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    Multiphysics modeling of wire-to-plate electrohydrodynamic drying with air crossflow

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    Artigo de Periódico
    Date
    2024
    Author
    Oishi, Tamires K.
    Pouzada, Eduardo V. S.
    Gut, Jorge Andrey Wilhelms
    Raghavan, Vijaya
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    Abstract
    Electrohydrodynamic (EHD) convective drying is a non-thermal energy-efficient technology to preserve heat-sensitive materials by dehydration. A high-voltage electrode is used to induce corona wind that increases convective heat and mass transfer in the material and air interface. A chamber used for EHD drying with a wire-to-plate configuration and additional air crossflow was modeled considering the finite element method in COMSOL Multiphysics (v.6.1). The concepts of electrostatics, turbulent flow, heat transfer in fluids and moisture and energy transport physics were combined iteratively to solve and predict the electric field strength, airflow, convective heat transfer coefficient and moisture removal. Different electric potential and air crossflow velocities were tested and their impact on the drying rate was quantified. Combining high voltage (0, 10, 15 and 20 kV) and air crossflow velocity (0, 1, and 2 m/s) was found to have a significant effect on the convective heat transfer coefficient and moisture removal; however, the increase in one of the drying factors had a low effect on drying time. The main results show that the proposed model can adequately simulate the EHD airflow phenomena and the drying process and can be used for product quality improvement, energy efficiency analysis and optimization studies. © The Author(s) under exclusive licence to Associação Brasileira de Engenharia Química 2024.
    1. Computational fluid dynamics
    2. Convective dehydration
    3. Corona discharge
    4. Dehydration
    5. Food processing
    6. Numerical simulation
    7. Air
    8. Drying
    9. Electric corona
    10. Electric potential
    11. Electrohydrodynamics
    12. Energy efficiency
    13. Heat convection
    14. Heat transfer coefficients
    15. Iterative methods
    16. Mass transfer
    17. Moisture
    18. Transport properties
    19. Wire
    20. Air cross-flow
    21. Convective drying
    22. Convective heat transfer
    23. Corona discharges
    24. Crossflow velocities
    25. Electrohydrodynamic drying
    26. Heat transfer co-efficients
    27. Moisture removal
    28. Multiphysics model
    URI
    https://www.scopus.com/inward/record.uri?eid=2-s2.0-85188173458&doi=10.1007%2fs43153-024-00450-2&partnerID=40&md5=a195b3120264787c3df66dae6f2cef3b
    https://repositorio.maua.br/handle/MAUA/1459
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