Al-Obaidi, A. (2018). Experimental and numerical investigations on the cavitation phenomenon in a centrifugal pump [thesis or dissertation,University of Huddersfield].
Al-Obaidi, A., Khalaf, H., & Alhamid, J. (2023a). Investigation of the influence of varying operation configurations on flow behaviors characteristics and hydraulic axial-flow pump performance. Proceedings of the 4th International Conference on Science Education in The Industrial Revolution 4.0, ICONSEIR 2022, November 24th, 2022, Medan, Indonesia.
Al-Obaidi, A., Khalaf, H., & Alhamid, J. (2023b). Investigation on the characteristics of internal flow within three-dimensional axial pump based on different flow conditions. Proceedings of the 4th International Conference on Science Education in The Industrial Revolution 4.0, ICONSEIR 2022, November 24th, 2022, Medan, Indonesia.
Al-Obaidi, A. R. (2019). Investigation of effect of pump rotational speed on performance and detection of cavitation within a centrifugal pump using vibration analysis. Heliyon, 5(6).
Al-Obaidi, A. R. (2023a). Effect of different guide vane configurations on flow field investigation and performances of an axial pump based on CFD analysis and vibration investigation.
Experimental Techniques, 1-20.
https://doi.org/10.1007/s40799-023-00641-5
Al-Obaidi, A. R. (2023b). Experimental diagnostic of cavitation flow in the centrifugal pump under various impeller speeds based on acoustic analysis method.
Archives of Acoustics,
48(2), 159-170.
https://doi.org/10.24425/aoa.2023.145234
Al-Obaidi, A. R., & Alhamid, J. (2023). Investigation of the Main flow characteristics mechanism and flow dynamics within an axial flow pump based on different transient load conditions.
Iranian Journal of Science and Technology-Transactions of Mechanical Engineering, 1-19.
https://doi.org/10.1007/s40997-022-00586-x
Al-Obaidi, A. R., & Qubian, A. (2022). Effect of outlet impeller diameter on performance prediction of centrifugal pump under single-phase and cavitation flow conditions.
International Journal of Nonlinear Sciences and Numerical Simulation,
23(7-8), 1203-1229.
https://doi.org/10.1515/ijnsns-2020-0119
Almohammadi, K. M., Ingham, D. B., Ma, L., & Pourkashan, M. (2013). Computational fluid dynamics (CFD) mesh independency techniques for a straight blade vertical axis wind turbine.
Energy,
58, 483-493.
https://doi.org/10.1016/j.energy.2013.06.012
Ansys, I. (2018). ANSYS fluent user’s guide, release 19.0. ANSYS Inc, Canonsburg.
Arab, A., Javadi, M., Anbarsooz, M., & Moghiman, M. (2017). A numerical study on the aerodynamic performance and the self-starting characteristics of a Darrieus wind turbine considering its moment of inertia.
Renewable Energy,
107, 298-311.
https://doi.org/10.1016/j.renene.2017.02.013
Arpino, F., Scungio, M., & Cortellessa, G. (2018). Numerical performance assessment of an innovative Darrieus-style vertical axis wind turbine with auxiliary straight blades.
Energy Conversion and Management,
171, 769-777.
https://doi.org/10.1016/j.enconman.2018.06.028
Asr, M. T., Nezhad, E. Z., Mustapha, F., & Wiriadidjaja, S. (2016). Study on start-up characteristics of H-Darrieus vertical axis wind turbines comprising NACA 4-digit series blade airfoils.
Energy,
112, 528-537.
https://doi.org/10.1016/j.energy.2016.06.059
Baker, J. (1983). Features to aid or enable self starting of fixed pitch low solidity vertical axis wind turbines. Journal of Wind Engineering and Industrial Aerodynamics, 15(1-3), 369-380.
Balduzzi, F., Bianchini, A., Maleci, R., Ferrara, G., & Ferrari, L. (2016). Critical issues in the CFD simulation of Darrieus wind turbines.
Renewable Energy,
85, 419-435.
https://doi.org/10.1016/j.renene.2015.06.048
Bangga, G., Hutani, S., & Heramarwan, H. (2021). The effects of airfoil thickness on dynamic stall characteristics of high-solidity vertical axis wind turbines.
Advanced Theory and Simulations,
4(6), 2000204.
https://doi.org/ARTN200020410.1002/adts.202000204
Battisti, L., Benini, E., Brighenti, A., Dell'Anna, S., & Castelli, M. R. (2018). Small wind turbine effectiveness in the urban environment.
Renewable Energy,
129, 102-113.
https://doi.org/10.1016/j.renene.2018.05.062
Bhuyan, S., & Biswas, A. (2014). Investigations on self-starting and performance characteristics of simple H and hybrid H-Savonius vertical axis wind rotors.
Energy Conversion and Management,
87, 859-867.
https://doi.org/10.1016/j.enconman.2014.07.056
Celik, Y., Ingham, D., Ma, L., & Pourkashanian, M. (2022). Design and aerodynamic performance analyses of the self-starting H-type VAWT having J-shaped aerofoils considering various design parameters using CFD.
Energy,
251, 123881.
https://doi.org/ARTN12388110.1016/j.energy.2022.123881
Celik, Y., Ma, L., Ingham, D., & Pourkashanian, M. (2020). Aerodynamic investigation of the start-up process of H-type vertical axis wind turbines using CFD.
Journal of Wind Engineering and Industrial Aerodynamics,
204, 104252.
https://doi.org/ARTN10425210.1016/j.jweia.2020.104252
Chang, T. L., Tsai, S. F., & Chen, C. L. (2021). Optimal design of novel blade profile for savonius wind turbines. Energies, 14(12).
GWEC, G. W. E. C. (2023). Global Wind Report 2023. In: GWEC.
Hand, B., & Cashman, A. (2020). A review on the historical development of the lift-type vertical axis wind turbine: From onshore to offshore floating application.
Sustainable Energy Technologies and Assessments,
38, 100646.
https://doi.org/ARTN10064610.1016/j.seta.2020.100646
Hill, N., Dominy, R., Ingram, G., & Dominy, J. (2008). Darrieus turbines: The physics of self-starting.
Proceedings of the Institution of Mechanical Engineers, Part A: Journal of Power and Energy,
223(1), 21-29.
https://doi.org/10.1243/09576509jpe615
Kaya, M. N., Kose, F., Ingham, D., Ma, L., & Pourkashanian, M. (2018). Aerodynamic performance of a horizontal axis wind turbine with forward and backward swept blades.
Journal of Wind Engineering and Industrial Aerodynamics,
176, 166-173.
https://doi.org/10.1016/j.jweia.2018.03.023
Kumar, R., Raahemifar, K., & Fung, A. S. (2018). A critical review of vertical axis wind turbines for urban applications.
Renewable & Sustainable Energy Reviews,
89, 281-291.
https://doi.org/10.1016/j.rser.2018.03.033
Li, Q. A., Maeda, T., Kamada, Y., Murata, J., Shimizu, K., Ogasawara, T., . . . 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).
Renewable Energy,
96, 928-939.
https://doi.org/10.1016/j.renene.2016.05.054
Li, Q. A., Maeda, T., Kamada, Y., Shimizu, K., Ogasawara, T., Nakai, A., & Kasuya, T. (2017). Effect of rotor aspect ratio and solidity on a straight-bladed vertical axis wind turbine in three-dimensional analysis by the panel method.
Energy,
121, 1-9.
https://doi.org/10.1016/j.energy.2016.12.112
Li, Y., Zhao, S. Y., Qu, C. M., Feng, F., & Kotaro, T. (2019). effects of offset blade on aerodynamic characteristics of small-scale vertical axis wind turbine.
Journal of Thermal Science,
28(2), 326-339.
https://doi.org/10.1007/s11630-018-1058-4
Li, Y., Zhao, S. Y., Qu, C. M., Tong, G. Q., Feng, F., Zhao, B., & Kotaro, T. (2020). Aerodynamic characteristics of straight-bladed vertical axis wind turbine with a curved-outline wind gathering device.
Energy Conversion and Management,
203, 112249.
https://doi.org/ARTN11224910.1016/j.enconman.2019.112249
Lunt, P. (2005). An aerodynamic model for a vertical-axis wind turbine. MEng Project Report, School of Engineering, University of Durham, UK.
Maalouly, M., Souaiby, M., ElCheikh, A., Issa, J. S., & Elkhoury, M. (2022). Transient analysis of H-type Vertical Axis Wind Turbines using CFD.
Energy Reports,
8, 4570-4588.
https://doi.org/10.1016/j.egyr.2022.03.136
Mohamed, M. H., Dessoky, A., & Alqurashi, F. (2019). Blade shape effect on the behavior of the H-rotor Darrieus wind turbine: Performance investigation and force analysis.
Energy,
179, 1217-1234.
https://doi.org/10.1016/j.energy.2019.05.069
Mohamed, O. S., Ibrahim, A. A., Etman, A. K., Abdelfatah, A. A., & Elbaz, A. M. R. (2020). Numerical investigation of Darrieus wind turbine with slotted airfoil blades.
Energy Conversion and Management: X,
5, 100026.
https://doi.org/10.1016/j.ecmx.2019.100026
Nobile, R., Vandati, M., Barlow, J. F., & Mewburn-Crook, A. (2014). Unsteady flow simulation of a vertical axis augmented wind turbine: A two-dimensional study.
Journal of Wind Engineering and Industrial Aerodynamics,
125, 168-179.
https://doi.org/10.1016/j.jweia.2013.12.005
Rezaeiha, A., Montazeri, H., & Blocken, B. (2018a). Characterization of aerodynamic performance of vertical axis wind turbines: Impact of operational parameters.
Energy Conversion and Management,
169, 45-77.
https://doi.org/10.1016/j.enconman.2018.05.042
Rezaeiha, A., Montazeri, H., & Blocken, B. (2018b). Towards accurate CFD simulations of vertical axis wind turbines at different tip speed ratios and solidities: Guidelines for azimuthal increment, domain size and convergence.
Energy Conversion and Management,
156, 301-316.
https://doi.org/10.1016/j.enconman.2017.11.026
Sheldahl, R. E., Blackwell, B. F., & Feltz, L. V. (1978). Wind tunnel performance data for two- and three-bucket Savonius rotors.
Journal of Energy,
2(3), 160-164.
https://doi.org/10.2514/3.47966
Singh, M. A., Biswas, A., & Misra, R. D. (2015). Investigation of self-starting and high rotor solidity on the performance of a three S1210 blade H-type Darrieus rotor.
Renewable Energy,
76, 381-387.
https://doi.org/10.1016/j.renene.2014.11.027
Su, H., Dou, B. Z., Qu, T. M., Zeng, P., & Lei, L. P. (2020). Experimental investigation of a novel vertical axis wind turbine with pitching and self-starting function.
Energy Conversion and Management,
217, 113012.
https://doi.org/ARTN11301210.1016/j.enconman.2020.113012
Su, J., Lei, H., Zhou, D., Han, Z. L., Bao, Y., & Zhu, H. B. (2019). Aerodynamic noise assessment for a vertical axis wind turbine using Improved Delayed Detached Eddy Simulation.
Renewable Energy,
141, 559-569.
https://doi.org/10.1016/j.renene.2019.04.038
Sun, X. J., Zhu, J. Y., Hanif, A., Li, Z. J., & Sun, G. X. (2020). Effects of blade shape and its corresponding moment of inertia on self-starting and power extraction performance of the novel bowl-shaped floating straight-bladed vertical axis wind turbine.
Sustainable Energy Technologies and Assessments,
38, 100648.
https://doi.org/ARTN10064810.1016/j.seta.2020.100648
Tong, W. (2010). Wind power generation and wind turbine design. WIT press.
Twidell, J. (2021). Renewable energy resources. Routledge.
Wong, K. H., Chong, W. T., Sukiman, N. L., Shiah, Y. C., Poh, S. C., Sopian, K., & Wang, W. C. (2018). Experimental and simulation investigation into the effects of a flat plate deflector on vertical axis wind turbine.
Energy Conversion and Management,
160, 109-125.
https://doi.org/10.1016/j.enconman.2018.01.029
Worasinchai, S., Ingram, G. L., & Dominy, R. G. (2012). The physics of h-darrieus turbines self-starting capability: flapping-wing perspective. ASME Turbo Expo 2012: Turbine Technical Conference and Exposition.
Worasinchai, S., Ingram, G. L., & Dominy, R. G. (2016). The physics of H-Darrieus turbine starting behavior.
Journal of Engineering for Gas Turbines and Power-Transactions of the Asme,
138(6), 062605.
https://doi.org/Artn 06260510.1115/1.4031870
Zhu, H. T., Hao, W. X., Li, C., Luo, S., Liu, Q. S., & Gao, C. (2021). Effect of geometric parameters of Gurney flap on performance enhancement of straight-bladed vertical axis wind turbine.
Renewable Energy,
165, 464-480.
https://doi.org/10.1016/j.renene.2020.11.027