[1] Khakpour, Y., Bardakji, S., and Nair, S. Aerodynamic performance of wind turbine blades in dusty environments. ASME International Mechanical Engineering Congress and Exposition, Washington, D. C., 483-491(2007)
[2] Huang, C. W., Yang, K., Liu, Q., Zhang, L., Bai, J. Y., and Xu, J. Z. A study on performance influences of airfoil aerodynamic parameters and evaluation indicators for the roughness sensitivity on wind turbine blade. Scientia Sinica Technologica, 54, 2993-2998(2011)
[3] Sareen, A., Sapre, C., and Selig, M. Effects of Leading-Edge Protection Tape on Wind Turbine Blade Performance. Wind Engineering, 36, 525-534(2015)
[4] Sareen, A., Sapre, C. A., and Selig, M. S. Effects of leading edge erosion on wind turbine blade performance. Wind Energy, 17, 1531-1542(2015)
[5] Sayer, F., Bürkner, F., Buchholz, B., and Wingerde, A. M. V. Influence of a wind turbine service life on the mechanical properties of the material and the blade. Wind Energy, 16, 163-174(2013)
[6] Khalfallah, M. G. and Koliub, A. M. Effect of dust on the performance of wind turbines. Desalination, 209, 209-220(2007)
[7] Alden, A. M. H. and Diab, A. A preliminary study of the blade erosion for a wind turbine operating in a dusty environment. ASME International Mechanical Engineering Congress and Exposition, GT2016-57010, South Korea (2016)
[8] Ren, N. X. and Ou, J. P. Dust effect on the performance of wind turbine airfoils. Journal of Electromagnetic Analysis and Applications, 1, 102-107(2009)
[9] Tabakoff, W., Kotwal, R., and Hamed, A. Erosion study of different materials affected by coal ash particles. Wear, 52, 161-173(1979)
[10] Tabakoff, W., Hamed, A., and Metwally, M. Effect of particle size distribution on particle dynamics and blade erosion in axial flow turbines. Journal of Engineering for Gas Turbines and Power, 113, 607-615(1990)
[11] Tabakoff, W., Malak, M. F., and Hamed, A. Laser measurements of solid-particle rebound parameters impacting on 2024 aluminum and 6A1-4V titanium alloys. AIAA Journal, 25, 721-726(2015)
[12] Tabakoff, W. and Metwally, M. Coating effect on particle trajectories and turbine blade erosion. Journal of Engineering for Gas Turbines and Power, 114, 250-257(1992)
[13] Tabakoff, W. Review-turbomachinery performance deterioration exposed to solid particulates environment. Journal of Fluids Engineering, 106, 125-134(1984)
[14] Hussein, M. F. and Tabakoff, W. Dynamic behavior of solid particles suspended by polluted flow in a turbine stage. Journal of Aircraft, 10, 434-440(2012)
[15] Hussein, M. F. and Tabakoff, W. Computation and plotting of solid particle flow in rotating cascades. Computers and Fluids, 2, 1-15(1974)
[16] Grant, G. and Tabakoff, W. Erosion prediction in turbomachinery resulting from environmental solid particles. Journal of Aircraft, 12, 471-478(2012)
[17] Fiore, G. and Selig, M. S. A simulation of operational damage for wind turbine blades. 32nd AIAA Applied Aerodynamics Conference, AIAA 2014-2848, Atlanta (2014)
[18] Fiore, G. and Selig, M. S. Optimization of wind turbine airfoils subject to particle erosion. 33rd AIAA Applied Aerodynamics Conference, AIAA 2015-3393, Dallas (2015)
[19] Fiore, G. and Selig, M. S. Simulation of damage progression on wind turbine blades subject to particle erosion. 54th AIAA Aerospace Sciences Meeting, AIAA 2016-0813, San Diego (2016)
[20] Fiore, G. and Selig, M. S. Simulation of damage for wind turbine blades due to airborne particles. Wind Engineering, 39, 399-418(2015)
[21] Fiore, G. A Method to Estimate Wind Turbine Blade Damage and to Design Damage Resilient Blades, Ph. D. dissertation, University of Illinois at Urbana-Champaign, Illinois, 21-127(2016)
[22] Fiore, G., Fujiwara, G. E. C., and Selig, M. S. A damage assessment for wind turbine blades from heavy atmospheric particles. 53th AIAA Aerospace Sciences Meeting, AIAA 2015-1495, Florida (2015)
[23] Diab, A., Alden, A. M. H., and Alaa, M. Performance degradation of wind turbine airfoils due to dust contamination:a comparative numerical study. Turbine Technical Conference and Exposition, GT2015-44012, Canada (2015)
[24] Alden, A. M. H. and Diab, A. Assessment of losses in annual energy production of wind turbines subjected to sand erosion. Proceedings of International Conference on Fluid Dynamics, Cairo (2016)
[25] Li, D. S., Gong, Y. X., Li, R. N., Li, Y. R., and Ma, R. J. Critical Stokes number for gassolid flow erosion of wind turbine airfoil. Transactions of Nanjing University of Aeronautics and Astronautics, 33, 67-72(2016)
[26] Wen, X. Q., Liu, Y. W., Fang, L., and Lu, L. P. Improving the capability of k-ω SST turbulence model for predicting stall characteristics of airfoil (in Chinese). Journal of Beijing University of Aeronautics and Astronautics, 39, 1127-1132(2013)
[27] Zhong, W. and Wang, T. G. Influence of closure coefficient of turbulence model on CFD simulations of s series airfoils (in Chinese). Taiyangneng Xuebao/Acta Energiae Solaris Sinica, 34, 1690-1696(2013)
[28] Wood, K. Blade repair:closing the maintenance gap. Composites World (2011) at hhttp://www.compositesworld.comi
[29] Zahavi, J. and Schmitt, G. R., Jr. Solid particle erosion of polymeric coatings. Wear, 71, 191-210(1981)
[30] Hand, M. M., Simms, D. A., Fingersh, L. J., Jager, D. W., and Cotrell, J. R. Unsteady Aerodynamics Experiment Phase V I:Wind Tunnel Test Configurations and Available Data Campaigns, National Renewable Energy Laboratory, Colorado (2001)
[31] Luo, K., Chen, S., Cai, D. Y., Fan, J. R., and Cen, K. F. Experimental study of flow characteristics in the near field of gas-solid two-phase circular cylinder wakes (in Chinese). Proceedings of the CSEE, 24, 116-121(2006) |