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Citez

1. Breton, S. P. and Moe, G. 2009.Status, plans and technologies for offshore wind turbines. Renewable Energy. 2009, Tom 34.10.1016/j.renene.2008.05.040Search in Google Scholar

2. Composite recycling: Characterizing end of life wind turbine blade material. Beauson, J., Bech, J. I. i Brøndsted, P. 2014. Montréal, Canada : 19th International Conference on Composite Materials, 28.07-02.08.2013, Montréal, Canada, 2014. Proceedings of 19th International Conference on Composite Materials.Search in Google Scholar

3. Crawford, R. H. 2009. Life cycle energy and greenhouse emissions analysis of wind turbines and the effect of size on energy yield. Renewable and Sustainable Energy Reviews. 2009, Tom 13.10.1016/j.rser.2009.07.008Search in Google Scholar

4. Davidsson, S., Höök, M. and Wall, G. 2012. A review of life cycle assessments on wind energy systems. Int J Life Cycle Assess. 2012, Tom 17.10.1007/s11367-012-0397-8Search in Google Scholar

5. GWEC. 2016.Global Wind Report. Annual Market Update 2015. Bruksela : Global Wind Energy Council, 2016.Search in Google Scholar

6. Haapala, K. R. and Prempreeda, P. 2014.Comparative life cycle assessment of 2.0 MW wind turbines. Int. J. Sustainable Manufacturing,. 2014, Tom 3, 2.10.1504/IJSM.2014.062496Search in Google Scholar

7. Kasner, R., et al. 2015. Zastosowanie metody CML do oceny wpływu na środowisko wybranych środków transportu łopat elektrowni wiatrowych. Logistyka. 2015, 3.Search in Google Scholar

8. Kong, C., Bang, J. and Sugiyama, Y. 2005. Structural investigation of composite wind turbine blade considering various load cases and fatigue life. Energy. 2005, Tom 30.10.1016/j.energy.2004.08.016Search in Google Scholar

9. Martinez, E., et al. 2009. Life cycle assessment of a multi-megawatt wind turbine. Renewable Energy. 2009, Tom 34.10.1016/j.renene.2008.05.020Open DOISearch in Google Scholar

10. Piasecka, I. and Mroziński, A. 2015. Selected aspects of building, operation and environmental impact of offshore wind power electric plants. Polish Maritime Research. 2015, Tom 22, 2.10.1515/pomr-2015-0021Search in Google Scholar

11. Shokrieh, M. M. and Rafiee, R. 2010. Fatigue life prediction of wind turbine rotor blades manufactured from composites. [aut. książki] Vassilopoulos i P. Anastasios. Fatigue Life Prediction of Composites and Composite Structures. Oxford : Woodhead Publishing, 2010.10.1533/9781845699796.3.505Search in Google Scholar

12. Świtoński, E., Jureczko, M. and Mężyk, A. 2007. Optymalne projektowanie kompozytowych łopat elektrowni wiatrowej. Acta Mechanica et Automatica. 2007, Tom 1, 1.Search in Google Scholar

13. Thomson, R. C. and Harrison, G. P. 2015.Life Cycle Costs and Carbon Emissions of Offshore Wind Power. brak miejsca : ClimateXChange, 2015.Search in Google Scholar

14. Xiaohui, D., Tiejun, Y. and Ruhong, M. 2013. Corrosion Mechanism on Offshore Wind Turbine Blade in Salt Fog Environment. Applied Mechanics and Materials. Vol. 432, 2013, pp 258-262.10.4028/www.scientific.net/AMM.432.258Search in Google Scholar

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