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    On the Intracycle Performance of an S-Shaped Vertical-Axis Autorotation Current Turbine by Computational Fluid Dynamics

    Source: Journal of Offshore Mechanics and Arctic Engineering:;2026:;volume( 148 ):;issue:003
    Author:
    Soares, Rodrigo Batista
    ,
    Fernandes, Antonio Carlos
    ,
    Sales Junior, Joel Sena
    DOI: 10.1115/1.4071267
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Abstract. This research article examines the intracycle performance of the S-shaped vertical-axis autorotation current turbine (VAACT). The investigation is performed by simulations using a two-dimensional computational fluid dynamics (CFD) model. The verification and validation (V&V) processes are as recommended practices from the International Towing Tank Conference (ITTC) 2023. The verification process includes checking the domain, grid, and time-step, leading to a convergent result with sufficient grid elements. The validation process uses comparison with the model results performed at the current channel of the Laboratory of Waves and Currents (LOC-COPPE/UFRJ). The test facility presents 22 m in length, 1.4 m in width, and a maximum flow velocity of about 0.50 m/s at 0.5 m water depth. In the present case, the investigation focuses on VAACT, a highly efficient S-shaped profile. In the CFD environment, the power take-off (PTO) system is modeled by adding an external torque due to the PTO system and the damping coefficient (Kt) into a user-defined function (UDF). The validation is performed at Reynolds numbers ranging from 70,000 to 135,000. The time series analysis indicates that lift (crossline) and drag (inline) forces are crucial to the turbine’s performance. The intracycle analysis shows that although the instantaneous efficiency is in phase with the drag force, the lift drives the device when the drag achieves smaller magnitudes close to 0- to 30-deg encounter angle. Additionally, the torque coefficient is in phase with the lift force, which implies that it can govern hydrodynamic performance. The analysis also reveals that the returning blade adds a resisting torque on the turbine, which impacts its performance, as represented by high-pressure points on this blade. The torque coefficient drops by 38% from 45 deg to 90 deg because of this resisting effect.
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      On the Intracycle Performance of an S-Shaped Vertical-Axis Autorotation Current Turbine by Computational Fluid Dynamics

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    https://yetl.yabesh.ir/yetl1/handle/yetl/4316474
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    contributor authorSoares, Rodrigo Batista
    contributor authorFernandes, Antonio Carlos
    contributor authorSales Junior, Joel Sena
    date accessioned2026-08-23T08:22:58Z
    date available2026-08-23T08:22:58Z
    date copyright2026/06/01
    date issued2026
    identifier issn0892-7219
    identifier otheromae-25-1123.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4316474
    description abstractAbstract. This research article examines the intracycle performance of the S-shaped vertical-axis autorotation current turbine (VAACT). The investigation is performed by simulations using a two-dimensional computational fluid dynamics (CFD) model. The verification and validation (V&V) processes are as recommended practices from the International Towing Tank Conference (ITTC) 2023. The verification process includes checking the domain, grid, and time-step, leading to a convergent result with sufficient grid elements. The validation process uses comparison with the model results performed at the current channel of the Laboratory of Waves and Currents (LOC-COPPE/UFRJ). The test facility presents 22 m in length, 1.4 m in width, and a maximum flow velocity of about 0.50 m/s at 0.5 m water depth. In the present case, the investigation focuses on VAACT, a highly efficient S-shaped profile. In the CFD environment, the power take-off (PTO) system is modeled by adding an external torque due to the PTO system and the damping coefficient (Kt) into a user-defined function (UDF). The validation is performed at Reynolds numbers ranging from 70,000 to 135,000. The time series analysis indicates that lift (crossline) and drag (inline) forces are crucial to the turbine’s performance. The intracycle analysis shows that although the instantaneous efficiency is in phase with the drag force, the lift drives the device when the drag achieves smaller magnitudes close to 0- to 30-deg encounter angle. Additionally, the torque coefficient is in phase with the lift force, which implies that it can govern hydrodynamic performance. The analysis also reveals that the returning blade adds a resisting torque on the turbine, which impacts its performance, as represented by high-pressure points on this blade. The torque coefficient drops by 38% from 45 deg to 90 deg because of this resisting effect.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleOn the Intracycle Performance of an S-Shaped Vertical-Axis Autorotation Current Turbine by Computational Fluid Dynamics
    typeJournal Paper
    journal volume148
    journal issue3
    journal titleJournal of Offshore Mechanics and Arctic Engineering
    identifier doi10.1115/1.4071267
    treeJournal of Offshore Mechanics and Arctic Engineering:;2026:;volume( 148 ):;issue:003
    contenttypeFulltext
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