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Numerical and experimental evaluation of the performance of a gravitational vortex turbine rotor

Laura Velásquez (1), Rubio-Clemente A(1,2),
Chica E(1)

1. Grupo de Investigación Energía Alternativa, Facultad de Ingeniería, Universidad de Antioquia. Medellín, Colombia.


2. Escuela Ambiental, Facultad de Ingeniería, Universidad de Antioquia Medellín, Colombia.

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2026-01-20

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Abstract

In this study, the evaluation of the rotor performance of a gravitational vortex turbine (TVG) for its application in distributed power generation is presented. A numerical analysis was carried out on a specific configuration of a TVG, characterized by its spiral inlet and conical discharge. The dimensions of the discharge chamber and the inlet channel, such as the inlet channel width (w), length (L), and height (h), the discharge cone height (H) and diameter (d), and the envelope angle (γ) were determined through previous optimization studies documented in the literature. These dimensions are related to the basin diameter (D), which was set at 500 mm for this study. The ratios used, such as L/D, h/D, H/D, γ w/D and d/D were 1.518, 0.565, 1.572, 92.41°, 0.362, and 0.108, respectively.
The rotor has a curvature and a helical pitch angle of 68.8°, has 6 blades, a rotor height of 200 mm and the middle section of the rotor is 314.4 mm (0.4H) from the top of the discharge cone, with an lower and upper diameter of 151.60 mm and 284.44 mm. Using a three-dimensional computational domain and unsteady flow simulations, efficiency curves as a function of angular velocity were obtained. In addition, the TVG was manufactured and experimental tests were carried out on a laboratory-scale test bench to validate its performance. These tests allowed us to compare the experimental results (33.84% at 88 RPM) with the numerical results (32.67% at 106,667 RPM), revealing a difference of 3.37% between the maximum efficiency values. It is essential to continue the turbine optimization process to ensure that the designed TVG plays a role in fostering sustainability and facilitating the shift towards cleaner and sustainable energy alternatives.

Key words: Gravitational vortex turbines, distributed generation, renewable energy, hydraulic efficiency.

Published in: Renewable Energies, Environment & Power Quality Journal (REE&PQJ)
ISSUE: Vol. 24. No.1 Pages: 14-18
E-ISSN: 3020-531 X Date of Current Version: 2026-01-02
REF: 103 Issue Date: 2026-01-26
DOI:10.24084/reepqj24-103 Publisher: AEDERMACP/ EA4EPQ

References

[1] Xue, C., Shahbaz, M., Ahmed, Z., Ahmad, M., & Sinha, A. (2022). Clean energy consumption, economic growth, and environmental sustainability: what is the role of economic policy uncertainty?. Renewable Energy, 184, 899-907.

[2] Bei, J., & Wang, C. (2023). Renewable energy resources and sustainable development goals: Evidence based on green finance, clean energy and environmentally friendly investment. Resources Policy, 80, 103194.

[3] Østergaard, P. A., Duic, N., Noorollahi, Y., & Kalogirou, S. (2023). Advances in renewable energy for sustainable development. Renewable Energy, 119377.

[4] Pata, U. K., Erdogan, S., & Ozcan, B. (2023). Evaluating the role of the share and intensity of renewable energy for sustainable development in Germany. Journal of Cleaner Production, 421, 138482.

[5] Bajracharya, T. R., Shakya, S. R., Timilsina, A. B., Dhakal, J., Neupane, S., Gautam, A., & Sapkota, A. (2020). Effects of geometrical parameters in gravitational water vortex turbines with conical basin. Journal of Renewable Energy, 2020.

[6] Edirisinghe, D. S., Yang, H. S., Gunawardane, S. D. G. S. P., & Lee, Y. H. (2022). Enhancing the performance of gravitational water vortex turbine by flow simulation analysis. Renewable Energy, 194, 163-180.

[7] Kora, A. T., Ancha, V. R., & Tibba, G. S. (2022). Numerical analysis of the effect of runner-to-basin diameter ratio on the performance of gravitational water vortex turbine in a scroll basin. International Journal of Energy and Environmental Engineering, 13(4), 1317-1333.

[8] Velásquez, L., Posada, A., & Chica, E. (2022). Optimization of the basin and inlet channel of a gravitational water vortex hydraulic turbine using the response surface methodology. Renewable Energy, 187, 508-521.

[9] Velásquez, L., Posada, A., & Chica, E. (2023). Surrogate modeling method for multi-objective optimization of the inlet channel and the basin of a gravitational water vortex hydraulic turbine. Applied Energy, 330, 120357.

[10] Paish, O. (2002). Small hydro power: technology and current status. Renewable and Sustainable Energy Reviews, 6(6), 537-556.

[11] Chan, C. W., Seville, J. P., Fan, X., & Baeyens, J. (2009). Particle motion in CFB cyclones as observed by positron emission particle tracking. Industrial & Engineering Chemistry Research, 48(1), 253-261.

[12] Dhakal, S., Timilsina, A. B., Dhakal, R., Fuyal, D., Bajracharya, T. R., Pandit, H. P., & Nakarmi, A. M. (2015). Comparison of cylindrical and conical basins with optimum position of runner: Gravitational water vortex power plant. Renewable and Sustainable Energy Reviews, 48, 662-669.

[13] Dhakal, R., Bajracharya, T. R., Shakya, S. R., Kumal, B., Williamson, S., Khanal, K., Gautam, S., & Ghale, D. P. (2018). Computational and experimental investigation of runner for gravitational water vortex power plant. In 2017 IEEE 6th International Conference on Renewable Energy Research and Applications (ICRERA) (Vol. 373, p. 363).

[14] Zore, K., Azab, M., Sasanapuri, B., Shah, S., & Stokes, J. (2019, August). ANSYS scale resolving simulations of launch-vehicle configuration at transonic speeds. In 21st Annual CFD Symposium (pp. 8-9).

[15] Phillips, T. S., & Roy, C. J. (2014). Richardson extrapolation-based discretization uncertainty estimation for computational fluid dynamics. Journal of Fluids Engineering, 136(12), 121401.

[16] Baker, N., Kelly, G., & O'Sullivan, P. D. (2020). A grid convergence index study of mesh style effect on the accuracy of the numerical results for an indoor airflow profile. International Journal of Ventilation, 19(4), 300-314.

[17] Betancour, J., Romero-Menco, F., Velásquez, L., Rubio-Clemente, A., & Chica, E. (2023). Design and optimization of a runner for a gravitational vortex turbine using the response surface methodology and experimental tests. Renewable Energy, 210, 306-320.


 
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