Thermodynamic and kinematic drivers of atmospheric boundary layer stability in the central Arctic during the Multidisciplinary drifting Observatory for the Study of Arctic Climate (MOSAiC)

被引:7
|
作者
Jozef, Gina C. [1 ,2 ,3 ]
Cassano, John J. [1 ,2 ,3 ]
Dahlke, Sandro [4 ]
Dice, Mckenzie [1 ,2 ,3 ]
Cox, Christopher J. [5 ]
de Boer, Gijs [2 ,5 ,6 ]
机构
[1] Univ Colorado Boulder, Dept Atmospher & Ocean Sci, Boulder, CO 80309 USA
[2] Univ Colorado Boulder, Cooperat Inst Res Environm Sci, Boulder, CO 80309 USA
[3] Univ Colorado Boulder, Natl Snow & Ice Data Ctr, Boulder, CO 80309 USA
[4] Alfred Wegener Inst, Helmholtz Ctr Polar & Marine Res, Potsdam, Germany
[5] NOAA, Phys Sci Lab, Boulder, CO USA
[6] Univ Colorado Boulder, Integrated Remote & Situ Sensing, Boulder, CO USA
关键词
SEA-ICE; SURFACE; RADIATION; ENERGY; TEMPERATURE; TURBULENCE; CLOUDS; BUDGET;
D O I
10.5194/acp-23-13087-2023
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Observations collected during the Multidisciplinary drifting Observatory for the Study of Arctic Climate (MOSAiC) provide a detailed description of the impact of thermodynamic and kinematic forcings on atmospheric boundary layer (ABL) stability in the central Arctic. This study reveals that the Arctic ABL is stable and near-neutral with similar frequencies, and strong stability is the most persistent of all stability regimes. MOSAiC radiosonde observations, in conjunction with observations from additional measurement platforms, including a 10 m meteorological tower, ceilometer, microwave radiometer, and radiation station, provide insight into the relationships between atmospheric stability and various atmospheric thermodynamic and kinematic forcings of ABL turbulence and how these relationships differ by season. We found that stronger stability largely occurs in low-wind (i.e., wind speeds are slow), low-radiation (i.e., surface radiative fluxes are minimal) environments; a very shallow mixed ABL forms in low-wind, high-radiation environments; weak stability occurs in high-wind, moderate-radiation environments; and a near-neutral ABL forms in high-wind, high-radiation environments. Surface pressure (a proxy for synoptic staging) partially explains the observed wind speeds for different stability regimes. Cloud frequency and atmospheric moisture contribute to the observed surface radiation budget. Unique to summer, stronger stability may also form when moist air is advected from over the warmer open ocean to over the colder sea ice surface, which decouples the colder near-surface atmosphere from the advected layer, and is identifiable through observations of fog and atmospheric moisture.
引用
收藏
页码:13087 / 13106
页数:20
相关论文
共 40 条
  • [1] An overview of the vertical structure of the atmospheric boundary layer in the central Arctic during MOSAiC
    Jozef, Gina C.
    Cassano, John J.
    Dahlke, Sandro
    Dice, Mckenzie
    Cox, Christopher J.
    de Boer, Gijs
    ATMOSPHERIC CHEMISTRY AND PHYSICS, 2024, 24 (02) : 1429 - 1450
  • [2] The characteristics of atmospheric boundary layer height over the Arctic Ocean during MOSAiC
    Peng, Shijie
    Yang, Qinghua
    Shupe, Matthew D.
    Xi, Xingya
    Han, Bo
    Chen, Dake
    Dahlke, Sandro
    Liu, Changwei
    ATMOSPHERIC CHEMISTRY AND PHYSICS, 2023, 23 (15) : 8683 - 8703
  • [3] Rain on snow (ROS) understudied in sea ice remote sensing: a multi-sensor analysis of ROS during MOSAiC (Multidisciplinary drifting Observatory for the Study of Arctic Climate)
    Stroeve, Julienne
    Nandan, Vishnu
    Willatt, Rosemary
    Dadic, Ruzica
    Rostosky, Philip
    Gallagher, Michael
    Mallett, Robbie
    Barrett, Andrew
    Hendricks, Stefan
    Tonboe, Rasmus
    McCrystall, Michelle
    Serreze, Mark
    Thielke, Linda
    Spreen, Gunnar
    Newman, Thomas
    Yackel, John
    Ricker, Robert
    Tsamados, Michel
    Macfarlane, Amy
    Hannula, Henna-Reetta
    Schneebeli, Martin
    CRYOSPHERE, 2022, 16 (10): : 4223 - 4250
  • [4] Profile observations of the Arctic atmospheric boundary layer with the BELUGA tethered balloon during MOSAiC
    Christian Pilz
    Michael Lonardi
    Ulrike Egerer
    Holger Siebert
    André Ehrlich
    Andrew J. Heymsfield
    Carl G. Schmitt
    Matthew D. Shupe
    Birgit Wehner
    Manfred Wendisch
    Scientific Data, 10
  • [5] Profile observations of the Arctic atmospheric boundary layer with the BELUGA tethered balloon during MOSAiC
    Pilz, Christian
    Lonardi, Michael
    Egerer, Ulrike
    Siebert, Holger
    Ehrlich, Andre
    Heymsfield, Andrew J.
    Schmitt, Carl G.
    Shupe, Matthew D.
    Wehner, Birgit
    Wendisch, Manfred
    SCIENTIFIC DATA, 2023, 10 (01)
  • [6] Evaluation of the Coupled Arctic Forecast System's representation of the Arctic atmospheric boundary layer vertical structure during MOSAiC
    Jozef, Gina
    Cassano, John J.
    Solomon, Amy
    Intrieri, Janet
    de Boer, Gijs
    ELEMENTA-SCIENCE OF THE ANTHROPOCENE, 2024, 12 (01):
  • [7] Dependency of the drag coefficient on boundary layer stability beneath drifting sea ice in the central Arctic Ocean
    Kawaguchi, Yusuke
    Hoppmann, Mario
    Shirasawa, Kunio
    Rabe, Benjamin
    Kuznetsov, Ivan
    SCIENTIFIC REPORTS, 2024, 14 (01):
  • [8] The vertical structure of the atmospheric boundary layer over the central Arctic Ocean
    BIAN Lingen
    MA Yongfeng
    LU Changgui
    LIN Xiang
    Acta Oceanologica Sinica, 2013, 32 (10) : 34 - 40
  • [9] The vertical structure of the atmospheric boundary layer over the central Arctic Ocean
    Lingen Bian
    Yongfeng Ma
    Changgui Lu
    Xiang Lin
    Acta Oceanologica Sinica, 2013, 32 : 34 - 40
  • [10] The vertical structure of the atmospheric boundary layer over the central Arctic Ocean
    Bian Lingen
    Ma Yongfeng
    Lu Changgui
    Lin Xiang
    ACTA OCEANOLOGICA SINICA, 2013, 32 (10) : 34 - 40