Page 36: Leads – open windows in the sea ice

Final Report 2024, Page 36

Further Reading

 

Korosov A, Rampal P, Ying Y, Ólason E, Williams T (2023) Towards improving short-term sea ice predictability using deformation observations. The Cryosphere, 17, 4223–4240. https://doi.org/10.5194/tc-17-4223-2023

 

Regan H, Rampal P, Ólason EBoutin GKorosov A (2023) Modelling the evolution of Arctic multiyear sea ice over 2000–2018. The Cryosphere17(5), 1873–1893. doi.org/10.5194/tc-17-1873-2023

 

Ólason E, Boutin G, Korosov A, Rampal P, Williams T, Kimmritz M, Dansereau V, Samaké A (2022) A new brittle rheology and numerical framework for large-scale sea-ice models. Journal of Advances in Modeling Earth Systems 14. doi.org/10.1029/2021MS002685

 

Ólason E, Rampal P, Dansereau V (2021) On the statistical properties of sea-ice lead fraction and heat fluxes in the Arctic. The Cryosphere 15: 1053-1064. doi.org/10.5194/tc-15-1053-2021

 

Boutin G, Ólason E, Rampal P, Regan H, Lique C, Talandier C, Brodeau L, Ricker R (2023) Arctic sea ice mass balance in a new coupled ice–ocean model using a brittle rheology framework. The Cryosphere 17: 617–638. doi.org/10.5194/tc-17-617-2023

 

Müller M, Batrak Y, Dinesen F, Grote R, Wang K (2023) Challenges in the description of sea-ice for a kilometer-scale weather forecasting system. Weather and Forecasting. https://doi.org/10.1175/WAF-D-22-0134.1

 

Batrak Y, Müller M (2018) Atmospheric Response to Kilometer-Scale Changes in Sea Ice Concentration Within the Marginal Ice Zone. Geophysical Research Letters 45:6702-6709. https://doi.org/10.1029/2018GL078295

 

Ericson Y, Fransson A, Chierici M, Jones EM, Skjelvan I, Omar A, Olsen A, Becker M (2023) Rapid fCO2 rise in the northern Barents Sea and Nansen Basin. Progress in Oceanography, vol 2017, 103079, https://doi.org/10.1016/j.pocean.2023.103079.

 

Jones E. M., M. Chierici, A. Fransson, K. M. Assmann, A. H.H. Renner, H. Hodal Lødemel (2023) Inorganic carbon and nutrient dynamics in the marginal ice zone of the Barents Sea: Seasonality and implications for ocean acidification. Progress in Oceanography, 219, 103131, https://doi.org/10.1016/j.pocean.2023.103131.

 

Koenig Z, Muilwijk M, Sandven H, Lundesgaard Ø, Assmy P, Lind S, Assmann KM, Chierici M, Fransson A, Gerland S, Jones E, Renner AHH, Granskog MA (2024) From winter to late summer in the northwestern Barents Sea shelf: Impacts of seasonal progression of sea ice and upper ocean on nutrient and phytoplankton dynamics. Progress in Oceanography, 220, 103174. doi.org/10.1016/j.pocean.2023.103174

 

Kohlbach D, Goraguer L, Bodur YV, Müller O, Amargant-Arumí M, Blix K, Bratbak G, Chierici M, Dąbrowska AM, Dietrich U, Edvardsen B, García LM, Gradinger R, Hop H, Jones E, Lundesgaard Ø, Olsen LM, Reigstad M, Saubrekka K, Tatarek A, Wiktor JM, Wold A, Assmy P (2023) Earlier sea-ice melt extends the oligotrophic summer period in the Barents Sea with low algal biomass and associated low vertical flux. Progress in Oceanography 213:103018. doi.org/10.1016/j.pocean.2023.103018

 

Amargant-Arumí M, Müller O, Bodur YV, Ntinou I-V, Vonnahme T, Assmy P, Kohlbach D, Chierici M, Jones E, Olsen LM, Tsagaraki TM, Reigstad M, Bratbak G, Gradinger R (2024) Interannual differences in sea ice regime in the north-western Barents Sea cause major changes in summer pelagic production and export mechanisms. Progress in Oceanography, 220, 103178. doi.org/10.1016/j.pocean.2023.103178

 

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