The present work describes methods for the integrated aero-structural optimization of wind turbines. The goal of the algorithms is to identify the structural and aerodynamic design characteristics that achieve the minimum cost of energy for a given wind turbine configuration. Given the strong couplings that exist between aerodynamic and structural design choices, the methods are formulated so as to address both problems simultaneously in an integrated manner, resulting in tools that may help avoid suboptimal solutions or lengthy design loops. All methods considered herein use the same high fidelity multibody aeroservoelastic simulation environment and operate the design according to standard certification guidelines. The methods, however, d...
Due to copyright restrictions, the access to the full text of this article is only available via sub...
The work reported in this paper deals with the development of a design system for the robust aerodyn...
The work reported in this paper deals with the development of a design system for the robust aerodyn...
The present work describes methods for the integrated aero-structural optimization of wind turbines....
We describe procedures for the multi-disciplinary design optimization of wind turbines, where design...
We describe procedures for the multi-disciplinary design optimization of wind turbines using high-fi...
We describe procedures for the multi-disciplinary design optimization of wind turbines, where design...
In the last decade, vertical axis wind turbines acquired notable interest in the renewable energy fi...
The process of designing a wind turbine blade involves many disciplines and is of an iterative chara...
A procedure based on MATLAB combined with ANSYS is presented and utilized for the aerodynamic and st...
The design of wind turbine blades is a true multi-objective engineering task. The aerodynamic effect...
A wind turbine rotor should capture as much wind power as possible. However, the more energy extract...
Traditionally, Aerodynamic Shape Optimization (ASO) and Structural Topology Optimization (STO) are c...
Modern and larger horizontal-axis wind turbines with power capacity reaching 15 MW and rotors of mor...
Due to copyright restrictions, the access to the full text of this article is only available via sub...
The work reported in this paper deals with the development of a design system for the robust aerodyn...
The work reported in this paper deals with the development of a design system for the robust aerodyn...
The present work describes methods for the integrated aero-structural optimization of wind turbines....
We describe procedures for the multi-disciplinary design optimization of wind turbines, where design...
We describe procedures for the multi-disciplinary design optimization of wind turbines using high-fi...
We describe procedures for the multi-disciplinary design optimization of wind turbines, where design...
In the last decade, vertical axis wind turbines acquired notable interest in the renewable energy fi...
The process of designing a wind turbine blade involves many disciplines and is of an iterative chara...
A procedure based on MATLAB combined with ANSYS is presented and utilized for the aerodynamic and st...
The design of wind turbine blades is a true multi-objective engineering task. The aerodynamic effect...
A wind turbine rotor should capture as much wind power as possible. However, the more energy extract...
Traditionally, Aerodynamic Shape Optimization (ASO) and Structural Topology Optimization (STO) are c...
Modern and larger horizontal-axis wind turbines with power capacity reaching 15 MW and rotors of mor...
Due to copyright restrictions, the access to the full text of this article is only available via sub...
The work reported in this paper deals with the development of a design system for the robust aerodyn...
The work reported in this paper deals with the development of a design system for the robust aerodyn...