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Comprehensive Theoretical Formulation and Numerical Simulation of the Internal Flow in Pressure-Swirl Atomizers Type Screw-Conveyer

Author

Listed:
  • Julio Ronceros

    (R&D Laboratory in Emerging Technologies, Universidad Peruana de Ciencias Aplicadas, Lima 15023, Peru)

  • Carlos Raymundo

    (R&D Laboratory in Emerging Technologies, Universidad Peruana de Ciencias Aplicadas, Lima 15023, Peru)

  • Gianpierre Zapata

    (R&D Laboratory in Emerging Technologies, Universidad Peruana de Ciencias Aplicadas, Lima 15023, Peru)

  • Wilder Namay

    (R&D Laboratory in Emerging Technologies, Universidad Peruana de Ciencias Aplicadas, Lima 15023, Peru)

  • Gustavo Ronceros

    (Faculty of Energy Engineering, Universidade Federal de Integração Latino-Americana (UNILA), Foz do Iguaçu 85870-650, Brazil)

Abstract

The present work shows the development of a comprehensive theoretical formulation for its application in the study of the internal flow of pressure-swirl atomizers with helical channels: “screw-conveyer”, which are characterized by presenting in their inlet channels, an angle of incidence or helix angle ψ . This angle originates a trigonometric factor ( cos ψ ) that must be considered in the geometrical characteristics parameter of pressure-swirl atomizer ( A h ), which consequently involves other geometric parameters, such as the annular section coefficient ( φ ), discharge coefficient ( C d ), spray angle ( 2 α ), etc., being relevant in the internal flow study and design of the pressure-swirl atomizers type screw-conveyer. This theoretical formulation integrates an internal ideal flow model (Abramovich theory) with a model that considers the influence of the liquid viscosity (Kliachko theory) and hydraulic resistance of Idelchik. For the validation of this theoretical formulation, numerical simulation was used, considering the commercial software Ansys Fluent 2023 R2 furthermore, hexahedral meshes were generated with the ICEM CFD software 2023, for four cases of helix angle ψ ( 15 ° , 30 ° , 45 ° and 60 ° ), with application of the RNG k - ε turbulence model and VOF multiphase model (volume of fluid) for the location of the liquid-gas interface and spray angle visualization.

Suggested Citation

  • Julio Ronceros & Carlos Raymundo & Gianpierre Zapata & Wilder Namay & Gustavo Ronceros, 2024. "Comprehensive Theoretical Formulation and Numerical Simulation of the Internal Flow in Pressure-Swirl Atomizers Type Screw-Conveyer," Energies, MDPI, vol. 17(21), pages 1-19, October.
  • Handle: RePEc:gam:jeners:v:17:y:2024:i:21:p:5414-:d:1510221
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    References listed on IDEAS

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    1. Jie Yang & Zhengpeng Chen & Guangyu Li & Xue Geng & Bo Yuan & Yong Chen, 2024. "Numerical Study on the Design of an Anti-Backflow Injector for Combustion Chambers," Energies, MDPI, vol. 17(13), pages 1-21, July.
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