Observations of exponential wave attenuation in Antarctic sea ice during the PIPERS campaign

Author:

Kohout Alison L.ORCID,Smith Madison,Roach Lettie A.,Williams Guy,Montiel Fabien,Williams Michael J. M.

Abstract

AbstractQuantifying the rate of wave attenuation in sea ice is key to understanding trends in the Antarctic marginal ice zone extent. However, a paucity of observations of waves in sea ice limits progress on this front. We deployed 14 waves-in-ice observation systems (WIIOS) on Antarctic sea ice during the Polynyas, Ice Production, and seasonal Evolution in the Ross Sea expedition (PIPERS) in 2017. The WIIOS provide in situ measurement of surface wave characteristics. Two experiments were conducted, one while the ship was inbound and one outbound. The sea ice throughout the experiments generally consisted of pancake and young ice <0.5 m thick. The WIIOS survived a minimum of 4 d and a maximum of 6 weeks. Several large-wave events were captured, with the largest recorded significant wave height over 9 m. We find that the total wave energy measured by the WIIOS generally decays exponentially in the ice and the rate of decay depends on ice concentration.

Publisher

Cambridge University Press (CUP)

Subject

Earth-Surface Processes

Reference20 articles.

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4. Kohout, A and Williams, M (2019) Antarctic wave-ice observations during PIPERS. NIWA client report 2019060CH prepared for the Deep South Challenge. National Institute of Water and Atmospheric Research, New Zealand. Contact: library@niwa.co.nz.

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