This study proposes a numerical investigation for assessing the primary design parameters influencing the efficiency of a Darrieus type vertical axis wind turbine. The methodology consists in the numerical solution of the continuity and momentum equations utilizing the Unsteady Reynolds Averaged Navier-Stokes (URANS) approach. The turbulence closure model is the SST k - w , and the Finite Volume Method is applied to solve the three-dimensional geometries. The findings confirm that variations in solidity and aspect ratio of twisted blade turbines, in comparison to straight blade configurations, exert a similar influence on the torque coefficient, surpassing the impact of blade torsion angle variations. Results corroborated previous findings of literature about the fluctuations in the torque coefficient (Cm) being smoothed in 55% when helical blades are used in comparison with straight configuration. However, the increase in blade torsion angle corresponded to a decrease in the torque coefficient, with maximum difference of 37% when solidity (a) is a = 0.75 and the ratio between height and radius of the turbine is H/R = 1.5. Results also demonstrated that the increase in the solidity from a = 0.4 to 0.8 reduced the effect of the ratio H/R on the C m . The increase of a allowed a gain in C m of nearly 60%. For constant a and tip speed ratio (a), the increase of H/R from 2.5 to 7.5 led to an increase of 79% in C m . In general, results supplied a guideline on the influence of a , twisted angle, a , and H/R on the performance of helical Darrieus turbines.

Vieira, R.S., Pavlovic, A., Fragassa, C., Dos Santos, E.D., Petry, A.P. (2025). Complexity-Aware Design Analysis of the Efficiency in Darrieus Vertical Axis Wind Turbines. JOURNAL OF APPLIED AND COMPUTATIONAL MECHANICS, 11(1), 264-273 [10.22055/jacm.2024.46304.4496].

Complexity-Aware Design Analysis of the Efficiency in Darrieus Vertical Axis Wind Turbines

Pavlovic A.
;
Fragassa C.;
2025

Abstract

This study proposes a numerical investigation for assessing the primary design parameters influencing the efficiency of a Darrieus type vertical axis wind turbine. The methodology consists in the numerical solution of the continuity and momentum equations utilizing the Unsteady Reynolds Averaged Navier-Stokes (URANS) approach. The turbulence closure model is the SST k - w , and the Finite Volume Method is applied to solve the three-dimensional geometries. The findings confirm that variations in solidity and aspect ratio of twisted blade turbines, in comparison to straight blade configurations, exert a similar influence on the torque coefficient, surpassing the impact of blade torsion angle variations. Results corroborated previous findings of literature about the fluctuations in the torque coefficient (Cm) being smoothed in 55% when helical blades are used in comparison with straight configuration. However, the increase in blade torsion angle corresponded to a decrease in the torque coefficient, with maximum difference of 37% when solidity (a) is a = 0.75 and the ratio between height and radius of the turbine is H/R = 1.5. Results also demonstrated that the increase in the solidity from a = 0.4 to 0.8 reduced the effect of the ratio H/R on the C m . The increase of a allowed a gain in C m of nearly 60%. For constant a and tip speed ratio (a), the increase of H/R from 2.5 to 7.5 led to an increase of 79% in C m . In general, results supplied a guideline on the influence of a , twisted angle, a , and H/R on the performance of helical Darrieus turbines.
2025
Vieira, R.S., Pavlovic, A., Fragassa, C., Dos Santos, E.D., Petry, A.P. (2025). Complexity-Aware Design Analysis of the Efficiency in Darrieus Vertical Axis Wind Turbines. JOURNAL OF APPLIED AND COMPUTATIONAL MECHANICS, 11(1), 264-273 [10.22055/jacm.2024.46304.4496].
Vieira, R. S.; Pavlovic, A.; Fragassa, C.; Dos Santos, E. D.; Petry, A. P.
File in questo prodotto:
File Dimensione Formato  
10.22055_jacm.2024.46304.4496.pdf

accesso aperto

Tipo: Versione (PDF) editoriale / Version Of Record
Licenza: Licenza per Accesso Aperto. Creative Commons Attribuzione - Non commerciale (CCBYNC)
Dimensione 1.25 MB
Formato Adobe PDF
1.25 MB Adobe PDF Visualizza/Apri

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11585/1027478
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus 0
  • ???jsp.display-item.citation.isi??? 0
social impact