Design and Simulation of Vertical Axis Wind Turbine with Naca 0021 Rotor Angle Desain Dan Simulasi Turbin Angin Sumbu Vertikal Dengan Sudu Rotor Naca 0021

Main Article Content

Dieniar N Ramadhani

Abstract

Much human energy needs are obtained from fossil fuels. This fossil energy is decreasing day by day. So that the utilization of natural energy such as solar energy, water energy and wind energy is being developed. Wind energy is energy that we can find, so it is very easy to use by using a turbine as the driving force. The vertical axis wind turbine is a type of wind turbine that is easier to apply in places where wind potential is not too large. This research was conducted by means of simulation using Qblade v0.963 software by comparing the influence generated from several numbers of wind turbine rotor blades. From the simulation process, it is known that the wind turbine rotor blades with 4 blades are the wind turbines capable of producing the greatest power, which is 75 Watts at a low TSR. So that in the manufacturing process it does not require large costs, but it still has to be built rigid and solidly.

Downloads

Download data is not yet available.

Article Details

How to Cite
[1]
D. N. Ramadhani, “Design and Simulation of Vertical Axis Wind Turbine with Naca 0021 Rotor Angle”, PELS, vol. 1, no. 1, Mar. 2021.
Section
Mechanical Engineering

References

[1] F. Kanyako, “Vertical Axis Wind Turbine Performance Prediction , High and Low Fidelity Analysis,” 2014.
[2] C. Nguyen, T. Le, and P. Tran, “A Numerical Study of Thickness Effect of the Symmetric NACA 4-Digit Airfoils on Self Starting Capability of a 1kW H-Type Vertical Axis Wind Turbine A numerical study of thickness effect of the symmetric NACA 4-digit airfoils on self starting capability of,” no. February, 2015.
[3] R. Firdaus, T. Kiwata, K. Nagao, and T. Kono, “The influence of the number of rotor blades on the performance of orthopter wind turbine,” vol. 08008, pp. 4–7, 2018.
[4] F. T. Industri, “NUMERICAL STUDY OF DARRIEUS WIND TURBINE WITH VARIATION OF THE NUMBER,” 2016.
[5] E. Pane, “Optimasi perancangan turbin angin vertikal tipe darrieus untuk penerangan di jalan tol,” no. November, pp. 1–2, 2017.
[6] P. M. Kumar, K. Sivalingam, and T. Lim, “clean technologies Strategies for Enhancing the Low Wind Speed Performance of H-Darrieus Wind Turbine — Part 1,” pp. 185–204, 2019.
[7] F. M. H. M. Alqurashi, “Aerodynamic Forces Affecting the H-Rotor Darrieus,” vol. 2020, 2020.
[8] D. Marten, G. Pechlivanoglou, and C. N. Nayeri, “QBLADE : An Open Source Tool for Design and Simulation of Horizontal and Vertical Axis Wind Turbines QBLADE : AN OPEN SOURCE TOOL FOR DESIGN AND SIMULATION OF HORIZONTAL AND VERTICAL AXIS WIND TURBINES,” no. March, 2013.
[9] J. V. Tuapetel et al., “ANALISIS DAN PENGUJIAN KINERJA TURBIN ANGIN SAVONIUS 4 SUDU,” vol. 3, no. 2, pp. 46–52, 2019.
[10] E. E. Widodo, “Unjuk Kerja Turbin Angin Darrieus Tipe H Berpenampang Sudu NACA 2415 Dengan Tiga Variasi Diameter,” 2019.