Affiliation:
1. Department of Industrial Engineering, University of Florence, Via di Santa Marta 3, Firenze 50139, Italy
2. Chair of Fluid Dynamics, Hermann-Föttinger-Institut, Technische Universität Berlin, Müller-Breslau-Street 8, Berlin 10623 Germany
Abstract
Abstract
Wind turbines operate in challenging environmental conditions. In hot and dusty climates, blades are constantly exposed to abrasive particles that, according to many field reports, cause significant damages to the leading edge. On the other hand, in cold climates similar effects can be caused by prolonged exposure to hail and rain. Quantifying the effects of airfoil deterioration on modern multi-MW wind turbines is crucial to correctly schedule maintenance and to forecast the potential impact on productivity. Analyzing the impact of damage on fatigue and extreme loading is also important to improve the reliability and longevity of wind turbines. In this work, a blade erosion model is developed and calibrated using computational fluid dynamics (CFD). The Danmarks Tekniske Universitet (DTU) 10 MW Reference Wind Turbine is selected as the case study, as it is representative of the future generation wind turbines. Lift and Drag polars are generated using the developed model and a CFD numerical setup. Power and torque coefficients are compared in idealized conditions at two wind speeds, i.e., the rated speed and one below it. Full aero-servo-elastic simulations of the turbine are conducted with the eroded polars using NREL's BEM-based code OpenFAST. Sixty-six 10-min simulations are performed for each stage of airfoil damage, reproducing operating conditions specified by the IEC 61400-1 power production DLC-group, including wind shear, yaw misalignment, and turbulence. Aeroelastic simulations are analyzed, showing maximum decreases in CP of about 12% as well as reductions in fatigue and extreme loading.
Subject
Mechanical Engineering,Energy Engineering and Power Technology,Aerospace Engineering,Fuel Technology,Nuclear Energy and Engineering
Reference34 articles.
1. IEC61400-1:2005 Wind Turbines—Part1: Design Requirements;International Electrotechnical Commisison,2005
2. A Review of Surface Engineering Issues Critical to Wind Turbine Performance;Renewable Sustainable Energy Rev.,2009
3. Why Inspect Wind Turbine Blades?,2014
4. Rotor Blade Leading Edge Erosion—Real Life Experiences
5. On Erosion Issues Associated With the Leading Edge of Wind Turbine Blades;J. Phys. D: Appl. Phys.,2013