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April 5, 2026Nature Communications0 citationsOpen Access

Föhn-induced melting over Larsen C modulated by atmospheric river shape, direction and landfall location

XZXun ZouScripps Institution of OceanographyPRPenny M. RoweNorthwest Research AssociatesIGIrina GorodetskayaUniversidade do Porto

Key Points

  • The research aims to examine how different shapes and directions of atmospheric rivers affect föhn-induced warming on the Larsen C Ice Shelf.
  • Utilized high-resolution Polar WRF simulations to analyze the Antarctic Peninsula during austral summers.
  • Identified four distinct atmospheric river shapes linked to föhn warming: zonal-perpendicular, zonal-like, convex, and concave.
  • Analyzed the intensity and curvature of atmospheric rivers to assess their impact on surface temperature.
  • Zonal-like and convex atmospheric rivers produced the strongest föhn warming across the Larsen C Ice Shelf.
  • Zonal-perpendicular and concave atmospheric rivers resulted in moderate-to-weak warming due to lower intensity.
  • Enhanced moisture from atmospheric rivers reduced surface warming by limiting cloud clearance effects.

Abstract

Abstract Recent decades have seen record-high temperatures on the Antarctic Peninsula (AP) due to combined atmospheric rivers (ARs) and föhn warming. While ARs frequently enhance föhn, not all events cause surface warming over the entire Larsen C Ice Shelf (LCIS). Using high-resolution Polar WRF simulations, we examine the relationship between ARs and föhn over the AP during austral summers and identify four distinct AR shapes associated with föhn-induced surface warming over the LCIS: zonal-perpendicular, zonal-like, convex, and concave. Zonal-like ARs associated with coupled low-high-pressure systems and convex ARs linked to blocking highs produce strong föhn warming across the entire LCIS, primarily affecting its northern and southern sectors, respectively. In contrast, zonal-perpendicular and concave ARs generate moderate-to-weak warming, owing to either weaker AR intensity or AR curvature. Although downward shortwave radiation dominates surface warming, enhanced moisture suppresses its increase from föhn-induced cloud clearance while enhancing downward longwave radiation near mountain gaps. Sensible heat flux also contributes substantially along the mountain foothills. As ARs intensify under climate change, their interaction with föhn over the AP can critically influence the future stability of coastal ice shelves.

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Cite This Study

Zou et al. (2026) studied this question.

synapsesocial.com/papers/69d1fd4ea79560c99a0a3407https://doi.org/10.1038/s41467-026-71359-2
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