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Please use this identifier to cite or link to this item: http://dspace.bits-pilani.ac.in:8080/jspui/handle/123456789/19405
Title: Thermodynamically admissible diffuse interface model for nanoscale transport of dense fluids
Authors: Rana, Anirudh Singh
Keywords: Mathematics
Interfacial fluid dynamics
Nanoscale heat transfer
Diffuse interface method
Liquid-vapor interface
Navier-stokes-korteweg model
Density gradient-dependent transport
Issue Date: May-2025
Abstract: We investigate interfacial fluid dynamics and heat transfer at nanoscales using an improved diffuse interface approach for liquid-vapor interfaces in non-equilibrium. Conventional Navier-Stokes-Korteweg (NSK) formulations often fail to accurately capture transport phenomena across extremely thin interfaces due to underestimation of interface resistances. In this work, we improve the NSK model by adding a production term in the momentum equation based on higher-order corrections. To enhance interface resistances, viscosity and thermal conductivity are made dependent on the density gradient, increasing resistance only within the interface region. The gradient-based coefficients are determined by fitting to solutions of the Enskog-Vlasov equation for Couette flow (see Struchtrup and Frezzotti, 2022). Applying these fitted equations to pure heat conduction and planar evaporation problems shows that the model accurately captures interfacial transport, making it a useful tool for studying nanoscale evaporation, thermal management, and droplet dynamics on solid surfaces.
URI: https://arxiv.org/abs/2505.15642
http://dspace.bits-pilani.ac.in:8080/jspui/handle/123456789/19405
Appears in Collections:Department of Mathematics

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