Characterization of transport regimes and the polar dome during Arctic spring and summer using in situ aircraft measurements

被引:34
作者
Bozem, Heiko [1 ]
Hoor, Peter [1 ]
Kunkel, Daniel [1 ]
Koellner, Franziska [1 ,2 ]
Schneider, Johannes [2 ]
Herber, Andreas [3 ]
Schulz, Hannes [3 ]
Leaitch, W. Richard [4 ]
Aliabadi, Amir A. [5 ]
Willis, Megan [6 ,7 ]
Burkart, Julia [6 ,8 ]
Abbatt, Jonathan [6 ]
机构
[1] Johannes Gutenberg Univ Mainz, Inst Atmospher Phys, Mainz, Germany
[2] Max Planck Inst Chem, Particle Chem Dept, Mainz, Germany
[3] Alfred Wegener Inst Helmholtz Ctr Polar & Marine, Bremerhaven, Germany
[4] Environm & Climate Change Canada, Toronto, ON, Canada
[5] Univ Guelph, Sch Engn, Guelph, ON, Canada
[6] Univ Toronto, Dept Chem, Toronto, ON, Canada
[7] Lawrence Berkeley Natl Lab, Div Chem Sci, Berkeley, CA USA
[8] Univ Vienna, Aerosol Phys & Environm Phys, Vienna, Austria
基金
加拿大自然科学与工程研究理事会;
关键词
SURFACE ALBEDO FEEDBACK; BLACK CARBON TRANSPORT; AIR-POLLUTION; SEA-ICE; ATMOSPHERIC TRANSPORT; SOURCE IDENTIFICATION; SHIP EMISSIONS; SEASONAL CYCLE; CLIMATE-CHANGE; AEROSOL;
D O I
10.5194/acp-19-15049-2019
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The springtime composition of the Arctic lower troposphere is to a large extent controlled by the transport of midlatitude air masses into the Arctic. In contrast, precipitation and natural sources play the most important role during summer. Within the Arctic region sloping isentropes create a barrier to horizontal transport, known as the polar dome. The polar dome varies in space and time and exhibits a strong influence on the transport of air masses from midlatitudes, enhancing transport during winter and inhibiting transport during summer. We analyzed aircraft-based trace gas measurements in the Arctic from two NETCARE airborne field campaigns (July 2014 and April 2015) with the Alfred Wegener Institute Polar 6 aircraft, covering an area from Spitsbergen to Alaska (134 to 17 degrees W and 68 to 83 degrees N). Using these data we characterized the transport regimes of midlatitude air masses traveling to the high Arctic based on CO and CO2 measurements as well as kinematic 10 d back trajectories. We found that dynamical isolation of the high Arctic lower troposphere leads to gradients of chemical tracers reflecting different local chemical lifetimes, sources, and sinks. In particular, gradients of CO and CO2 allowed for a trace-gas-based definition of the polar dome boundary for the two measurement periods, which showed pronounced seasonal differences. Rather than a sharp boundary, we derived a transition zone from both campaigns. In July 2014 the polar dome boundary was at 73.5 degrees N latitude and 299-303.5 K potential temperature. During April 2015 the polar dome boundary was on average located at 66-68.5 degrees N and 283.5-287.5 K. Tracer-tracer scatter plots confirm different air mass properties inside and outside the polar dome in both spring and summer. Further, we explored the processes controlling the recent transport history of air masses within and outside the polar dome. Air masses within the springtime polar dome mainly experienced diabatic cooling while traveling over cold surfaces. In contrast, air masses in the summertime polar dome were diabatically heated due to insolation. During both seasons air masses outside the polar dome slowly descended into the Arctic lower troposphere from above through radiative cooling. Ascent to the middle and upper troposphere mainly took place outside the Arctic, followed by a northward motion. Air masses inside and outside the polar dome were also distinguished by different chemical compositions of both trace gases and aerosol particles. We found that the fraction of amine-containing particles, originating from Arctic marine biogenic sources, is enhanced inside the polar dome. In contrast, concentrations of refractory black carbon are highest outside the polar dome, indicating remote pollution sources. Synoptic-scale weather systems frequently disturb the transport barrier formed by the polar dome and foster exchange between air masses from midlatitudes and polar regions. During the second phase of the NETCARE 2014 measurements a pronounced low-pressure system south of Resolute Bay brought inflow from southern latitudes, which pushed the polar dome northward and significantly affected trace gas mixing ratios in the measurement region. Mean CO2 mixing ratios increased from 77.9 +/- 2.5 to 84.9 +/- 4.7 ppbv between these two regimes. At the same time CO2 mixing ratios significantly decreased from 398.16 +/- 1.01 to 393.81 +/- 2.25 ppmv. Our results demonstrate the utility of applying a tracer-based diagnostic to determine the polar dome boundary for interpreting observations of atmospheric composition in the context of transport history.
引用
收藏
页码:15049 / 15071
页数:23
相关论文
共 90 条
  • [1] Overview paper: New insights into aerosol and climate in the Arctic
    Abbatt, Jonathan P. D.
    Leaitch, W. Richard
    Aliabadi, Amir A.
    Bertram, Allan K.
    Blanchet, Jean-Pierre
    Boivin-Rioux, Aude
    Bozem, Heiko
    Burkart, Julia
    Chang, Rachel Y. W.
    Charette, Joannie
    Chaubey, Jai P.
    Christensen, Robert J.
    Cirisan, Ana
    Collins, Douglas B.
    Croft, Betty
    Dionne, Joelle
    Evans, Greg J.
    Fletcher, Christopher G.
    Gali, Marti
    Ghahreman, Roya
    Girard, Eric
    Gong, Wanmin
    Gosselin, Michel
    Gourdal, Margaux
    Hanna, Sarah J.
    Hayashida, Hakase
    Herber, Andreas B.
    Hesaraki, Sareh
    Hoor, Peter
    Huang, Lin
    Hussherr, Rachel
    Irish, Victoria E.
    Keita, Setigui A.
    Kodros, John K.
    Koellner, Franziska
    Kolonjari, Felicia
    Kunkel, Daniel
    Ladino, Luis A.
    Law, Kathy
    Levasseur, Maurice
    Libois, Quentin
    Liggio, John
    Lizotte, Martine
    Macdonald, Katrina M.
    Mahmood, Rashed
    Martin, Randall V.
    Mason, Ryan H.
    Miller, Lisa A.
    Moravek, Alexander
    Mortenson, Eric
    [J]. ATMOSPHERIC CHEMISTRY AND PHYSICS, 2019, 19 (04) : 2527 - 2560
  • [2] Ship emissions measurement in the Arctic by plume intercepts of the Canadian Coast Guard icebreaker Amundsen from the Polar 6 aircraft platform
    Aliabadi, Amir A.
    Thomas, Jennie L.
    Herber, Andreas B.
    Staebler, Ralf M.
    Leaitch, W. Richard
    Schulz, Hannes
    Law, Kathy S.
    Marelle, Louis
    Burkart, Julia
    Willis, Megan D.
    Bozem, Heiko
    Hoor, Peter M.
    Koellner, Franziska
    Schneider, Johannes
    Levasseur, Maurice
    Abbatt, Jonathan P. D.
    [J]. ATMOSPHERIC CHEMISTRY AND PHYSICS, 2016, 16 (12) : 7899 - 7916
  • [3] AMAP AMAP Assessment, 2015, BLACK CARB OZ ARCT C
  • [4] Transport of aerosol to the Arctic: analysis of CALIOP and French aircraft data during the spring 2008 POLARCAT campaign
    Ancellet, G.
    Pelon, J.
    Blanchard, Y.
    Quennehen, B.
    Bazureau, A.
    Law, K. S.
    Schwarzenboeck, A.
    [J]. ATMOSPHERIC CHEMISTRY AND PHYSICS, 2014, 14 (16) : 8235 - 8254
  • [5] [Anonymous], 2013, IPCC TECHNICAL SUMMA, P33, DOI [10.1017/CBO9781107415324.005, DOI 10.1017/CBO9781107415324.005]
  • [6] Arctic air pollution: Challenges and opportunities for the next decade
    Arnold, S. R.
    Law, K. S.
    Brock, C. A.
    Thomas, J. L.
    Starkweather, S. M.
    von Salzen, K.
    Stohl, A.
    Sharma, S.
    Lund, M. T.
    Flanner, M. G.
    Petaja, T.
    Tanimoto, H.
    Gamble, J.
    Dibb, J. E.
    Melamed, M.
    Johnson, N.
    Fidel, M.
    Tynkkynen, V. -P.
    Baklanov, A.
    Eckhardt, S.
    Monks, S. A.
    Browse, J.
    Bozem, H.
    [J]. ELEMENTA-SCIENCE OF THE ANTHROPOCENE, 2016, 4 : 1 - 17
  • [7] Isentropic transport and the seasonal cycle amplitude of CO2
    Barnes, Elizabeth A.
    Parazoo, Nicholas
    Orbe, Clara
    Denning, A. Scott
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2016, 121 (13) : 8106 - 8124
  • [8] ARCTIC AIR-POLLUTION - AN OVERVIEW OF CURRENT KNOWLEDGE
    BARRIE, LA
    [J]. ATMOSPHERIC ENVIRONMENT, 1986, 20 (04) : 643 - 663
  • [9] Exceptional Air Mass Transport and Dynamical Drivers of an Extreme Wintertime Arctic Warm Event
    Binder, Hanin
    Boettcher, Maxi
    Grams, Christian M.
    Joos, Hanna
    Pfahl, Stephan
    Wernli, Heini
    [J]. GEOPHYSICAL RESEARCH LETTERS, 2017, 44 (23) : 12028 - 12036
  • [10] CLIMATOLOGY OF SURFACE-BASED INVERSIONS IN THE NORTH-AMERICAN ARCTIC
    BRADLEY, RS
    KEIMIG, FT
    DIAZ, HF
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 1992, 97 (D14) : 15699 - 15712