[1] Allan J, Bansard J, Jones N, Luomi M, Tan JM, Sun Y (2021) Glasgow Climate Change Conference: 31 October-13 November 2021. New York: IISD Earth Negotiations Bulletin 12: 1-40
[2] Allen M, Antwi-Agyei P, Aragon-Durand F, Babiker M, Bertoldi P, Bind M, Brown S, Buckeridge M, Camilloni I, Cartwright A, Cramer W, Dasgupta P, Diedhiou A, Djalante R, Dong W, Ebi KL, Engelbrecht F, Fifita S, Ford J, Fu? S, et al. (2019) Global warming of 1.5 ℃: An IPCC special report on the impacts of global warming of 1.5 ℃ above pre-industrial levels and related global greenhouse gas emission pathways, in the context of strengthening the global response to the threat of climate change, sustainable development, and efforts to eradicate poverty. Laxenburg: International Institute for Applied Systems Analysis. https://pure.iiasa.ac.at/15716
[3] Bachant P, Wosnik M (2016) Effects of reynolds number on the energy conversion and near-wake dynamics of a high solidity vertical-axis cross-flow turbine. Energies 9(2):73. https://doi.org/10.3390/en9020073
[4] Balduzzi F, Melani PF, Soraperra G, Brighenti A, Battisti L, Bianchini A (2021) Some design guidelines to adapt a Darrieus vertical axis turbine for use in hydrokinetic applications. E3S Web of Conferences 312. Paris:EDP Sciences 08017. https://doi.org/10.1051/e3sconf/202131208017
[5] Balduzzi F, Bianchini A, Ferrara G, Ferrari L (2016a) Dimensionless numbers for the assessment of mesh and timestep requirements in CFD simulations of Darrieus wind turbines. Energy 97: 246-261. https://doi.org/10.1016/J.ENERGY.2015.12.111
[6] Balduzzi F, Bianchini A, Maleci R, Ferrara G, Ferrari L (2016b) Critical issues in the CFD simulation of Darrieus wind turbines. Renew Energy 85: 419-435. https://doi.org/10.1016/J.RENENE.2015.06.048
[7] Bianchini A, Balduzzi F, Bachant P, Ferrara G, Ferrari L (2017) Effectiveness of two-dimensional CFD simulations for Darrieus VAWTs: a combined numerical and experimental assessment. Energy Conversion and Management 136. https://doi.org/10.1016/j.enconman.2017.01.026
[8] Divakaran U, Ajith Ramesh A, Mohammad A, Velamati RK (2021) Effect of helix angle on the performance of helical vertical axis wind turbine. Energies 14(2): 3931-24. https://doi.org/10.3390/en14020393
[9] DNV (2021) Energy Transition Outlook 2022: A Global and Regional Forecast to 2050. Norway: DNV 1-39. https://energytransition.techint.com/media/1fmjo10p/dnv_energy_transition_outlook_2022_main_report.pdf
[10] Gielen D, Boshell F, Saygin D, Bazilian MD, Wagner N, Gorini R (2019) The role of renewable energy in the global energy transformation. Energy Strategy Reviews 24: 38-50. https://doi.org/10.1016/J.ESR.2019.01.006.
[11] Hand B, Kelly G, Cashman A (2017) Numerical simulation of a vertical axis wind turbine airfoil experiencing dynamic stall at high Reynolds numbers. Computers & Fluids 149: 12-30. https://doi.org/10.1016/J.COMPFLUID.2017.02.021
[12] International Energy Agency (IEA) (2022) World Energy Outlook 2022. Paris: IEA. Https://Www.IeaOrg/Reports/World-Energy-Outlook-2022/Executive-Summary 2022: 524
[13] Ismail MF, Vijayaraghavan K (2015) The effects of aerofoil profile modification on a vertical axis wind turbine performance. Energy 80: 20-31. https://doi.org/10.1016/J.ENERGY.2014.11.034
[14] Jafari M, Razavi A, Mirhosseini M (2018) Effect of airfoil profile on aerodynamic performance and economic assessment of H-rotor vertical axis wind turbines. Energy 165(Part A): 792-810. https://doi.org/10.1016/j.energy.2018.09.124
[15] Kamani D, Ardehali MM (2023) Long-term forecast of electrical energy consumption with considerations for solar and wind energy sources. Energy 268: 126617. https://doi.org/10.1016/j.energy.2023.126617
[16] Leonardo P, Chamorro REAA, Sotriopulos F (2012) Reynolds number dependence of turbulence statistics in the wake of wind turbines. Wind Energy 15: 733-742. https://doi.org/10.1002/we.501
[17] Li Y, Yang S, Feng F, Tagawa K (2023) A review on numerical simulation based on CFD technology of aerodynamic characteristics of straight-bladed vertical axis wind turbines. Energy Reports 9: 4360-4379. https://doi.org/10.1016/J.EGYR.2023.03.082
[18] Li Q, Maeda T, Kamada Y, Murata J, Shimizu K, Ogasawara T, Nakai A, Kasuya T (2016) Effect of solidity on aerodynamic forces around straight-bladed vertical axis wind turbine by wind tunnel experiments (depending on number of blades). Renew Energy 96: 928-939. https://doi.org/10.1016/j.renene.2016.05.054
[19] Lundin S, Forslund J, Carpman N, Grabbe M, Yuen K, Apelfr?jd S, Goude A, Leijon M (2013) The S?derfors Project: Experimental Hydrokinetic Power Station Deployment and First Results. 10th European Wave and Tidal Energy Conference (EWTEC 2013). Aalborg: DiVA
[20] Ma N, Lei H, Han Z, Zhou D, Bao Y, Zhang K, Zhou L, Chen C (2018) Airfoil optimization to improve power performance of a high-solidity vertical axis wind turbine at a moderate tip speed ratio. Energy 150: 236-252. https://doi.org/10.1016/j.energy.2018.02.115
[21] McTavish S, Feszty D, Nitzsche F (2013) Evaluating Reynolds number effects in small-scale wind turbine experiments. Journal of Wind Engineering and Industrial Aerodynamics 120: 81-90. https://doi.org/10.1016/j.jweia.2013.07.006
[22] Melani PF, Balduzzi F, Ferrara G, Bianchini A (2020) How to extract the angle attack on airfoils in cycloidal motion from a flow field solved with computational fluid dynamics? Development and verification of a robust computational procedure. Energy Conversion and Management 223:113284. https://doi.org/10.1016/j.enconman.2020.113284
[23] Melikoglu M (2018) Current status and future of ocean energy sources: A global review. Ocean Engineering 148: 563-573. https://doi.org/10.1016/J.OCEANENG.2017.11.045
[24] Miller MA, Duvvuri S, Hultmark M (2021) Solidity effects on the performance of vertical-axis wind turbines 1: E9. https://doi.org/10.1017/flo.2021.9
[25] Newell RG, Raimi D, Aldana G (2019) Global Energy Outlook 2019: The Next Generation of Energy. https://www.rff.org/publications/reports/global-energy-outlook-2019/
[26] Nguyen MT, Balduzzi F, Goude A (2021) Effect of pitch angle on power and hydrodynamics of a vertical axis turbine. Ocean Engineering 238:109335. https://doi.org/10.1016/J.OCEANENG.2021.109335
[27] Nguyen MT, Balduzzi F, Bianchini A, Ferrara G, Goude A (2020) Evaluation of the unsteady aerodynamic forces acting on a vertical-axis turbine by means of numerical simulations and open site experiments. Journal of Wind Engineering and Industrial Aerodynamics 198:104093. https://doi.org/10.1016/J.JWEIA.2020.104093
[28] OECD (2012) OECD environmental outlook to 2050. (2012-3-15) [2026-3-13] https://www.oecd.org/en/publications/oecd-environmental-outlook-to-2050_9789264122246-en.html
[29] Rainbird JM, Bianchini A, Balduzzi F, Peiró J, Graham JMR, Ferrara G, Ferrari L (2015) On the influence of virtual camber effect on airfoil polars for use in simulations of Darrieus wind turbines. Energy Conversion and Management 106: 373-384. https://doi.org/10.1016/j.enconman.2015.09.053
[30] Rezaeiha A, Montazeri H, Blocken B (2018) Towards optimal aerodynamic design of vertical axis wind turbines: Impact of solidity and number of blades. Energy 165(Part B): 1129-1148. https://doi.org/10.1016/j.energy.2018.09.192
[31] Sagharichi A, Zamani M, Ghasemi A (2018) Effect of solidity on the performance of variable-pitch vertical axis wind turbine. Energy 161: 753-775. https://doi.org/10.1016/j.energy.2018.07.160
[32] Subramanian A, Yogesh SA, Sivanandan H, Giri A, Vasudevan M, Mugundhan V, Velamati RK (2017) Effect of airfoil and solidity on performance of small scale vertical axis wind turbine using three dimensional CFD model. Energy 133: 179-190. https://doi.org/10.1016/j.energy.2017.05.118
[33] Shukla V, Kaviti AK (2017) Performance evaluation of profile modifications on straight-bladed vertical axis wind turbine by energy and Spalart Allmaras models. Energy 126: 766-795. https://doi.org/10.1016/J.ENERGY.2017.03.071
[34] Tong G, Li Y, Tagawa K, Feng F (2023) Effects of blade airfoil chord length and rotor diameter on aerodynamic performance of straight-bladed vertical axis wind turbines by numerical simulation. Energy 265:126325. https://doi.org/10.1016/j.energy.2022.126325
[35] Walker JM, Flack KA, Lust EE, Schultz MP, Luznik L (2014) Experimental and numerical studies of blade roughness and fouling on marine current turbine performance. Renew Energy 66: 257-267. https://doi.org/10.1016/j.renene.2013.12.012
[36] XFOIL (2026) XFOIL subsonic airfoil development system. [2025-12-23] https://web.mit.edu/drela/Public/web/xfoil/
[37] Yuen K, Lundin S, Grabbe M, Lalander E, Goude A, Leijon M (2011) The S?derfors Project: Construction of an Experimental Hydrokinetic Power Station. The 9th European Wave and Tidal Energy Conference, Southampton. Southampton 5-9
[38] Zamani M, Nazari S, Moshizi SA, Maghrebi MJ (2016a) Three dimensional simulation of J-shaped Darrieus vertical axis wind turbine. Energy 116(Part 1): 1243-1255. https://doi.org/10.1016/J.ENERGY.2016.10.031
[39] Zamani M, Maghrebi MJ, Varedi SR (2016b) Starting torque improvement using J-shaped straight-bladed Darrieus vertical axis wind turbine by means of numerical simulation. Renewable Energy 95:109-126. https://doi.org/10.1016/J.RENENE.2016.03.069
[40] Zanforlin S, Deluca S (2018) Effects of the Reynolds number and the tip losses on the optimal aspect ratio of straight-bladed Vertical Axis Wind Turbines. Energy 148:179-195. https://doi.org/10.1016/J.ENERGY.2018.01.132
[41] Zhou Z, Benbouzid M, Charpentier JF, Scuiller F, Tang T (2017) Developments in large marine current turbine technologies-A review. Renewable and Sustainable Energy Reviews 71:852-858. https://doi.org/10.1016/J.RSER.2016.12.113
[42] Zhu H, Hao W, Li C, Ding Q (2019) Numerical study of effect of solidity on vertical axis wind turbine with Gurney flap. Journal of Wind Engineering and Industrial Aerodynamics 186: 17-31. https://doi.org/10.1016/J.JWEIA.2018.12.016