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Posts Tagged ‘German study’

Annual mean differences in precipitation between simulations with Wind Farm 2050 projection and control NOWF simulation for all wind directions (0—360°) over the period of 2008–2017 a for Germany, Denmark and the Netherlands and b for UK. This figure was created with Matplotlib (Hunter, J. D., Matplotlib: a 2D graphics environment. Computing in Science and Engineering 9, 2007) and Cartopy (Met office, Cartopy: a cartographic python library with a matplotlib interface. Exeter, Devon, https://scitools.org.uk/cartopy, 2015).

Abstract from a German study published in Nature – “Projected impacts of future offshore wind farms on coastal precipitation over the Northwest European shelf”:

“Offshore wind energy plays a central role in reaching the European Green Deal target of a climate-neutral Europe by 2050. In this study, we simulate offshore wind development for 2023, 2030, and beyond 2050 across the Northwest-European Shelf, using various turbine sizes over a 10-year period, an approach not previously undertaken. For the post-2050 scenario, we assess the maximum potential deployment within all currently identified development zones in North Sea countries. Results indicate that large-scale offshore wind farm expansion can reduce surface wind speeds by up to 2–3 m s⁻¹. Notably for post-2050 scenario, precipitation decreases by 10–12% in coastal regions of Germany, the Netherlands, and the United Kingdom, and by more than 15% in parts of Jutland, Denmark, particularly under south-westerly winds. Conversely, precipitation increases over the wind farm areas. These findings suggest that extensive offshore wind deployment may significantly alter regional climate patterns, highlighting the need for further multi-model investigations to reduce uncertainty.”

The study found that existing wind farms under the 2023 and 2030 scenarios indicate small effects on precipitation, with effects primarily confined to marine areas. However, the large-scale deployment of offshore wind farms in the Northwest-European shelf, as projected for 2050, has a significant and spatially distinct impact on regional precipitation patterns, specifically in the regions over northern Germany and Denmark, highlighting the critical role of scale and turbine density in driving these changes.

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Per PHYS.ORG: Researchers at the Helmholtz Center Hereon have analyzed the long-term overall impact of this large number of wind farms on the hydrodynamics of the North Sea for the first time. They found that the current pattern could change on a large scale.

The peer reviewed German study is attached. Excerpt:

The near- and far-field wake effects affect vertical mixing and surface heat fluxes – primarily driven by large-scale wind stress reductions – leading to shallower mixed layers and long-term surface warming of up to 0.2 deg. C in wind farm areas. Our findings reveal a basin-scale physical footprint of offshore wind energy and highlight the need to account r hydrodynamic impacts in future offshore wind farm planning.

Note that (1) an 11/2023 NAS study raised concerns about the potential hydrodynamic effects of wind energy on Nantucket Shoals Regional Ecology (see graphics below), and (2) a 5/2022 NOAA letter had voiced similar concerns.

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