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Wave propagation in continuous sea ice: An experimental perspective

  • Giulio Passerotti
  • , Alberto Alberello
  • , Azam Dolatshah
  • , Luke Bennetts
  • , Otto Puolakka
  • , Franz Von Bock Und Polach
  • , Marco Klein
  • , Moritz Hartmann
  • , Jaak Monbaliu
  • , Alessandro Toffoli*
  • *Tämän työn vastaava kirjoittaja
  • University of Melbourne
  • University of Adelaide
  • Hamburg University of Technology
  • ICRI

Tutkimustuotos: Artikkeli kirjassa/konferenssijulkaisussaConference article in proceedingsScientificvertaisarvioitu

6 Sitaatiot (Scopus)

Abstrakti

Ocean waves penetrate hundreds of kilometres into the icecovered ocean. Waves fracture the level ice into small floes, herd floes, introduce warm water and overwash the floes, accelerating ice melt and causing collisions, which concurrently erodes the floes and influences the large-scale deformation. Concomitantly, interactions between waves and the sea ice cause wave energy to reduce with distance travelled into the ice cover, attenuating wave driven effects. Here a pilot experiment in the ice tank at Aalto University (Finland) is presented to discuss how the properties of irregular small amplitude (linear) waves change as they propagate through continuous model sea ice. Irregular waves with a JONSWAP spectral shape were mechanically generated with a very low initial wave steepness to avoid ice break up and maintain a consistent continuous ice cover throughout the experiments. Observations show an exponential attenuation of wave energy with distance. High frequency components attenuated more rapidly than the low frequency counterparts, in agreement with a frequency-cubed power-law. The more effective attenuation in the high frequency range induced a substantial downshift of the spectral peak, stretching the dominant wave component as it propagates in ice.

AlkuperäiskieliEnglanti
OtsikkoPolar and Arctic Sciences and Technology
KustantajaAmerican Society of Mechanical Engineers
Sivumäärä8
ISBN (elektroninen)9780791884393
DOI - pysyväislinkit
TilaJulkaistu - 18 jouluk. 2020
OKM-julkaisutyyppiA4 Artikkeli konferenssijulkaisussa
TapahtumaInternational Conference on Ocean, Offshore and Arctic Engineering - Virtual Conference - Online, Fort Lauderdale, Yhdysvallat
Kesto: 3 elok. 20207 elok. 2020
Konferenssinumero: 39
https://event.asme.org/OMAE

Julkaisusarja

NimiProceedings of the International Conference on Offshore Mechanics and Arctic Engineering - OMAE
Vuosikerta7

Conference

ConferenceInternational Conference on Ocean, Offshore and Arctic Engineering
LyhennettäOMAE
Maa/AlueYhdysvallat
KaupunkiFort Lauderdale
Ajanjakso03/08/202007/08/2020
www-osoite

Rahoitus

The experiments in the Aalto ice tank were supported by HYDRALAB+ program (contract no. 654110). Support from the Australia–Germany Joint Research Cooperation Scheme (DAAD, project 5744547) and the Australian Antarctic Science Program (project 4434) is acknowledged. This work was partially funded by the ACE Foundation and Ferring Pharmaceuticals. GP, AA, AD and AT acknowledge support from the Air-Sea-Ice Lab Project.

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