187
Views
28
CrossRef citations to date
0
Altmetric
Original Articles

Research aircraft measurements of a polar low over the Norwegian Sea

, &
Pages 272-306 | Received 23 May 1986, Accepted 22 Dec 1986, Published online: 15 Dec 2016

Keep up to date with the latest research on this topic with citation updates for this article.

Read on this site (17)

Udai Shimada, Akiyoshi Wada, Koji Yamazaki & Naoko Kitabatake. (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.
Read now
JØRn Kristiansen, Silje Lund SØRland, Trond Iversen, Dag BjØRge & Morten ØDegaard KØLtzow. (2011) High-resolution ensemble prediction of a polar low development. Tellus A: Dynamic Meteorology and Oceanography 63:3, pages 585-604.
Read now
O. Saetra, T. Linders & J.B. Debernard. (2008) Can polar lows lead to a warming of the ocean surface?. Tellus A: Dynamic Meteorology and Oceanography 60:1, pages 141-153.
Read now
Sigbjørn Grønås & Paul Skeie. (1999) A case study of strong winds at an Arctic front. Tellus A: Dynamic Meteorology and Oceanography 51:5, pages 865-879.
Read now
James D. Doyle & Melvyn A. Shapiro. (1999) Flow response to large-scale topography: the Greenland tip jet. Tellus A: Dynamic Meteorology and Oceanography 51:5, pages 728-748.
Read now
John M. Forsythe & Thomas H. Vonder Haar. (1996) A warm core in a polar low observed with a satellite microwave sounding unit. Tellus A: Dynamic Meteorology and Oceanography 48:2, pages 193-208.
Read now
G.W.K. Moore, M.C. Reader, J. York & S. Sathiyamoorthy. (1996) Polar lows in the Labrador Sea. Tellus A: Dynamic Meteorology and Oceanography 48:1, pages 17-40.
Read now
A. M. CARLETON. (1995) On the interpretation and classification of mesoscale cyclones from satellite infrared imagery. International Journal of Remote Sensing 16:13, pages 2457-2485.
Read now
GÜnter Heinemann. (1995) TOVS retrievals obtained with the 3I-algorithm. A study of a meso-scale cyclone over the Barents Sea. Tellus A: Dynamic Meteorology and Oceanography 47:3, pages 324-330.
Read now
Mark Fitch & Andrew M. Carleton. (1992) Antarctic mesocyclone regimes from satellite and conventional data. Tellus A: Dynamic Meteorology and Oceanography 44:2, pages 180-196.
Read now
J. Turner, T. A. Lachlan-Cope & J. C. Moore. (1992) A comparison of satellite sounding data and aircraft measurements within a mature polar low. Tellus A: Dynamic Meteorology and Oceanography 44:2, pages 119-132.
Read now
Edgar L. Andreas. (1990) Time constants for the evolution of sea spray droplets. Tellus B: Chemical and Physical Meteorology 42:5, pages 481-497.
Read now
Mark Jury & Mike Laing. (1990) A case study of marine cyclogenesis near Cape Town. Tellus A: Dynamic Meteorology and Oceanography 42:2, pages 246-258.
Read now
Kerry A. Emanuel & Richard Rotunno. (1989) Polar lows as arctic hurricanes. Tellus A: Dynamic Meteorology and Oceanography 41:1, pages 1-17.
Read now
Richard J. Reed & Charles N. Duncan. (1987) Baroclinic instability as a mechanism for the serial development of polar lows: a case study. Tellus A: Dynamic Meteorology and Oceanography 39:4, pages 376-384.
Read now
Thor erik Nordeng. (1987) The effect of vertical and slantwise convection on the simulation of polar lows. Tellus A: Dynamic Meteorology and Oceanography 39:4, pages 354-375.
Read now
Steven Businger. (1987) The synoptic climatology of polar-low outbreaks over the Gulf of Alaska and the Bering Sea. Tellus A: Dynamic Meteorology and Oceanography 39:4, pages 307-325.
Read now

Articles from other publishers (11)

Christian P. Lackner, Bart Geerts, Yonggang Wang, Timothy W. Juliano, Lulin Xue, Branko Kosović & David D. Turner. (2023) Insights into the relation between vertical cloud structure and dynamics of three polar lows: Observations from COMBLE. Quarterly Journal of the Royal Meteorological Society 149:756, pages 2992-3013.
Crossref
Marian E. Mateling, Claire Pettersen, Mark S. Kulie & Tristan S. L’Ecuyer. (2023) Marine Cold‐Air Outbreak Snowfall in the North Atlantic: A CloudSat Perspective. Journal of Geophysical Research: Atmospheres 128:10.
Crossref
Chenghai Wang. 2023. Climatology in Cold Regions. Climatology in Cold Regions 219 268 .
Peng Wu & Mikhail Ovchinnikov. (2022) Cloud Morphology Evolution in Arctic Cold‐Air Outbreak: Two Cases During COMBLE Period. Journal of Geophysical Research: Atmospheres 127:10.
Crossref
Sofia E. Kjellman, Elizabeth K. Thomas & Anders Schomacker. (2022) Arctic and sub-Arctic lake water δ2H and δ18O along a coastal-inland transect: Implications for interpreting water isotope proxy records. Journal of Hydrology 607, pages 127556.
Crossref
P. M. Caldwell, C. R. Terai, B. Hillman, N. D. Keen, P. Bogenschutz, W. Lin, H. Beydoun, M. Taylor, L. Bertagna, A. M. Bradley, T. C. Clevenger, A. S. Donahue, C. Eldred, J. Foucar, J.‐C. Golaz, O. Guba, R. Jacob, J. Johnson, J. Krishna, W. Liu, K. Pressel, A. G. Salinger, B. Singh, A. Steyer, P. Ullrich, D. Wu, X. Yuan, J. Shpund, H.‐Y. Ma & C. S. Zender. (2021) Convection‐Permitting Simulations With the E3SM Global Atmosphere Model. Journal of Advances in Modeling Earth Systems 13:11.
Crossref
Patrick J. Stoll, Teresa M. Valkonen, Rune G. Graversen & Gunnar Noer. (2020) A well‐observed polar low analysed with a regional and a global weather‐prediction model. Quarterly Journal of the Royal Meteorological Society 146:729, pages 1740-1767.
Crossref
Maria Tsukernik, David N. Kindig & Mark C. Serreze. (2007) Characteristics of winter cyclone activity in the northern North Atlantic: Insights from observations and regional modeling. Journal of Geophysical Research 112:D3.
Crossref
A. C. L. Deveson, K. A. Browning & T. D. Hewson. (2002) A classification of FASTEX cyclones using a height-attributable quasi-geostrophic vertical-motion diagnostic. Quarterly Journal of the Royal Meteorological Society 128:579, pages 93-117.
Crossref
Günter WarneckeGünter Warnecke. 1991. Meteorologie und Umwelt. Meteorologie und Umwelt 323 333 .
Louis W. Uccellini. 1990. Extratropical Cyclones. Extratropical Cyclones 81 105 .