Lower Thermospheric Material Transport via Lagrangian Coherent Structures

被引:4
|
作者
Datta-Barua, Seebany [1 ]
Pedatella, Nicholas [2 ]
Greer, Katelynn [3 ]
Wang, Ningchao [4 ]
Nutter, Leanne [1 ]
Harvey, V. Lynn [3 ,5 ]
机构
[1] IIT, Dept Mech Mat & Aerosp Engn, Chicago, IL 60616 USA
[2] Natl Ctr Atmospher Res, High Altitude Observ, POB 3000, Boulder, CO 80307 USA
[3] Univ Colorado, Lab Atmospher & Space Phys, Boulder, CO 80309 USA
[4] Hampton Univ, Dept Atmospher Sci, Hampton, VA 23668 USA
[5] Univ Colorado, Dept Atmospher & Ocean Sci, Boulder, CO 80309 USA
关键词
MODEL;
D O I
10.1029/2020JA028834
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
We show that inter-model variation due to under-constraint by observations impacts the ability to predict material transport in the lower thermosphere. Lagrangian coherent structures (LCSs), indicating regions of maximal separation (or convergence) in a time-varying flow, are derived in the lower thermosphere from models for several space shuttle water vapor plume events. We find that inter-model differences in thermospheric transport manifest in LCSs in a way that is more stringent than mean wind analyses. LCSs defined using horizontal flow fields from the Specified Dynamics version of the Whole Atmosphere Community Climate Model with thermosphere-ionosphere eXtension (SD-WACCMX) at 109 km altitude are compared to Global Ultraviolet Imager (GUVI) observations of the space shuttle main engine plume. In one case, SD-WACCMX predicts an LCS ridge to produce spreading not found in the observations. LCSs and tracer transport from SD-WACCMX and from data assimilative WACCMX (WACCMX + DART) are compared to each other and to GUVI observations. Differences in the modeled LCSs and tracer positions appear between SD-WACCMX and WACCMX + DART despite the similarity of mean winds. WACCMX + DART produces better tracer transport results for a July 2006 event, but it is unclear which model performs better in terms of LCS ridges. For a February 2010 event, when mean winds differ by up to 50 m/s between the models, differences in LCSs and tracer trajectories are even more severe. Low-pass filtering the winds up to zonal wavenumber 6 reduces but does not eliminate inter-model LCS differences. Inter-model alignment of LCSs improves at a lower 60 km altitude.
引用
收藏
页数:20
相关论文
共 50 条
  • [41] Lagrangian coherent structures and internal wave attractors
    Tang, Wenbo
    Peacock, Thomas
    CHAOS, 2010, 20 (01)
  • [42] Attracting Lagrangian coherent structures on Riemannian manifolds
    Karrasch, Daniel
    CHAOS, 2015, 25 (08) : 087411
  • [43] Extracting Lagrangian coherent structures in cardiovascular flows using Lagrangian descriptors
    Darwish, Ahmed
    Norouzi, Shahrzad
    Di Labbio, Giuseppe
    Kadem, Lyes
    PHYSICS OF FLUIDS, 2021, 33 (11)
  • [44] Tracking Attracting Lagrangian Coherent Structures in Flows
    Kularatne, Dhanushka
    Hsieh, Ani
    ROBOTICS: SCIENCE AND SYSTEMS XI, 2015,
  • [45] Unsupervised extraction of rotational Lagrangian coherent structures
    Neamtu-Halic, Marius M.
    Brizzolara, Stefano
    Haller, George
    Holzner, Markus
    COMPUTERS & FLUIDS, 2025, 290
  • [46] Lagrangian Coherent Structures and hypoxia in the Baltic Sea
    Dargahi, Bijan
    DYNAMICS OF ATMOSPHERES AND OCEANS, 2022, 97
  • [47] Uncovering Fine-Scale Wave-Driven Transport Features in a Fringing Coral Reef System via Lagrangian Coherent Structures
    Leclair, Matthieu
    Lowe, Ryan
    Zhang, Zhenlin
    Ivey, Greg
    Peacock, Thomas
    FLUIDS, 2020, 5 (04)
  • [48] Eulerian and Lagrangian coherent structures in a positive surge
    Thomas, L.
    David, L.
    EXPERIMENTS IN FLUIDS, 2022, 63 (02)
  • [49] Lagrangian coherent structures along atmospheric rivers
    Garaboa-Paz, Daniel
    Eiras-Barca, Jorge
    Huhn, Florian
    Perez-Munuzuri, Vicente
    CHAOS, 2015, 25 (06)
  • [50] Eulerian and Lagrangian coherent structures in a positive surge
    L. Thomas
    L. David
    Experiments in Fluids, 2022, 63