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Global trends of wind direction-dependent wind resource

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  • Jung, Christopher
  • Schindler, Dirk

Abstract

Trends in wind resources are a decisive factor for wind turbine site selection. Past studies assessed the long-term wind resource trends independent of wind direction. They enable the selection of the wind farm site but not the optimum design of wind turbines within the wind farm. However, possible trends in the wind direction sector-dependent wind resource would influence the optimum wind farm design. Thus, the hypothesis that wind direction sector-dependent wind resource trends exist is tested. This study applies zonal and meridional wind vector components from 1973 to 2022 on a 0.25° × 0.25° global grid at 100 m above ground level. Directional wind speed and a generic wind turbine power curve were applied to assess the trends of (1) annual energy yield, (2) capacity factor, and (3) wind direction share. The results indicate remarkable differences between the various regions and wind direction sectors. In Western and Central Europe, annual energy yield related to seven wind direction sectors decreased within the investigation period. In South Asia, declines in annual energy yields of more than −0.20 GWh related to the southwest and west sectors were found. Thus, this study concludes that more attention should be paid to wind direction sector-dependent wind resource changes.

Suggested Citation

  • Jung, Christopher & Schindler, Dirk, 2024. "Global trends of wind direction-dependent wind resource," Energy, Elsevier, vol. 304(C).
  • Handle: RePEc:eee:energy:v:304:y:2024:i:c:s0360544224020097
    DOI: 10.1016/j.energy.2024.132235
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    References listed on IDEAS

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    1. Wen, Yi & Kamranzad, Bahareh & Lin, Pengzhi, 2021. "Assessment of long-term offshore wind energy potential in the south and southeast coasts of China based on a 55-year dataset," Energy, Elsevier, vol. 224(C).
    2. Zhenzhong Zeng & Alan D. Ziegler & Timothy Searchinger & Long Yang & Anping Chen & Kunlu Ju & Shilong Piao & Laurent Z. X. Li & Philippe Ciais & Deliang Chen & Junguo Liu & Cesar Azorin-Molina & Adria, 2019. "A reversal in global terrestrial stilling and its implications for wind energy production," Nature Climate Change, Nature, vol. 9(12), pages 979-985, December.
    3. Martinez, A. & Iglesias, G., 2024. "Global wind energy resources decline under climate change," Energy, Elsevier, vol. 288(C).
    4. Azlan, F. & Kurnia, J.C. & Tan, B.T. & Ismadi, M.-Z., 2021. "Review on optimisation methods of wind farm array under three classical wind condition problems," Renewable and Sustainable Energy Reviews, Elsevier, vol. 135(C).
    5. Hoogwijk, Monique & de Vries, Bert & Turkenburg, Wim, 2004. "Assessment of the global and regional geographical, technical and economic potential of onshore wind energy," Energy Economics, Elsevier, vol. 26(5), pages 889-919, September.
    6. Zhuo, Chen & Junhong, Guo & Wei, Li & Fei, Zhang & Chan, Xiao & Zhangrong, Pan, 2022. "Changes in wind energy potential over China using a regional climate model ensemble," Renewable and Sustainable Energy Reviews, Elsevier, vol. 159(C).
    7. Jung, Christopher & Schindler, Dirk, 2018. "On the inter-annual variability of wind energy generation – A case study from Germany," Applied Energy, Elsevier, vol. 230(C), pages 845-854.
    8. Steven Chu & Arun Majumdar, 2012. "Opportunities and challenges for a sustainable energy future," Nature, Nature, vol. 488(7411), pages 294-303, August.
    9. Soukissian, Takvor H. & Karathanasi, Flora E., 2017. "On the selection of bivariate parametric models for wind data," Applied Energy, Elsevier, vol. 188(C), pages 280-304.
    10. Jung, Christopher & Schindler, Dirk, 2022. "A review of recent studies on wind resource projections under climate change," Renewable and Sustainable Energy Reviews, Elsevier, vol. 165(C).
    11. Christopher Jung & Dirk Schindler, 2022. "Development of onshore wind turbine fleet counteracts climate change-induced reduction in global capacity factor," Nature Energy, Nature, vol. 7(7), pages 608-619, July.
    12. Jung, Christopher & Schindler, Dirk, 2022. "On the influence of wind speed model resolution on the global technical wind energy potential," Renewable and Sustainable Energy Reviews, Elsevier, vol. 156(C).
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