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Spectral ocean wave climate variability based on atmospheric circulation patterns

Abstract: Traditional approaches for assessing wave climate variability have been broadly focused on aggregated or statistical parameters such as significant wave height, wave energy flux, or mean wave direction. These studies, although revealing the major general modes of wave climate variability and trends, do not take into consideration the complexity of the wind-wave fields. Because ocean waves are the response to both local and remote winds, analyzing the directional full spectra can shed light on atmospheric circulation not only over the immediate ocean region, but also over a broad basin scale. In this work, the authors use a pattern classification approach to explore wave climate variability in the frequency–direction domain. This approach identifies atmospheric circulation patterns of the sea level pressure from the 31-yr long Climate Forecast System Reanalysis (CFSR) and wave spectral patterns of two selected buoys in the North Atlantic, finding one-to-one relations between each synoptic pattern (circulation type) and each spectral wave energy distribution (spectral type). Even in the absence of long-wave records, this method allows for the reconstruction of longterm wave spectra to cover variability at several temporal scales: daily, monthly, seasonal, interannual, decadal, long-term trends, and future climate change projections.

 Fuente: Journal of Physical Oceanography 44, 2139–2152

 Publisher: American Meteorological Society

 Publication date: 05/08/2014

 No. of pages: 14

 Publication type: Article

 DOI: 10.1175/JPO-D-13-0276.1

 ISSN: 0022-3670,1520-0485

 Spanish project: CT M2010-15009

 Publication Url: http://journals.ametsoc.org/doi/abs/10.1175/JPO-D-13-0276.1