, and enables an efficient investigation of nanoscale as well as larger scenarios. (C) 2019 Elsevier B.Y. All rights reserved.

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