Energy Balance in the Polar Mesoscale Cyclone over the Barents Sea

D. A. Iarovaia, V. V. Efimov

Marine Hydrophysical Institute of RAS, Sevastopol, Russian Federation

e-mail: darik777@mhi-ras.ru

Abstract

Purpose. The purpose of the paper is to study the effect of sea ice cover on the intensity of the polar mesoscale cyclone that took place on March 15–16, 2021 over the Barents Sea.

Methods and Results. To study the cyclone numerically, the polar version of the mesoscale WRF model was used. In the performed numerical experiment, the sea ice in the computational domain was replaced by water, the temperature of which was 271.46 K. To identify the main factors amplifying the polar mesoscale cyclone, the balance equation for the space-average cyclone kinetic energy was applied. The basic components of the kinetic energy balance equation were considered: the work of pressure gradient force, Fpres, the advection effect and the work of inertial forces Adv, and also the work of turbulent friction force Ffric. It was found that the removal of sea ice from the computational domain had resulted in a decrease of the polar mesoscale cyclone intensity. The values of Fpres, Adv and Ffric in the control run were quantitatively compared to those in the experiment, and it was shown that the intensity decrease had become mainly the result of a decrease in Fpres and Adv.

Conclusions. Decrease of Fpres is a consequence of the fact that in the control run, the northern part of the polar mesoscale cyclone was located above the sea ice, and the surface air temperature in this part was 25–30℃ lower than in the southern one. The removal of sea ice led to an increase in surface air temperature at the cyclone periphery and to a decrease in the surface pressure drop between the vortex center and periphery. The Adv decrease is related to deformation of the cyclone in the experiment, which resulted in the increase in the fluctuating component of the azimuthal and radial velocities. Both of these factors have led to a decrease of the polar mesoscale cyclone intensity in the experiment.

Keywords

polar mesoscale cyclone, mesoscale atmospheric modeling, numerical experiment, sea ice, WRF model, energy balance

Acknowledgements

The study was carried out within the framework of project FNNN-2021-0002 “Fundamental studies of interaction processes in the ocean-atmosphere system determining regional spatial-temporal variability of natural environment and climate” (code “Ocean-atmosphere interaction”).

Original russian text

Original Russian Text © D. A. Iarovaia, V. V. Efimov, 2023, published in MORSKOY GIDROFIZICHESKIY ZHURNAL, Vol. 39, Iss. 1, pp. 5-20 (2023)

For citation

Iarovaia, D.A. and Efimov, V.V., 2023. Energy Balance in the Polar Mesoscale Cyclone over the Barents Sea. Physical Oceanography, 30(1), pp. 3-17. doi:10.29039/1573-160X-2023-1-3-17

DOI

10.29039/1573-160X-2023-1-3-17

References

  1. Rasmussen, E. and Turner, J., 2003. Polar Lows: Mesoscale Weather Systems in the Polar Regions. Cambridge: Cambridge University Press, 612 p. doi:10.1017/CBO9780511524974
  2. Rojo, M., Claud, C., Mallet, P.-E., Noer, G., Carleton, A. and Vicomte, M., 2015. Polar Low Tracks over the Nordic Seas: A 14-Winter Climatic Analysis. Tellus A: Dynamic Meteorology and Oceanography, 67(1), 24660. doi:10.3402/tellusa.v67.24660
  3. Terpstra, A., Renfrew, I.A. and Sergeev, D.E., 2021. Characteristics of Cold-Air Outbreak Events and Associated Polar Mesoscale Cyclogenesis over the North Atlantic Region. Journal of Climate, 34(11), pp. 4567-4584. doi:10.1175/JCLI-D-20-0595.1
  4. Kolstad, E.W., 2011. A Global Climatology of Favourable Conditions for Polar Lows. Quarterly Journal of the Royal Meteorological Society, 137(660), pp. 1749-1761. doi:10.1002/qj.888
  5. Stoll, P.J., 2022. A Global Climatology of Polar Lows Investigated for Local Differences and Wind-Shear Environments. Weather and Climate Dynamics, 3(2), pp. 483-504. doi:10.5194/wcd-3-483-2022
  6. Michel, C., Terpstra, A. and Spengler, T., 2018. Polar Mesoscale Cyclone Climatology for the Nordic Seas Based on the ERA-Interim. Journal of Climate, 31(6), pp. 2511-2532. doi:10.1175/JCLI-D-16-0890.1
  7. Noer, G., Saetra, Ø., Lien, T. and Gusdal, Y., 2011. A Climatological Study of Polar Lows in the Nordic Seas. Quarterly Journal of the Royal Meteorological Society, 137(660), pp. 1762- 1772. doi:10.1002/qj.846
  8. Sergeev, D., Renfrew, I.A. and Spengler, T., 2018. Modification of Polar Low Development by Orography and Sea Ice. Monthly Weather Review, 146(10), pp. 3325-3341. doi:10.1175/MWR- D-18-0086.1
  9. Adakudlu, M. and Barstad, I., 2011. Impacts of the Ice-Cover and Sea-Surface Temperature on a Polar Low over the Nordic Seas: A Numerical Case Study. Quarterly Journal of the Royal Meteorological Society, 137(660), pp. 1716-1730. doi:10.1002/qj.856
  10. Zabolotskikh, E.V., Gurvich, I.A. and Chapron, B., 2015. New Areas of Polar Lows over the Arctic as a Result of the Decrease in Sea Ice Extent. Izvestiya, Atmospheric and Oceanic Physics, 51(9), pp. 1021-1033. doi:10.1134/S0001433815090200
  11. Gurvich, I.A., Zabolotskikh, E.V. and Pichugin, M.K., 2016. Features of Mesoscale Cyclogenesis over the Eastern Sector of the Eurasian Arctic. Sovremennye Problemy Distantsionnogo Zondirovaniya Zemli iz Kosmosa, 13(5), pp. 227-237. doi:10.21046/2070- 7401-2016-13-5-227-237 (in Russian).
  12. Iarovaia, D.A. and Efimov, V.V., 2020. Polar Low over the Barents Sea: Its Sensitivity to Surface Energy Fluxes and Condensational Heating. Physical Oceanography, 27(3), pp. 225- 241. doi:10.22449/1573-160X-2020-3-225-241
  13. Efimov, V.V., Yarovaya, D.A. and Komarovskaya, O.I., 2020. Mesoscale Polar Cyclone from Satellite Data and Results of Numerical Simulation. Sovremennye Problemy Distantsionnogo Zondirovaniya Zemli iz Kosmosa, 17(1), pp. 223-233. doi:10.21046/2070- 7401-2020-17-1-223-233 (in Russian).
  14. Iarovaia, D.A. and Efimov, V.V., 2020. Development of the Mesoscale Cyclone of September 1–3, 2015, according to Satellite and Numerical Simulation Data. Izvestiya, Atmospheric and Oceanic Physics, 56(6), pp. 545-555. doi:10.1134/S0001433820060110
  15. Smith, R.K., Montgomery, M.T. and Kilroy, G., 2018. The Generation of Kinetic Energy in Tropical Cyclones Revisited. Quarterly Journal of the Royal Meteorological Society, 144(717), pp. 2481-2490. doi:10.1002/qj.3332
  16. Shimada, U., Wada, A., Yamazaki, K. and Kitabatake, N., 2014. Roles of an Upper-Level Cold Vortex and Low-Level Baroclinicity in the Development of Polar Lows over the Sea of Japan. Tellus A: Dynamic Meteorology and Oceanography, 66(1), 24694. doi:10.3402/tellusa.v66.24694
  17. Wang, Y., Cui, X., Li, X., Zhang, W. and Huang, Y., 2016. Kinetic Energy Budget during the Genesis Period of Tropical Cyclone Durian (2001) in the South China Sea. Monthly Weather Review, 144(8), pp. 2831-2854. doi:10.1175/MWR-D-15-0042.1
  18. Hong, S.-Y., Noh, Y. and Dudhia, J., 2006. A New Vertical Diffusion Package with an Explicit Treatment of Entrainment Processes. Monthly Weather Review, 134(9), pp. 2318-2341. doi:10.1175/MWR3199.1

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