The Experts below are selected from a list of 48 Experts worldwide ranked by ideXlab platform
Rogier Nijssen - One of the best experts on this subject based on the ideXlab platform.
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Advances in wind turbine blade Design and materials - Advances in wind turbine blade Design and materials
2013Co-Authors: Povl Brøndsted, Rogier NijssenAbstract:Part 1 Wind turbine blade Design: challenges and developments: Introduction to wind turbine blade Design Loads on wind turbine Blades Aerodynamic Design of wind turbine rotors Aerodynamic characteristics of wind turbine blade airfoils Aeroelastic Design of wind turbine Blades. Part 2 Fatigue behaviour of composite wind turbine Blades: Fatigue as a Design driver for composite wind turbine Blades Effects of resin and reinforcement variations on fatigue resistance of wind turbine Blades Fatigue life prediction of wind turbine blade composite materials Micromechanical modelling of wind turbine blade materials Probabilistic Design of wind turbine Blades. Part 3 Advances in wind turbine blade materials, development and testing: Biobased composites: materials, properties and potential applications as wind turbine blade materials Surface protection and coatings for wind turbine rotor Blades Design, manufacture and testing of small wind turbine Blades Wind turbine blade structural performance testing.
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advances in wind turbine blade Design and materials
2013Co-Authors: Povl Brøndsted, Rogier NijssenAbstract:Part 1 Wind turbine blade Design: challenges and developments: Introduction to wind turbine blade Design Loads on wind turbine Blades Aerodynamic Design of wind turbine rotors Aerodynamic characteristics of wind turbine blade airfoils Aeroelastic Design of wind turbine Blades. Part 2 Fatigue behaviour of composite wind turbine Blades: Fatigue as a Design driver for composite wind turbine Blades Effects of resin and reinforcement variations on fatigue resistance of wind turbine Blades Fatigue life prediction of wind turbine blade composite materials Micromechanical modelling of wind turbine blade materials Probabilistic Design of wind turbine Blades. Part 3 Advances in wind turbine blade materials, development and testing: Biobased composites: materials, properties and potential applications as wind turbine blade materials Surface protection and coatings for wind turbine rotor Blades Design, manufacture and testing of small wind turbine Blades Wind turbine blade structural performance testing.
Ole Gunnar Dahlhaug - One of the best experts on this subject based on the ideXlab platform.
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tidal turbine Blades Design and dynamic loads estimation using cfd and blade element momentum theory
ASME 2011 30th International Conference on Ocean Offshore and Arctic Engineering, 2011Co-Authors: Ce Line Faudot, Ole Gunnar DahlhaugAbstract:The interest in tidal power is constantly increasing thanks to its high predictability, the huge potential of tides and the actual need for renewable energy. It explains the emergence of many tidal turbine Designs, especially in Europe, often inspired from wind turbines. All of them are at a more or less early stage of development. But because of the high density of water, environmental drag forces are very large compared with wind turbines of the same capacity. Therefore the knowledge acquired by the wind industry is certainly qualitatively useful, but it has to be reconsidered to be applicable to tidal turbines. The aim of the project presented in this paper is to create a 1 MW reference tidal turbine, whose small-scaled model has been tested in the towing tank of Marintek laboratory (Trondheim, Norway). The tests focused on dynamic loads, which are an important reason of failure, and thus will help tidal turbine Designers in their work by gaining valuable experience in turbine performance in various operating conditions. The chosen turbine has a horizontal axis and two Blades, which have been Designed using the blade element momentum theory for a diameter of 20m. This paper states the project issues and the method used to Design the Blades, from the hydrodynamic properties of the hydrofoils to the computational fluid dynamic analysis. The tests on the small scaled model makes it possible to validate the concept and a comparison between efficiencies obtained analytically, experimentally and with CFD computation has been performed in this paper. The maximum power coefficient experimentally obtained is 0.427, i.e. 1.4% higher than the power coefficient obtained numerically. The blade element momentum theory is then used to estimate the loads on each blade when the rotor is subjected to regular waves of many heights and periods, with the intention of ranking the parameters of importance and introducing a fatigue analysis.Copyright © 2011 by ASME
Povl Brøndsted - One of the best experts on this subject based on the ideXlab platform.
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Advances in wind turbine blade Design and materials - Advances in wind turbine blade Design and materials
2013Co-Authors: Povl Brøndsted, Rogier NijssenAbstract:Part 1 Wind turbine blade Design: challenges and developments: Introduction to wind turbine blade Design Loads on wind turbine Blades Aerodynamic Design of wind turbine rotors Aerodynamic characteristics of wind turbine blade airfoils Aeroelastic Design of wind turbine Blades. Part 2 Fatigue behaviour of composite wind turbine Blades: Fatigue as a Design driver for composite wind turbine Blades Effects of resin and reinforcement variations on fatigue resistance of wind turbine Blades Fatigue life prediction of wind turbine blade composite materials Micromechanical modelling of wind turbine blade materials Probabilistic Design of wind turbine Blades. Part 3 Advances in wind turbine blade materials, development and testing: Biobased composites: materials, properties and potential applications as wind turbine blade materials Surface protection and coatings for wind turbine rotor Blades Design, manufacture and testing of small wind turbine Blades Wind turbine blade structural performance testing.
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advances in wind turbine blade Design and materials
2013Co-Authors: Povl Brøndsted, Rogier NijssenAbstract:Part 1 Wind turbine blade Design: challenges and developments: Introduction to wind turbine blade Design Loads on wind turbine Blades Aerodynamic Design of wind turbine rotors Aerodynamic characteristics of wind turbine blade airfoils Aeroelastic Design of wind turbine Blades. Part 2 Fatigue behaviour of composite wind turbine Blades: Fatigue as a Design driver for composite wind turbine Blades Effects of resin and reinforcement variations on fatigue resistance of wind turbine Blades Fatigue life prediction of wind turbine blade composite materials Micromechanical modelling of wind turbine blade materials Probabilistic Design of wind turbine Blades. Part 3 Advances in wind turbine blade materials, development and testing: Biobased composites: materials, properties and potential applications as wind turbine blade materials Surface protection and coatings for wind turbine rotor Blades Design, manufacture and testing of small wind turbine Blades Wind turbine blade structural performance testing.
Ce Line Faudot - One of the best experts on this subject based on the ideXlab platform.
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tidal turbine Blades Design and dynamic loads estimation using cfd and blade element momentum theory
ASME 2011 30th International Conference on Ocean Offshore and Arctic Engineering, 2011Co-Authors: Ce Line Faudot, Ole Gunnar DahlhaugAbstract:The interest in tidal power is constantly increasing thanks to its high predictability, the huge potential of tides and the actual need for renewable energy. It explains the emergence of many tidal turbine Designs, especially in Europe, often inspired from wind turbines. All of them are at a more or less early stage of development. But because of the high density of water, environmental drag forces are very large compared with wind turbines of the same capacity. Therefore the knowledge acquired by the wind industry is certainly qualitatively useful, but it has to be reconsidered to be applicable to tidal turbines. The aim of the project presented in this paper is to create a 1 MW reference tidal turbine, whose small-scaled model has been tested in the towing tank of Marintek laboratory (Trondheim, Norway). The tests focused on dynamic loads, which are an important reason of failure, and thus will help tidal turbine Designers in their work by gaining valuable experience in turbine performance in various operating conditions. The chosen turbine has a horizontal axis and two Blades, which have been Designed using the blade element momentum theory for a diameter of 20m. This paper states the project issues and the method used to Design the Blades, from the hydrodynamic properties of the hydrofoils to the computational fluid dynamic analysis. The tests on the small scaled model makes it possible to validate the concept and a comparison between efficiencies obtained analytically, experimentally and with CFD computation has been performed in this paper. The maximum power coefficient experimentally obtained is 0.427, i.e. 1.4% higher than the power coefficient obtained numerically. The blade element momentum theory is then used to estimate the loads on each blade when the rotor is subjected to regular waves of many heights and periods, with the intention of ranking the parameters of importance and introducing a fatigue analysis.Copyright © 2011 by ASME
Thomas D Ashwill - One of the best experts on this subject based on the ideXlab platform.
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alternative composite materials for megawatt scale wind turbine Blades Design considerations and recommended testing
Journal of Solar Energy Engineering-transactions of The Asme, 2003Co-Authors: Dayton A Griffin, Thomas D AshwillAbstract:As part of the U.S. Department of Energy’s Wind Partnerships for Advanced Component Technologies program, Global Energy Concepts LLC (GEC) is performing a study concerning Blades for wind turbines in the multi-megawatt range. Earlier in this project constraints were identified to cost-effective scaling-up of the current commercial blade Designs and manufacturing methods, and candidate innovations in composite materials, manufacturing processes and structural configurations were assessed. In the present work, preliminary structural Designs are developed for hybrid carbon fiber / fiberglass Blades at system ratings of 3.0 and 5.0 megawatts. Structural performance is evaluated for various arrangements of the carbon blade spar. Critical performance aspects of the carbon material and blade structure are discussed. To address the technical uncertainties identified, recommendations are made for new testing of composite coupons and blade sub-structure