Article
Boudis A, Oualli H, Benzaoui A, Guerri O, Bayeul-Laine AC, Coutier-Delgosha O (2021) Effects on non-sinusoidal motion and effective angle of attack on energy extraction performance of a fully-acctivated flapping foil. JAFM 14(2):485–498
Dumas G, Kinsey T (2006) Eulerian simulations of oscillating airfoils in power extraction regime. In: Rahman M, Brebbia CA (eds) Advanced in Fluid Mechanics Ⅵ. WIT Press, Southampton, pp 245-254
10.2495/AFM06025Jeong D, Ko JH (2025) A performance analysis of a flapping-foil hydrokinetic turbine mimicking a four-limb swimming creature. JMSE 13(10):1894
10.3390/jmse13101894Jeong D, Le Dang HN, Ko JH (2023) Investigation of phase difference and separation distance effects in the design of a dual flapping hydrofoil turbine. Energy Sci Eng 11:2725–2741
10.1002/ese3.1483Lan S, Sun M (2001) Aerodynamic force and flow structures of two airfoils in flapping motions. Acta Mechanica Sinica 17(4):310–331
10.1007/BF02487459Le Dang HN, Le TQ, Jeong D, Ko JH (2022) Camber effect on the stability and power performance of a right-swing hydrofoil turbine. Int J Nav Archit Ocean Eng 14:100466
10.1016/j.ijnaoe.2022.100466Le TQ, Ko JH (2015) Effect of hydrofoil flexibility on the power extraction of a flapping tidal generator via two-and three-dimensional flow simulations. Renew Energy 80:275–285
10.1016/j.renene.2015.01.068Lin X, Wu J (2019) Effect of a tail with non-uniform flexibility on flapping foil dynamics. Adv Appl Math Mech 11(5):1159–1176
10.4208/aamm.OA-2018-0251Liu Z, Qu H, Song X, Chen Z (2025) A state-of-the-art review on energy-harvesting performance of the flapping hydrofoil with influential parameters. Renew Energy 245:122849
10.1016/j.renene.2025.122849McKinney W, DeLaurier J (1981) The wingmill: an oscillating-wing windmill. J Energy 5(2):109–115
10.2514/3.62510Mo W, He G, Wang J, Zhang Z, Wang J, Liu P, Ghassemi H, Yang H (2024) Hydrodynamic characteristics of wing-in-ground effect oscillating hydrofoil on power extraction performance. Energy Rep 11:2991–3004
10.1016/j.egyr.2024.02.052Park SH, Kwon JH (2004) Implementation of k-ω turbulence models in an implicit multigrid method. AIAA J 42(7):1348–1357
Qu Q, Wang W, Liu P, Agarwal RK (2015) Airfoil aerodynamics in ground effect for wide range of angles of attack. AIAA J 53(4):1–14
10.2514/1.J053366Wang Z, Chang X, Hou L, Gao N, Chen W, Tian Y (2022) Optimal matching of flapping hydrofoil propulsion performance considering interaction effects of motion parameters. JMSE 10(7):Article 853
10.3390/jmse10070853Xu W, Xu G, Duan W, Song Z, Lei J (2019) Experimental and numerical study of a hydrokinetic turbine based on tandem flapping hydrofoils. Energy 174:375–385
10.1016/j.energy.2019.02.188Zhang Y, Wang Y, Xie Y, Sun G, Han J (2022) Effects of flexibility on energy extraction performance of an oscillating hydrofoil under a semi-activated mode. Energy 242:122940
10.1016/j.energy.2021.122940Zhao F, Jiang Q, Wang Z, Qadri MNM, Li L, Tang H (2023) Interaction of two fully passive flapping foils arranged in tandem and its influence on flow energy harvesting. Energy 268:126714
10.1016/j.energy.2023.126714Zheng M, Bai Y (2022) The configuration effect of flapping foils for energy harvesting. Physics of Fluids 34:113608
10.1063/5.0121283Zhou J, Yan W, Mei L, Shi W (2023) Performance of semi-active flapping hydrofoil with arc trajectory. Water 15(2):269
10.3390/w15020269- Publisher :Korea Institute of Ocean Science and Technology
- Publisher(Ko) :한국해양과학기술원
- Journal Title :Ocean and Polar Research
- Journal Title(Ko) :Ocean and Polar Research
- Volume : 48
- Pages :1-11
- Received Date : 2025-11-30
- Revised Date : 2025-12-31
- Accepted Date : 2026-01-02
- Published Date : 2026-01-15
- DOI :https://doi.org/10.4217/OPR.2026002


Ocean and Polar Research







