Near-surface turbulent dissipation at a laboratory-scale confluence: implications on gas transfer

被引:0
|
作者
Yuan, Saiyu [1 ,2 ]
Lin, Jiawei [1 ,2 ]
Tang, Hongwu [1 ,2 ]
Zhu, Yunqiang [1 ,2 ]
Ran, Qihua [2 ]
Constantinescu, George [3 ,4 ]
Gualtieri, Carlo [5 ]
机构
[1] Hohai Univ, Natl Key Lab Water Disaster Prevent, Nanjing, Peoples R China
[2] Hohai Univ, Key Lab Hydrol Cycle & Hydrodynam Syst, Minist Water Resources, Nanjing, Peoples R China
[3] Univ Iowa, Dept Civil & Environm Engn, Iowa City, IA 52242 USA
[4] Univ Iowa, IIHR Hydrosci & Engn, Iowa City, IA USA
[5] Univ Napoli Federico II, Dept Struct Engn & Architecture, Naples, Italy
基金
中国国家自然科学基金;
关键词
Confluence; Turbulent dissipation; Shear layer; Separation zone; Gas transfer; AVERAGED FLOW STRUCTURE; SEPARATION ZONE; MASS-TRANSFER; RIVER; CONCORDANT; SIMULATION; GEOMETRY; REGION; FISH;
D O I
10.1007/s10652-023-09964-8
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
River confluences contribute to the outflux of saturated dissolved gases in the water resulting from high dam discharges. This process is related to gas transfer across the water-air interface, which is primarily controlled by turbulent dissipation near the water surface. However, the near-surface turbulence dissipation is rarely reported in confluence hydrodynamics studies. This study conducted experiments with different discharge ratios to investigate near-surface turbulent motions at a laboratory-scale confluence. The higher dissipation rate epsilon H/U-m(3) of near-surface turbulence was mainly located inside the interfacial shear layer between the two incoming streams (similar to 10(-4)) and the bank separation zone (10(-4)-10(-3)) where high shear was found in the mean flow. By contrast, the dissipation rates were much lower inside the incoming flows and outside the two regions of high shear (similar to 10(-5)). The magnitudes of the dissipation rate inside the shear layer were comparable in experiments where the mixing interface was in the Kelvin-Helmholtz mode or in the wake mode. The dissipation rate was found to increase away from the free surface outside the shear layer, while it was more uniformly distributed over the depth inside the layer possibly due to the presence of strongly-coherent, vertically-orientated vortices. In the far field, the mean shear within the shear layer was largely weakened. Nonetheless, the effects of flow separation persisted and laterally expanded to occupy the entire cross section. The dissipation rate epsilon H/U-m(3) of the confluent flow was more than 10(-4) even at a distance of 10 times the channel width in the post-confluence channel.
引用
收藏
页数:24
相关论文
共 50 条
  • [1] Turbulent Stresses at the Bottom Surface near an Abutment: Laboratory-Scale Numerical Experiment
    Teruzzi, Anna
    Ballio, Francesco
    Armenio, Vincenzo
    [J]. JOURNAL OF HYDRAULIC ENGINEERING, 2009, 135 (02) : 106 - 117
  • [2] Radon-220 calibration of near-surface turbulent gas transport
    Lehmann, BE
    Lehmann, M
    Neftel, A
    Gut, A
    Tarakanov, SV
    [J]. GEOPHYSICAL RESEARCH LETTERS, 1999, 26 (05) : 607 - 610
  • [3] Air-water gas transfer and near-surface motions
    Turney, Damon E.
    Banerjee, Sanjoy
    [J]. JOURNAL OF FLUID MECHANICS, 2013, 733 : 588 - 624
  • [4] Numerical simulation of a laboratory-scale turbulent slot flame
    Bell, John B.
    Day, Marcus S.
    Grcar, Joseph F.
    Lijewski, Michael J.
    Driscoll, James F.
    Filatyev, Sergel A.
    [J]. PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2007, 31 : 1299 - 1307
  • [5] Tools for simulation of laboratory-scale premixed turbulent flames
    Day, MS
    Bell, JB
    Grcar, JF
    Lijewski, MJ
    Beckner, VE
    [J]. SciDAC 2005: Scientific Discovery Through Advanced Computing, 2005, 16 : 80 - 90
  • [6] Measurements of turbulent transfer in the near-surface layer over a rice paddy in China
    Gao, ZQ
    Bian, L
    Zhou, XJ
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2003, 108 (D13)
  • [7] Gas/liquid flow in laboratory-scale venturis
    Alonso, DF
    Azzopardi, BJ
    Hills, JH
    [J]. PROCESS SAFETY AND ENVIRONMENTAL PROTECTION, 1999, 77 (B4) : 205 - 211
  • [8] Numerical simulation of a laboratory-scale turbulent V-flame
    Bell, JB
    Day, MS
    Shepherd, IG
    Johnson, MR
    Cheng, RK
    Grcar, JF
    Beckner, VE
    Lijewski, MJ
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2005, 102 (29) : 10006 - 10011
  • [9] Numerical Modeling for Hydrodynamics and Near-Surface Flow Patterns of a Tidal Confluence
    Dai, Wenhong
    Bilal, Ahmed
    Xie, Qiancheng
    Ahmad, Ijaz
    Joshi, Ishwar
    [J]. JOURNAL OF COASTAL RESEARCH, 2020, 36 (02) : 295 - 312
  • [10] Volumetric gas meter for laboratory-scale anaerobic bioreactors
    Martinez-Sibaja, A.
    Alvarado-Lassman, A.
    Astorga-Zaragoza, C. M.
    Adam-Medina, M.
    Posada-Gomez, R.
    Rodriguez-Jarquin, J. P.
    [J]. MEASUREMENT, 2011, 44 (10) : 1801 - 1805