TY - JOUR
T1 - Sizing Assessment of an H-Darrieus Hydrokinetic Turbine Based on Computational Fluid Dynamics for the Electrification of a Small Base in Tumaco, Colombia
AU - Arrieta-Gomez, Mateo
AU - Rodríguez-Cabal, M. A.
AU - Vélez-García, Sebastián
AU - Gonzalez-Llorente, Jesus
N1 - Publisher Copyright:
© The Author(s) 2026. This article is licensed under a Creative Commons Attribution 4.0 International License, which permits the use, sharing, adaptation, distribution and reproduction in any medium or format, as long as appropriate credit to the original author(s) and the source is given by providing a link to the Creative Commons license and changes need to be indicated if there are any. The images or other third-party material in this article are included in the article's Creative Commons license, unless indicated otherwise in a credit line to the material. If material is not included in the article's Creative Commons license and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this license, visit http://creativecommons.org/ licenses/by/4.0/.
PY - 2026
Y1 - 2026
N2 - Remote communities in Colombia face considerable challenges in accessing reliable electricity. The economic and logistical limitations of expanding centralized grids have hindered development in these areas, underscoring the need for decentralized renewable energy alternatives, such as H-Darrieus hydrokinetic turbines. However, their performance under specific local hydrodynamic conditions has not been thoroughly investigated, limiting their adoption. This study proposes the design and numerical evaluation of an H-Darrieus turbine intended for a tributary of the Mira River, where the average flow velocity is 1.5m / s. The turbine's swept area was estimated at 2m² based on a target output of 1000 W, an average water temperature of 25.3°C, and an assumed power coefficient of 0.3. The resulting configuration consisted of a 0.17 m chord, 1 m radius, 1 m blade height, and three blades. The design was analyzed using both two-dimensional and three-dimensional computational fluid dynamics simulations. The 2D analysis predicted a power coefficient (Cp) at a tip-speed ratio (TSR) of 3.0, while the 3D simulation at TSR = 3.0 yielded a Cp of 0.37 and an output of 1279.3 W. With these results the required installed capacity was satisfied, demonstrating its viability as a solution for isolated regions.
AB - Remote communities in Colombia face considerable challenges in accessing reliable electricity. The economic and logistical limitations of expanding centralized grids have hindered development in these areas, underscoring the need for decentralized renewable energy alternatives, such as H-Darrieus hydrokinetic turbines. However, their performance under specific local hydrodynamic conditions has not been thoroughly investigated, limiting their adoption. This study proposes the design and numerical evaluation of an H-Darrieus turbine intended for a tributary of the Mira River, where the average flow velocity is 1.5m / s. The turbine's swept area was estimated at 2m² based on a target output of 1000 W, an average water temperature of 25.3°C, and an assumed power coefficient of 0.3. The resulting configuration consisted of a 0.17 m chord, 1 m radius, 1 m blade height, and three blades. The design was analyzed using both two-dimensional and three-dimensional computational fluid dynamics simulations. The 2D analysis predicted a power coefficient (Cp) at a tip-speed ratio (TSR) of 3.0, while the 3D simulation at TSR = 3.0 yielded a Cp of 0.37 and an output of 1279.3 W. With these results the required installed capacity was satisfied, demonstrating its viability as a solution for isolated regions.
KW - CFD
KW - Hydrokinetic Turbine
KW - Microgrids
KW - Operation conditions
UR - https://www.scopus.com/pages/publications/105032770066
U2 - 10.30919/es2096
DO - 10.30919/es2096
M3 - Journal Article
AN - SCOPUS:105032770066
SN - 2576-988X
VL - 40
JO - Engineered Science
JF - Engineered Science
M1 - 2096
ER -