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Comparative Study of 3-Bladed and Sсissors Tail Rotors Aerodynamics in Axial Flow


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DOI: https://doi.org/10.15866/irease.v15i2.21284

Abstract


The paper is focused on the numerical study of the aerodynamic characteristics of 3-bladed and scissors tail rotors used on Mi-8/17 series helicopters. The hovering and axial flow modes, including the Vortex Ring State (VRS) area are considered. The free wake model developed by authors is used in the research. The study has been performed for two approaches: with a fixed blade pitch angle and with a fixed time-average thrust value. The dependences of the rotor thrust and torque coefficients vs. axial flow velocity and vs. number of revolutions of a rotor have been obtained. The vortex wake shapes and flow images via streamlines have been analyzed. The comparative analysis of the results has been performed. Scissors rotor demonstrates better aerodynamic characteristics in comparison with 3-bladed rotor. Among them: increased hovering efficiency, lower level of thrust and torque pulsations in the VRS modes, smaller power consumption while constant thrust. The authors came to the conclusion about the greater efficiency of the aerodynamic design of scissors tail rotor compared to 3-bladed rotor both in hover and in the VRS modes area.
Copyright © 2022 The Authors - Published by Praise Worthy Prize under the CC BY-NC-ND license.

Keywords


Tail Rotor; Free Wake Model; Hover; Vortex Ring State; Aerodynamic Performance

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References


J. Drees, W. P. Hendal, The Field of Flow through a Helicopter Rotor Obtained from Wind Tunnel Smoke Tests. Journal of Aircraft Engineering, 1951, 23(226) 107.
https://doi.org/10.1108/eb032021

J. Castles, R. B. Gray, Empirical Relation between Induced Velocity, Trust, and Rate of Descent of a Helicopter Rotors as Determined by Wind-Tunnel Tests on Four Model Rotors, NACA TN-2474, (1951).
https://archive.org/details/nasa_techdoc_19930083181

P. F. Yaggy, K. W. Mort, Wind-Tunnel Tests of Two VTOL Propellers in Descent, NASA TN D-1766, (1963).
https://archive.org/details/nasa_techdoc_19630003345/mode/2up

K. Washizu et al, Experiments on a Model Helicopter Rotor Operating in the Vortex Ring State, J Aircr 1966;3:225-30.
https://doi.org/10.2514/3.43729

R. W. Empey, R. A. Ormiston, Tail-Rotor Thrust on a 5.5-Foot Helicopter Model in Ground Effect. The 30th annual forum of the American helicopter society, (1974).

H. Xin, Z. Gao, A Prediction of the Helicopter Vortex-ring State Boundary, Journal of Experiments in Fluid Mechanics, 1996;01:14-19.

P. Brinson, T. Ellenrieder, Experimental Investigation of the Vortex Ring Condition. The 24th European Rotorcraft Forum, (1998).

M. D. Betzina, Tiltrotor Descent Aerodynamics: A Small-Scale Experimental Investigation of Vortex Ring State. The 57rd annual forum of the American Helicopter Society, (2001).

R. Green et al, The flow field around a rotor in axial descent, Journal of Fluid Mechanics, Vol. 534, 2005, pp. 237-261.2005.
https://doi.org/10.1017/S0022112005004155

F. X. Caradonna, Performance measurement and wake characteristics of a model rotor in axial flight, J Am Helicopter Soc 44(2):101-108.
https://doi.org/10.4050/JAHS.44.101

J. Stack et al, Flow Visualizations and Extended Thrust Time Histories of Rotor Vortex Wakes in Descent, J Am Helicopter Soc, 2005;50:279-88.
https://doi.org/10.4050/1.3092864

V. V. Efimov, K. O., Chernigin, Vortex ring state as a cause of a single-rotor helicopter unanticipated yaw, AS, 2022.
https://doi.org/10.1007/s42401-021-00128-4

J. G. Leishman et al, Free-Vortex Wake Predictions of the Vortex Ring State for Single Rotor and Multi-Rotor Configurations. The 58th annual forum of the American Helicopter Society, (2002).

R. Celi, M. Ribera, Time Marching Simulation Modeling in Axial Descending through the Vortex Ring State. The 63rd annual forum of the American Helicopter Society, (2007).

J. Bailly, A Qualitative Analysis of Vortex Ring State Entry Using a Fully Time Marching Unsteady Wake Model. The 36th European Rotorcraft Forum, (2010).

V. M. Shcheglova, Non-Stationary Rotor Flow in the Steep Descent State and the VRS, Uchenye Zapiski TsAGI, 2012; 43(3):51-8 (in Russian).
https://doi.org/10.1615/TsAGISciJ.2012005915

W. Stalewski, K. Surmacz, Investigations of the vortex ring state on a helicopter main rotor using the URANS solver, Aircraft Engineering and aerospace Technology, 2020, Vol. 92 No. 9, pp. 1327-1337.
https://doi.org/10.1108/AEAT-12-2019-0264

N. Mohd, G. Barakos, Performance and Wake Analysis of Rotors in Axial Flight Using Computational Fluid Dynamics, J Aerosp Technol Manag, 2017;9:193-202.
https://doi.org/10.5028/jatm.v9i2.623

M. P. Kinzel et al, An investigation of the behavior of a coaxial rotor in descent and ground effect. The AIAA Scitech 2019 Forum, (2019).
https://doi.org/10.2514/6.2019-1098

J. McQuaid et al, Early Onset Prediction for Rotors in Vortex Ring State, Journal of Aerospace Engineering, 2020, 33. 04020081.
https://doi.org/10.1061/(ASCE)AS.1943-5525.0001194

K. Ryan et al, Propeller and vortex ring state for floating offshore wind turbines during surge, Renewable Energy, 2020, Volume 155, 645-657.
https://doi.org/10.1016/j.renene.2020.03.105

J. Dong, A. Vire, Comparative analysis of different criteria for the prediction of vortex ring state of floating offshore wind turbines. Renewable Energy, 2021, 163. 882-909.
https://doi.org/10.1016/j.renene.2020.08.027

Yu. M. Ignatkin et al, A Nonlinear Blade Vortex Propeller Theory and Its Applications to Estimate Aerodynamic Characteristics for Helicopter Main Rotor and Anti-Torque Rotor, Vestnik MAI, Vol. 16, No. 5, 2009, pp. 24-31. (In Russian).
http://vestnikmai.ru/eng/publications.php?ID=12351&eng=Y

P. Makeev et al., Numerical study of the main rotor steep descent modes in the vortex ring state area, J. Phys.: Conf. Ser. 2021, 1925 012004.
https://doi.org/10.1088/1742-6596/1925/1/012004

P. V. Makeev et al, Numerical investigation of full scale coaxial main rotor aerodynamics in hover and vertical descent, Chinese Journal of Aeronautics, Volume 34, Issue 5, 2021, pp. 666-683.
https://doi.org/10.1016/j.cja.2020.12.011

M. G. Rozhdestvensky, Scissors rotor concept-new results obtained. The 52th annual forum of the American Helicopter Society, (1996).

G. H. Xu, An experimental and analytical investigation of scissors rotor aerodynamics in hover. The 60th annual forum of the American Helicopter Society, 2004, vol. 1, pp. 54-62.

G. H. Xu, Study on the Induced Velocity and Noise Characteristics of a Scissors Rotor. J Aircraft, 2007, 44. 806-811.
https://doi.org/10.2514/1.24460

Z. Zhu et al, Studies on vortex interaction mechanism and aerodynamic characteristic of scissors tail rotor. Chinese Journal of Theoretical and Applied Mechanics, Vol. 48(4), 2016, pp. 886-896.
https://doi.org/10.6052/0459-1879-15-338

D. Uehara et al, Hover Performance of Corotating and Counterrotating Coaxial Rotors, Journal of the American Helicopter Society. Vol. 38, No. 2, 2019, pp. 1-8.
https://doi.org/10.4050/JAHS.65.012006

M. Bhagwat, Co-rotating and Counter-rotating Coaxial Rotor Performance, AHS Aeromechanics Design for Transformative Vertical Flight, (2018).

S. Platzer et al, Investigation of the Flow Fields of Coaxial Stacked and Counter-Rotating Rotors Using PIV Measurements and URANS Simulations. Vertical Flight Society's 77th Annual Forum & Technology Display At: Virtual, (2021).

C. Coleman, A Survey of Theoretical and Experimental Coaxial Rotor Aerodynamic Research. Report №.: NASA TP-3675, (1997).

H. W. Kim, R. E. Brown, A Comparison of Coaxial and Conventional Rotor Performance, Journal of the American Helicopter Society, Vol. 55, No. 1, 2010.
https://doi.org/10.4050/JAHS.55.012004


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