Microstructural evolution in drying colloidal films driven by evaporation and sedimentation: lattice Boltzmann simulation and a mathematical model

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초록

Understanding the temporal evolution of particle distribution during the drying of colloidal films is essential for advancing the design and optimization of film properties. This study investigates the dynamics of colloidal particles during vertical drying using the lattice Boltzmann method. Simulation results reveal that the particle distribution during drying and the resulting film microstructure are governed by two key dimensionless numbers: the drying P & eacute;clet number (Pe) and the sedimentation P & eacute;clet number (Pesed). When the evaporation rate exceeds the sedimentation rate (Pe >> Pesed), particles accumulate near the air-liquid interface, ultimately forming a colloidal crystal in the top layer. Conversely, when sedimentation dominates (Pe << Pesed), similar accumulation and crystallization occur near the bottom substrate. These findings underscore the critical influence of drying and sedimentation dynamics on the final microstructural quality of colloidal films. To complement the simulation results, a one-dimensional mathematical drying model is developed, incorporating hydrodynamic hindrance and collective diffusivity effects resulting from particle accumulation. This model demonstrates quantitative agreement with simulation results across a wide range of Pe and Pesed. Using this model, new drying regime maps are constructed in the Pe and Pesed spaces, delineating distinct regions dominated by evaporation, diffusion, or sedimentation.

키워드

Interfaces (materials); Sedimentation; Vortex Flow; Colloidal Films; Colloidal Particle; Design And Optimization; Film Microstructures; Films Properties; Lattice Boltzmann Method; Lattice Boltzmann Simulations; Micro-structural; Particles Distribution; Temporal Evolution; Peclet Number; Article; Controlled Study; Crystallization; Diffusion; Diffusivity; Evaporation; Evolution; Hydrodynamics; Liquid; Mathematical Model; Pharmaceutics; Sedimentation; Sedimentation Rate; Simulation; PARTICLE DISTRIBUTION; SOLVENT EVAPORATION; SUSPENSIONS; STRATIFICATION; MIGRATION; DYNAMICS; BINDER
제목
Microstructural evolution in drying colloidal films driven by evaporation and sedimentation: lattice Boltzmann simulation and a mathematical model
저자
Yun, Jinseong; Chun, Byoungjin; Jung, Hyun Wook
DOI
10.1039/d4sm01498g
발행일
2025-03-26
유형
Article
저널명
Soft Matter
권
21
호
13
페이지
2430 ~ 2444