In this study, a combination of CFD (Computational Fluid Dynamics) and BEM (Blade Element Momentum Method) methods are used to simulate the flow field around a wind turbine rotor with horizontal axis. The main objectives are to predict the aerodynamic performances such as forces and torque imposed on the rotor blades which are essential to its structure or design. This approach requires much less computing time and memory than three-dimensional simulation flow around the wind turbine rotor with simple CFD method. The flow is assumed unsteady, incompressible and fully turbulent. This work consists of two parts:
Analyses of the unsteady flow behaviour of a 5 MW horizontal-axis wind turbine (HAWT) rotor (Case I)...
This paper presents an aeroelastic formulation based on the Finite Element Method (FEM) to predict t...
The present work uses the blade element momentum theory method for evaluating the performance of hor...
In this study, a combination of CFD (Computational Fluid Dynamics) and BEM (Blade Element Momentum M...
AbstractA mathematical model is presented in this work, based on the Blade Element Momentum (BEM) th...
A horizontal axis wind turbine design and analysis have been investigated using a numerical code bas...
The present work aims to present two different approaches to model the unsteady aerodynamics of hori...
This article aims to study the forces applied to the rotors of horizontal axis wind turbines. The ae...
There are different methods to study flow characteristics around a wind turbine; common methods are ...
AbstractIn this study, a horizontal-axis wind turbine (HAWT) blade with 10,000 Watt power output has...
Wind energy has emerged as a major sustainable source of energy.The efficiency of wind power generat...
The aerodynamic performance of an upwind, three-bladed, small horizontal axis wind tur-bine (HAWT) r...
This paper demonstrates the potential of a compressible Navier–Stokes CFD method for the analysis of...
In this work, a mathematical model based on the compact Blade Element Momentum theory (BEM) is used ...
Analyses of the unsteady flow behaviour of a 5 MW horizontal-axis wind turbine (HAWT) rotor (Case I)...
Analyses of the unsteady flow behaviour of a 5 MW horizontal-axis wind turbine (HAWT) rotor (Case I)...
This paper presents an aeroelastic formulation based on the Finite Element Method (FEM) to predict t...
The present work uses the blade element momentum theory method for evaluating the performance of hor...
In this study, a combination of CFD (Computational Fluid Dynamics) and BEM (Blade Element Momentum M...
AbstractA mathematical model is presented in this work, based on the Blade Element Momentum (BEM) th...
A horizontal axis wind turbine design and analysis have been investigated using a numerical code bas...
The present work aims to present two different approaches to model the unsteady aerodynamics of hori...
This article aims to study the forces applied to the rotors of horizontal axis wind turbines. The ae...
There are different methods to study flow characteristics around a wind turbine; common methods are ...
AbstractIn this study, a horizontal-axis wind turbine (HAWT) blade with 10,000 Watt power output has...
Wind energy has emerged as a major sustainable source of energy.The efficiency of wind power generat...
The aerodynamic performance of an upwind, three-bladed, small horizontal axis wind tur-bine (HAWT) r...
This paper demonstrates the potential of a compressible Navier–Stokes CFD method for the analysis of...
In this work, a mathematical model based on the compact Blade Element Momentum theory (BEM) is used ...
Analyses of the unsteady flow behaviour of a 5 MW horizontal-axis wind turbine (HAWT) rotor (Case I)...
Analyses of the unsteady flow behaviour of a 5 MW horizontal-axis wind turbine (HAWT) rotor (Case I)...
This paper presents an aeroelastic formulation based on the Finite Element Method (FEM) to predict t...
The present work uses the blade element momentum theory method for evaluating the performance of hor...