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◆ Desalination2025-11-27· Reynolds number

Experimental and numerical investigation of vacuum membrane distillation: Effects of Reynolds number and feed temperature on mass transfer, polarization, and energy consumption

Ali E. Anqi

原始摘要(英文原文)· Original abstract
This study investigates vacuum membrane distillation through integrated experimental measurements and three-dimensional Computational Fluid Dynamics (CFD) simulations across Reynolds numbers of 200 to 2400 and feed temperatures of 40 °C and 50 °C using polytetrafluoroethylene membranes. The CFD model solves the momentum, heat, and mass transfer equations without empirical correlations. Mass flux ranged from 14.68 to 21.48 kg/m 2 h at 40 °C and from 17.9 to 32.7 kg/m 2 h at 50 °C, representing 22–52 % enhancement at elevated temperatures owing to the exponentially higher vapor pressure. Temperature polarization decreases from 0.4 to 0.6 at low Reynolds numbers to 0.8 – 0.9 at high Reynolds numbers. Concentration polarization coefficients decrease from 1.4 to 1.6 to 1.1 – 1.15, demonstrating that enhanced convective mixing mitigates boundary layer effects. Nusselt and Sherwood numbers exhibit inverse relationships with temperature due to Stefan flow effects, with values 10 – 15 % higher at 40 °C. Energy consumption ranges from 663 to 917 kWh/m 3 , stabilizing at 680 – 700 kWh/m 3 at high Reynolds numbers. Scanning electron microscopy reveals maximum salt deposition at the channel entrance due to highest local flux and vacuum-induced instantaneous evaporation under 4 kPa permeate pressure. The CFD predictions demonstrate good agreement with experimental measurements at 40 °C with typical deviations of 5 – 10 %. The results establish that Reynolds number enhancement and temperature elevation both increase productivity under laminar flow conditions relevant for energy-efficient vacuum membrane distillation systems. • Temperature polarization level enhanced from 0.6 to 0.95 with increasing Reynolds number. • Optimized VMD achieves 56 % higher flux at 50 °C compared to 40 °C. • 3D CFD model, free of empirical correlations, deviates <8 % from experimental data. • 50 °C vs. 40 °C: 56 % higher flux, lower energy (680 vs. 690 kWh/m 3 ).
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Experimental and numerical investigation of vacuum membrane distillation: Effects of Reynolds number and feed temperature on mass transfer, polarization, and energy consumption — 科研速览 Science Skim