Validation of the mathematical model for the study of the aerodynamic characteristics of a propeller fan
Abstract
Keywords
Full Text:
PDF (Українська)References
Filippone, A. Historical development of the coaxial contra-rotating propeller. The Aeronautical Journal, 2023, vol. 127, iss. 1311, pp. 699-736. doi: 10.1017/aer.2022.92.
Dorsey, A. Uranga, A. Design Space Exploration of Future Open Rotor Configurations. AIAA Propulsion and Energy Forum. AIAA 2020-3680, 2020, pp. 1-30. doi: 10.2514/6.2020-3680.
Casablanca, М., Magrini, A., De Vanna, F., & Benini, E. A Comparative Investigation of Tip-Loss and Compressibility Correlations for Blade Element Momentum Theory Propeller Performance Analysis. 16th European Turbomachinery Conference Turbomachinery, Fluid Dynamics and Thermodynamics, ETC2025-161. Hannover, 2025, pp. 1-12.
Zhorny`k, O. V., Kravchenko, I. F., Mitraxovy`ch, M. M., & Deny`syuk, O. V. Obg`runtuvannya modeli turbulentnoyi v'yazkosti dlya doslidzhennya xaraktery`sty`k spivvisnogo gvy`ntoventy`lyatora i vxidnogo pry`stroyu GTD [Substantiation of a turbulent viscosity model for studying the characteristics of a coaxial propfan and input device of a gas turbine engine]. Aviacijno-kosmichna texnika i texnologiya – Aerospace Technic and Technology, 2021, no. 4sup1 (172), pp. 35-39. doi: 10.32620/aktt.2021.4.05. (in Ukrainian).
Usenko, V. Yu., Balalayeva, K. V., Mitraxovy`ch, M. M. Modelyuvannya techiyi v spivvisnomu gvy`ntoventy`lyatori z upravlinnyam pry`mezhovy`m sharom [Flow simulation in a coaxial fan with boundary layer control]. Aviacijno-kosmichna texnika i texnologiya – Aerospace Technic and Technology, 2021, no 4sup1 (173), pp. 35-40. doi: 10.32620/aktt.2021.4sup1.05. (in Ukrainian).
Plakushhy`j, D. O., & Kravchenko, I. F. Ocinka xaraktery`sty`k zakapotovanogo povorotnogo gvy`ntoventy`lyatora v pol`otny`x umovax [Evaluation of the characteristics of a ducted rotary propfan in flight conditions]. Aviacijno-kosmichna texnika i texnologiya – Aerospace Technic and Technology, 2024, no. 4sup1 (197), pp. 38-44. doi: 10.32620/aktt.2024.4sup1.06. (in Ukrainian).
Zhao, Н., Zhou, Li, Deng, W., & Wang, Z. Research on aerodynamic influence of contra-rotating propfan slipstream on propfan engine nacelle inlet. Journal Phys.: Conf. Ser. 2707 01209, 2024, pp. 1-17. doi: 10.1088/1742-6596/2707/1/012097.
Wei, Q., Chen, Z., Tong, F., Li, G., & Cui, P. Numerical Simulation of Noise Characteristics of Open Rotor. Journal Phys.: Conf. Ser. 2280 01205, 2022, pp. 1-7. doi: 10.1088/1742-6596/2280/1/012058.
Priebe, S., Jourdan, E., Mousavi, A., Karve, R., Chakrabarti, S., D’Aquila, L., Yi, J., Alhawwary, M., Bharadwaj Ananthan, V., Ramakrishnan, K., & Wood, T. Large Eddy Simulation of an Open Fan Blade at Full-scale Reynolds Number. ASME Turbo Expo 2024: Turbomachinery Technical Conference and Expositionm.GT2024-122704, 2024, pp.1-14.
Stajuda, M., Karczewski, M., Obidowski, D., & Jozwik, K. Development of a CFD model for propeller simulation. Mechanics and Mechanical Engineering, 2016, vol. 20, no. 4, pp. 581–598.
DeGeorge, C. L. Large scale advanced prop- fan (LAP), final report. NASA CR 182112, 1988. 254 p.
Campbell, W. A., Arseneaux, P. J., & Wainauski, H. S. Large scale advanced prop-fan (LAP) high speed wind tunnel test report. NASA CR 182125, 1988. 216 p.
Me Menter, F. R. Two-Equation Eddy-Viscosity Turbulence Models for Engineering Applications. AIAA Journal, 1994, no. 32, pp. 1598-1605. doi: org/10.2514/3.12149.
Langtry, R. B. A Correlation-Based Transition Model using Local Variables for Unstructured Parallelized CFD Code : Doctoral Thesis of Turbomachinery / Langtry Robin Blair. Stuttgart, 2006. 104 p. doi: org/10.12419/opus-1705.
Menter, F. R. Best Practice: generalized k-ω (GEKO) Two-Equation turbulence modeling in ANSYS CFD. ANSYS, 2021. Available et: https://ansys.com/content/dam/amp/2022/quick-request/Best-Practice-GEKO-Turbulance-Modeling-in-Ansys-CFD.pdf . (accessed 05 April 2025).
DOI: https://doi.org/10.32620/aktt.2025.4sup1.11