Accès libre

Wind characteristics and wind energy assessment in the Barents Sea based on ERA-Interim reanalysis

À propos de cet article

Citez

Alimi, S.E., Maatallah, T., Dahmouni, A.W. Nasrallah, S.B. (2012). Modeling and investigation of the wind resource in the gulf of Tunis, Tunisia. Renewable Sustainable Energy Reviews 16(8): 5466–5478. Alimi S.E. Maatallah T. Dahmouni A.W. Nasrallah S.B. 2012 Modeling and investigation of the wind resource in the gulf of Tunis, Tunisia Renewable Sustainable Energy Reviews 168 5466547810.1016/j.rser.2012.05.004Search in Google Scholar

Ban, M., Perkovic, L., Duic, N. Penedo, R. (2013). Estimating the spatial distribution of high altitude wind energy potential in Southeast Europe. Energy 57(3): 24–29. Ban M. Perkovic L. Duic N. Penedo R. 2013 Estimating the spatial distribution of high altitude wind energy potential in Southeast Europe Energy 573 242910.1016/j.energy.2012.12.045Search in Google Scholar

Capps, S.B. Zender, C.S. (2009). Global ocean wind power sensitivity to surface layer stability. Geophysical Research Letters 36(9). DOI: 10.1029/2008GL037063. Capps S.B. Zender C.S. 2009 Global ocean wind power sensitivity to surface layer stability Geophysical Research Letters 369 10.1029/2008GL037063Open DOISearch in Google Scholar

Capps, S.B. Zender, C.S. (2010). Estimated global ocean wind power potential from QuikSCAT observations, accounting for turbine characteristics and siting. Journal of Geophysical Research: Atmospheres 115(D9). DOI: 10.1029/2009JD012679. Capps S.B. Zender C.S. 2010 Estimated global ocean wind power potential from QuikSCAT observations, accounting for turbine characteristics and siting Journal of Geophysical Research: Atmospheres 115D9 10.1029/2009JD012679Open DOISearch in Google Scholar

Chadee, X.T. Clarke, R.M. (2014). Large-scale wind energy potential of the Caribbean region using near-surface reanalysis data. Renewable and Sustainable Energy Reviews 30: 45–58. Chadee X.T. Clarke R.M. 2014 Large-scale wind energy potential of the Caribbean region using near-surface reanalysis data Renewable and Sustainable Energy Reviews 30 455810.1016/j.rser.2013.09.018Search in Google Scholar

Dee, D.P., Uppala, S.M., Simmons, A.J., Berrisford, P., Poli, P. et al. (2011). The ERA-Interim reanalysis: Configuration and performance of the data assimilation system. Quarterly Journal of the royal meteorological society 137(656): 553–597. Dee D.P. Uppala S.M. Simmons A.J. Berrisford P. Poli P. 2011 The ERA-Interim reanalysis: Configuration and performance of the data assimilation system Quarterly Journal of the royal meteorological society 137656 55359710.1002/qj.828Search in Google Scholar

Dee, D.P. Uppala, S. (2009). Variational bias correction of satellite radiance data in the ERA-Interim reanalysis. Quarterly Journal of the Royal Meteorological Society 135(644): 1830–1841. Dee D.P. Uppala S. 2009 Variational bias correction of satellite radiance data in the ERA-Interim reanalysis Quarterly Journal of the Royal Meteorological Society 135644 1830184110.1002/qj.493Search in Google Scholar

Divine, D.V. Dick, C. (2006). Historical variability of sea ice edge position in the Nordic Seas. Journal of Geophysical Research: Oceans 111(C1). DOI: 10.1029/2004JC002851. Divine D.V. Dick C. 2006 Historical variability of sea ice edge position in the Nordic Seas Journal of Geophysical Research: Oceans 111C1 10.1029/2004JC002851Open DOISearch in Google Scholar

Eriksson, S., Bernhoff , H. Leijon, M. (2008). Evaluation of different turbine concepts for wind power. Renewable Sustainable Energy Reviews 12(5): 1419–1434. Eriksson S. Bernhoff H. Leijon M. 2008 Evaluation of different turbine concepts for wind power Renewable Sustainable Energy Reviews 125 1419143410.1016/j.rser.2006.05.017Search in Google Scholar

Eurek, K., Sullivan, P., Gleason, M., Hettinger, D., Heimiller, D. et al. (2017). An improved global wind resource estimate for integrated assessment models. Energy Economics 64: 552–567. Eurek K. Sullivan P. Gleason M. Hettinger D. Heimiller D. 2017 An improved global wind resource estimate for integrated assessment models Energy Economics 64 55256710.2172/1344760Search in Google Scholar

Fyrippis, I., Axaopoulos, P.J. Panayiotou, G. (2010). Wind energy potential assessment in Naxos Island, Greece. Applied Energy 87(2): 577–586. Fyrippis I. Axaopoulos P.J. Panayiotou G. 2010 Wind energy potential assessment in Naxos Island, Greece Applied Energy 872 57758610.1016/j.apenergy.2009.05.031Search in Google Scholar

Gasparatos, A., Doll, C.N., Esteban, M., Ahmed, A. Olang, T.A. (2017). Renewable energy and biodiversity: Implications for transitioning to a Green Economy. Renewable Sustainable Energy Reviews 70: 161–184. Gasparatos A. Doll C.N. Esteban M. Ahmed A. Olang T.A. 2017 Renewable energy and biodiversity: Implications for transitioning to a Green Economy Renewable Sustainable Energy Reviews 70 16118410.1016/j.rser.2016.08.030Search in Google Scholar

Herbaut, C., Houssais, M.N., Close, S. Blaizot, A.C. (2015). Two wind-driven modes of winter sea ice variability in the Barents Sea. Deep Sea Research Part I: Oceanographic Research Papers 106: 97–115. Herbaut C. Houssais M.N. Close S. Blaizot A.C. 2015 Two wind-driven modes of winter sea ice variability in the Barents Sea Deep Sea Research Part I: Oceanographic Research Papers 106 9711510.1016/j.dsr.2015.10.005Search in Google Scholar

Holmes, J.D. (2015). Wind loading of structures CRC press. pp: 49–53. Holmes J.D. 2015 Wind loading of structures CRC press 49–53Search in Google Scholar

Hodges, K.I., Lee, R.W. Bengtsson, L. (2011). A comparison of extratropical cyclones in recent reanalyses ERA-Interim, NASA MERRA, NCEP CFSR, and JRA-25. Journal of Climate 24(18): 4888–4906. Hodges K.I. Lee R.W. Bengtsson L. 2011 A comparison of extratropical cyclones in recent reanalyses ERA-Interim, NASA MERRA, NCEP CFSR, and JRA-25 Journal of Climate 2418 4888490610.1175/2011JCLI4097.1Search in Google Scholar

Hsu, S.A., Meindl, E.A. Gilhousen, D.B. (1994). Determining the power-law wind-profile exponent under near-neutral stability conditions at sea. Journal of Applied Meteorology 33(6): 757–765. Hsu S.A. Meindl E.A. Gilhousen D.B. 1994 Determining the power-law wind-profile exponent under near-neutral stability conditions at sea Journal of Applied Meteorology 336 75776510.1175/1520-0450(1994)033<0757:DTPLWP>2.0.CO;2Search in Google Scholar

Ingvaldsen, R.B., Asplin, L. Loeng, H. (2004). Velocity field of the western entrance to the Barents Sea. Journal of Geophysical Research: Oceans 109(C3). DOI: 10.1029/2003JC001811. Ingvaldsen R.B. Asplin L. Loeng H. 2004 Velocity field of the western entrance to the Barents Sea Journal of Geophysical Research: Oceans 109C3 10.1029/2003JC001811Open DOISearch in Google Scholar

Karamanis, D., Tsabaris, C., Stamoulis, K. Georgopoulos, D. (2011). Wind energy resources in the Ionian Sea. Renewable Energy 36(2): 815–822. Karamanis D. Tsabaris C. Stamoulis K. Georgopoulos D. 2011 Wind energy resources in the Ionian Sea Renewable Energy 362 81582210.1016/j.renene.2010.08.007Search in Google Scholar

Kwok, R. (2009). Outflow of Arctic Ocean sea ice into the Greenland and Barents Seas: 1979–2007. Journal of Climate 22(9): 2438–2457. Kwok R. 2009 Outflow of Arctic Ocean sea ice into the Greenland and Barents Seas: 1979–2007 Journal of Climate 229 2438245710.1175/2008JCLI2819.1Search in Google Scholar

Lien, V.S., Schlichtholz, P., Skagseth, Ø. Vikebø, F.B. (2017). Wind-Driven Atlantic Water Flow as a Direct Mode for Reduced Barents Sea Ice Cover. Journal of Climate 30(2): 803–812. Lien V.S. Schlichtholz P. Skagseth Ø. Vikebø F.B. 2017 Wind-Driven Atlantic Water Flow as a Direct Mode for Reduced Barents Sea Ice Cover Journal of Climate 302 80381210.1175/JCLI-D-16-0025.1Search in Google Scholar

Liu, W.T., Tang, W. Xie, X. (2008). Wind power distribution over the ocean. Geophysical Research Letters 35(13). DOI: 10.1029/2008GL034172. Liu W.T. Tang W. Xie X. 2008 Wind power distribution over the ocean Geophysical Research Letters 3513 10.1029/2008GL034172Open DOISearch in Google Scholar

Onea, F., Raileanu, A. Rusu, E. (2015). Evaluation of the wind energy potential in the coastal environment of two enclosed seas. Advances in Meteorology. 2015. DOI: 10.1155/2015/808617. Onea F. Raileanu A. Rusu E. 2015 Evaluation of the wind energy potential in the coastal environment of two enclosed seas Advances in Meteorology 2015 10.1155/2015/808617Open DOISearch in Google Scholar

Panofsky, H.A. Dutton, J.A. (1984). Atmospheric Turbulence Wiley, 397 pp. Panofsky H.A. Dutton J.A. 1984 Atmospheric Turbulence Wiley 397Search in Google Scholar

Pavlova, O., Pavlov, V. Gerland, S. (2014). The impact of winds and sea surface temperatures on the Barents Sea ice extent, a statistical approach. Journal of Marine Systems 130: 248–255. Pavlova O. Pavlov V. Gerland S. 2014 The impact of winds and sea surface temperatures on the Barents Sea ice extent, a statistical approach Journal of Marine Systems 130 24825510.1016/j.jmarsys.2013.02.011Search in Google Scholar

Perkovic, L., Silva, P., Ban, M., Kranjcevic, N. Duic, N. (2013). Harvesting high altitude wind energy for power production: The concept based on Magnus’ effect. Applied energy 101: 151–160. Perkovic L. Silva P. Ban M. Kranjcevic N. Duic N. 2013 Harvesting high altitude wind energy for power production: The concept based on Magnus’ effect Applied energy 101 15116010.1016/j.apenergy.2012.06.061Search in Google Scholar

Reistad, M., Breivik, Ø., Haakenstad, H., Aarnes, O.J., Furevik, B.R. et al. (2011). A high-resolution hindcast of wind and waves for the North Sea, the Norwegian Sea, and the Barents Sea. Journal of Geophysical Research: Oceans 116(C5). DOI: 10.1029/2010JC006402. Reistad M. Breivik Ø. Haakenstad H. Aarnes O.J. Furevik B.R. 2011 A high-resolution hindcast of wind and waves for the North Sea, the Norwegian Sea, and the Barents Sea Journal of Geophysical Research: Oceans 116C5 10.1029/2010JC006402Open DOISearch in Google Scholar

Shapiro, I., Colony, R. Vinje, T. (2003). April sea ice extent in the Barents Sea, 1850–2001. Polar Research 22(1): 5–10. Shapiro I. Colony R. Vinje T. 2003 April sea ice extent in the Barents Sea, 1850–2001 Polar Research 221 51010.3402/polar.v22i1.6437Search in Google Scholar

Simionato, C.G., Vera, C.S. Siegismund, F. (2005). Surface wind variability on seasonal and interannual scales over Río de la Plata area. Journal of Coastal Research 21(4): 770–783. Simionato C.G. Vera C.S. Siegismund F. 2005 Surface wind variability on seasonal and interannual scales over Río de la Plata area Journal of Coastal Research 214 77078310.2112/008-NIS.1Search in Google Scholar

Szczypta, C., Calvet, J.C., Albergel, C., Balsamo, G., Boussetta, S. et al. (2011). Verification of the new ECMWF ERA-Interim reanalysis over France. Hydrology and Earth System Sciences 15(2): 647. Szczypta C. Calvet J.C. Albergel C. Balsamo G. Boussetta S. 2011 Verification of the new ECMWF ERA-Interim reanalysis over France Hydrology and Earth System Sciences 152 64710.5194/hess-15-647-2011Search in Google Scholar

Wang, Z., Dong, S., Dong, X. Zhang, X. (2016). Assessment of wind energy and wave energy resources in Weifang sea area. International Journal of Hydrogen Energy 41(35): 15805–15811. Wang Z. Dong S. Dong X. Zhang X. 2016 Assessment of wind energy and wave energy resources in Weifang sea area International Journal of Hydrogen Energy 4135 158051581110.1016/j.ijhydene.2016.04.002Search in Google Scholar

Yang, W., Tavner, P.J., Crabtree, C.J., Feng, Y. Qiu, Y. (2014). Wind turbine condition monitoring: technical and commercial challenges. Wind Energy 17(5): 673–693. Yang W. Tavner P.J. Crabtree C.J. Feng Y. Qiu Y. 2014 Wind turbine condition monitoring: technical and commercial challenges Wind Energy 175 67369310.1002/we.1508Search in Google Scholar

Zheng, C.W. Pan, J. (2014). Assessment of the global ocean wind energy resource. Renewable and Sustainable Energy Reviews 33: 382–391. Zheng C.W. Pan J. 2014 Assessment of the global ocean wind energy resource Renewable and Sustainable Energy Reviews 33 38239110.1016/j.rser.2014.01.065Search in Google Scholar

Zheng, C.W., Pan, J. Li, J.X. (2013). Assessing the China Sea wind energy and wave energy resources from 1988 to 2009. Ocean Engineering 65: 39–48. Zheng C.W. Pan J. Li J.X. 2013 Assessing the China Sea wind energy and wave energy resources from 1988 to 2009 Ocean Engineering 65 394810.1016/j.oceaneng.2013.03.006Search in Google Scholar

eISSN:
1897-3191
Langue:
Anglais
Périodicité:
4 fois par an
Sujets de la revue:
Chemistry, other, Geosciences, Life Sciences