Disentangling Turbulent Gas Diffusion from Non-diffusive Transport in the Boundary Layer

被引:7
|
作者
Kowalski, Andrew S. [1 ,2 ]
Serrano-Ortiz, Penelope [2 ,3 ]
Miranda-Garcia, Gabriela [4 ]
Fratini, Gerardo [5 ]
机构
[1] Univ Granada, Dept Fis Aplicada, Granada 18071, Spain
[2] Andalusian Inst Earth Syst Res IISTA CEAMA, Granada 18071, Spain
[3] Univ Granada, Dept Ecol, Granada 18071, Spain
[4] Univ Wageningen, Dept Environm Sci, NL-6700 AA Wageningen, Gelderland, Netherlands
[5] LI COR Biosci Inc, Lincoln, NE 68504 USA
关键词
Conservation of linear momentum; Eddy covariance; Reynolds averaging; Systematic transport; WPL density corrections; LONG-TERM; FLUX CORRECTIONS; CARBON-DIOXIDE; EXCHANGE; RESPIRATION;
D O I
10.1007/s10546-021-00605-5
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
An analysis based on the law of linear momentum conservation demonstrates unequivocally that the mass fraction is the scalar whose gradient determines gas diffusion, both molecular and turbulent. It illustrates sizeable errors in previous micrometeorological definitions of the turbulent gas flux based on fluctuations in other scalars such as the mixing ratio or density. In deference to conservation law, we put forth a new definition for the turbulent gas flux. Net gas transport is then defined as the sum of this turbulent flux with systematic transport by the mean flow. This latter, non-diffusive flux is due to the net upward boundary-layer momentum, a Stefan flow forced by evaporation, which is the dominant surface gas exchange. A comparison with the traditional methodology shows exact agreement between the two methods regarding the net flux, but with the novelty of partitioning gas transport according to distinct physical mechanisms. The non-diffusive flux is seen to be non-negligible in general, and to dominate turbulent transport under certain conditions, with broad implications for boundary-layer meteorology.
引用
收藏
页码:347 / 367
页数:21
相关论文
共 12 条
  • [1] Disentangling Turbulent Gas Diffusion from Non-diffusive Transport in the Boundary Layer
    Andrew S. Kowalski
    Penélope Serrano-Ortiz
    Gabriela Miranda-García
    Gerardo Fratini
    Boundary-Layer Meteorology, 2021, 179 : 347 - 367
  • [2] Liquid water transport mechanism in the gas diffusion layer
    Zhou, P.
    Wu, C. W.
    JOURNAL OF POWER SOURCES, 2010, 195 (05) : 1408 - 1415
  • [3] Thin boundary layer model underestimates greenhouse gas diffusion from inland waterways
    Liu, Boyi
    Li, Ziqian
    Wang, Jiayi
    Zhang, Xinzhi
    Kong, Lingwei
    Zhu, Lin
    Shi, Wenqing
    ENVIRONMENTAL RESEARCH, 2023, 233
  • [4] Flux Similarity and Turbulent Transport of Momentum, Heat and Carbon Dioxide in the Urban Boundary Layer
    Schmutz, M.
    Vogt, R.
    BOUNDARY-LAYER METEOROLOGY, 2019, 172 (01) : 45 - 65
  • [5] Diffusive CH4 fluxes from aquaculture ponds using floating chambers and thin boundary layer equations
    Yang, Ping
    Huang, Jiafang
    Yang, Hong
    Penuelas, Josep
    Tang, Kam W.
    Lai, Derrick Y. F.
    Wang, Dongqi
    Xiao, Qitao
    Sardans, Jordi
    Zhang, Yifei
    Tong, Chuan
    ATMOSPHERIC ENVIRONMENT, 2021, 253
  • [6] Non-turbulent motion identified from properties of transport and its influence on the calculation of turbulent flux
    Liu, Zihan
    Zhang, Hongsheng
    Wei, Wei
    Cai, Xuhui
    Song, Yu
    Zhang, Xiaoye
    QUARTERLY JOURNAL OF THE ROYAL METEOROLOGICAL SOCIETY, 2024, 150 (761) : 2223 - 2241
  • [7] Metabolic and heart rate responses to hypoxia in early chicken embryos in the transition from diffusive to convective gas transport
    Mortola, Jacopo P.
    Marinescu, Daniel-Costin
    Pierre, Annie
    Artman, Lise
    RESPIRATORY PHYSIOLOGY & NEUROBIOLOGY, 2012, 181 (02) : 109 - 117
  • [8] Solutions to the 3D Transport Equation and 1D Diffusion Equation for Passive Tracers in the Atmospheric Boundary Layer and Their Applications
    Ren, Shuzhan
    JOURNAL OF THE ATMOSPHERIC SCIENCES, 2019, 76 (07) : 2143 - 2169
  • [9] First Evidences of Methyl Chloride (CH3Cl) Transport from the Northern Italy Boundary Layer during Summer 2017
    Cristofanelli, Paolo
    Arduini, Jgor
    Calzolari, Francescopiero
    Giostra, Umberto
    Bonasoni, Paolo
    Maione, Michela
    ATMOSPHERE, 2020, 11 (03)
  • [10] Acidic Gases Separation from Gas Mixtures on the Supported Ionic Liquid Membranes Providing the Facilitated and Solution-Diffusion Transport Mechanisms
    Akhmetshina, Alsu I.
    Yanbikov, Nail R.
    Atlaskin, Artem A.
    Trubyanov, Maxim M.
    Mechergui, Amal
    Otvagina, Ksenia V.
    Razov, Evgeny N.
    Mochalova, Alla E.
    Vorotyntsev, Ilya V.
    MEMBRANES, 2019, 9 (01)