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Numerical Simulation of the Water Vapor Separation of a Moisture-Selective Hollow-Fiber Membrane for the Application in Wood Drying Processes.
Alikhani, Nasim; Bousfield, Douglas W; Wang, Jinwu; Li, Ling; Tajvidi, Mehdi.
Afiliação
  • Alikhani N; School of Forest Resources, University of Maine, Orono, ME 04469-5755, USA.
  • Bousfield DW; Department of Chemical and Biological Engineering, University of Maine, Orono, ME 04469-5737, USA.
  • Wang J; USDA Forest Service, Forest Products Laboratory, Madison, WI 53726-2398, USA.
  • Li L; School of Forest Resources, University of Maine, Orono, ME 04469-5755, USA.
  • Tajvidi M; School of Forest Resources, University of Maine, Orono, ME 04469-5755, USA.
Membranes (Basel) ; 11(8)2021 Jul 31.
Article em En | MEDLINE | ID: mdl-34436356
ABSTRACT
In this study, a simplified two-dimensional axisymmetric finite element analysis (FEA) model was developed, using COMSOL Multiphysics® software, to simulate the water vapor separation in a moisture-selective hollow-fiber membrane for the application of air dehumidification in wood drying processes. The membrane material was dense polydimethylsiloxane (PDMS). A single hollow fiber membrane was modelled. The mass and momentum transfer equations were simultaneously solved to compute the water vapor concentration profile in the single hollow fiber membrane. A water vapor removal experiment was conducted by using a lab-scale PDMS hollow fiber membrane module operated at constant temperature of 35 °C. Three operation parameters of air flow rate, vacuum pressure, and initial relative humidity (RH) were set at different levels. The final RH of dehydrated air was collected and converted to water vapor concentration to validate simulated results. The simulated results were fairly consistent with the experimental data. Both experimental and simulated results revealed that the water vapor removal efficiency of the membrane system was affected by air velocity and vacuum pressure. A high water vapor removal performance was achieved at a slow air velocity and high vacuum pressure. Subsequently, the correlation of Sherwood (Sh)-Reynolds (Re)-Schmidt (Sc) numbers of the PDMS membrane was established using the validated model, which is applicable at a constant temperature of 35 °C and vacuum pressure of 77.9 kPa. This study delivers an insight into the mass transport in the moisture-selective dense PDMS hollow fiber membrane-based air dehumidification process, with the aims of providing a useful reference to the scale-up design, process optimization and module development using hollow fiber membrane materials.
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Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2021 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2021 Tipo de documento: Article