Cirrus, Transport, and Mixing in the Tropical Upper Troposphere

被引:5
|
作者
Dinh, Tra [1 ]
Fueglistaler, Stephan [1 ]
机构
[1] Princeton Univ, Program Atmospher & Ocean Sci, Princeton, NJ 08540 USA
关键词
Cirrus clouds; Trajectories; Numerical analysis/modeling; Transport; Cloud radiative effects; Lagrangian circulation/transport; UPPER BOUNDARY-CONDITION; TRANSITION LAYER CIRRUS; TROPOPAUSE LAYER; CLOUDS; MODELS; LIDAR; AIR; AGE;
D O I
10.1175/JAS-D-13-0147.1
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
The impact of cloud radiative heating on transport time scales from the tropical upper troposphere to the stratosphere is studied in two-dimensional numerical simulations. Clouds are idealized as sources of radiative heating and are stochastically distributed in space and time. A spatial probability function constrains clouds to occur in only part of the domain to depict heterogeneously distributed clouds in the atmosphere. The transport time from the lower to upper boundaries (age of air) is evaluated with trajectories. The spectra of age of air obtained in the simulations are bimodal, with the first mode composed of trajectories that remain in the cloudy part of the domain during their passages from the lower to upper boundaries, and the second mode composed of the remaining trajectories that visit the cloud-free regions. For the first group of trajectories only, the mean age scales inversely with the time-mean radiative heating in cloudy air, and the one-dimensional advection-diffusion equation provides an adequate model for transport. However, the exchange between the cloudy and cloud-free regions renders the mean age over all trajectories (including those that visit the cloud-free region) much longer than the time expected if all air parcels remain in cloudy air. In addition, the overall mean age is not inversely proportional to the time-mean heating rate in cloudy air. Sensitivity calculations further show that the sizes, durations, and amplitudes of the individual clouds are also important to the transport time. The results show that the frequently used decomposition of radiative heating into clear-sky and cloud radiative heating may give incorrect interpretations regarding the time scale of transport into the stratosphere.
引用
收藏
页码:1339 / 1352
页数:14
相关论文
共 50 条
  • [31] Microbiome of the upper troposphere: Species composition and prevalence, effects of tropical storms, and atmospheric implications
    DeLeon-Rodriguez, Natasha
    Lathem, Terry L.
    Rodriguez-R, Luis M.
    Barazesh, James M.
    Anderson, Bruce E.
    Beyersdorf, Andreas J.
    Ziemba, Luke D.
    Bergin, Michael
    Nenes, Athanasios
    Konstantinidis, Konstantinos T.
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2013, 110 (07) : 2575 - 2580
  • [32] The interhemispheric gradient of SF 6 in the upper troposphere
    Schuck, Tanja J.
    Degen, Johannes
    Hintsa, Eric
    Hoor, Peter
    Jesswein, Markus
    Keber, Timo
    Kunkel, Daniel
    Moore, Fred
    Obersteiner, Florian
    Rigby, Matt
    Wagenhaeuser, Thomas
    Western, Luke M.
    Zahn, Andreas
    Engel, Andreas
    ATMOSPHERIC CHEMISTRY AND PHYSICS, 2024, 24 (01) : 689 - 705
  • [33] The Influence of the Stratosphere on the Tropical Troposphere
    Haynes, Peter
    Hitchcock, Peter
    Hitchman, Matthew
    Yoden, Shigeo
    Hendon, Harry
    Kiladis, George
    Kodera, Kunihiko
    Simpson, Isla
    JOURNAL OF THE METEOROLOGICAL SOCIETY OF JAPAN, 2021, 99 (04) : 803 - 845
  • [34] Airborne observations of upper troposphere and lower stratosphere composition change in active convection producing above-anvil cirrus plumes
    Gordon, Andrea E.
    Homeyer, Cameron R.
    Smith, Jessica B.
    Ueyama, Rei
    Dean-Day, Jonathan M.
    Atlas, Elliot L.
    Smith, Kate
    Pittman, Jasna V.
    Sayres, David S.
    Wilmouth, David M.
    Pandey, Apoorva
    St. Clair, Jason M.
    Hanisco, Thomas F.
    Hare, Jennifer
    Hannun, Reem A.
    Wofsy, Steven
    Daube, Bruce C.
    Donnelly, Stephen
    ATMOSPHERIC CHEMISTRY AND PHYSICS, 2024, 24 (13) : 7591 - 7608
  • [35] Impact of monsoon-associated deep-penetrating clouds on the hydration of the tropical upper troposphere
    Jain, Shipra
    Jain, A. R.
    Mandal, T. K.
    ATMOSPHERIC SCIENCE LETTERS, 2015, 16 (01): : 38 - 43
  • [36] Lidar studies on climate sensitivity characteristics of tropical cirrus clouds
    Motty, G. S.
    Jayeshlal, G. S.
    Satyanarayana, Malladi
    Pillai, V. P. Mahadevan
    REMOTE SENSING OF THE ATMOSPHERE, CLOUDS, AND PRECIPITATION VI, 2016, 9876
  • [37] HIRDLS and CALIPSO observations of tropical cirrus
    Massie, Steven T.
    Gille, John
    Craig, Cheryl
    Khosravi, Rashid
    Barnett, John
    Read, William
    Winker, David
    JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2010, 115
  • [38] In situ observations of new particle formation in the tropical upper troposphere: the role of clouds and the nucleation mechanism
    Weigel, R.
    Borrmann, S.
    Kazil, J.
    Minikin, A.
    Stohl, A.
    Wilson, J. C.
    Reeves, J. M.
    Kunkel, D.
    de Reus, M.
    Frey, W.
    Lovejoy, E. R.
    Volk, C. M.
    Viciani, S.
    D'Amato, F.
    Schiller, C.
    Peter, T.
    Schlager, H.
    Cairo, F.
    Law, K. S.
    Shur, G. N.
    Belyaev, G. V.
    Curtius, J.
    ATMOSPHERIC CHEMISTRY AND PHYSICS, 2011, 11 (18) : 9983 - 10010
  • [39] How Does Cloud Overlap Affect the Radiative Heating in the Tropical Upper Troposphere/Lower Stratosphere?
    Johansson, Erik
    Devasthale, Abhay
    Ekman, Nnica M. L.
    Tjernstrom, Michael
    L'Ecuye, Ristan
    GEOPHYSICAL RESEARCH LETTERS, 2019, 46 (10) : 5623 - 5631
  • [40] Optical properties of cirrus clouds observed below the tropical tropopause
    Parameswaran, K
    Kumar, SVS
    Murthy, BVK
    Satheesan, K
    LIDAR REMOTE SENSING FOR INDUSTRY AND ENVIRONMENT MONITORING II, 2002, 4484 : 186 - 197