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DOI10.1029/2018WR022731
A Structure Function Model Recovers the Many Formulations for Air-Water Gas Transfer Velocity
Katul, Gabriel1,2,3,4; Mammarella, Ivan3; Gronholm, Tiia3; Vesala, Timo3
2018-09-01
发表期刊WATER RESOURCES RESEARCH
ISSN0043-1397
EISSN1944-7973
出版年2018
卷号54期号:9页码:5905-5920
文章类型Article
语种英语
国家USA; Finland; Germany
英文摘要

Two ideas regarding the structure of turbulence near a clear air-water interface are used to derive a waterside gas transfer velocity k(L) for sparingly and slightly soluble gases. The first is that k(L) is proportional to the turnover velocity described by the vertical velocity structure function D-ww(r), where r is separation distance between two points. The second is that the scalar exchange between the air-water interface and the waterside turbulence can be suitably described by a length scale proportional to the Batchelor scale l(B) = Sc-1/2, where Sc is the molecular Schmidt number and eta is the Kolmogorov microscale defining the smallest scale of turbulent eddies impacted by fluid viscosity. Using an approximate solution to the von Karman-Howarth equation predicting D-ww(r) in the inertial and viscous regimes, prior formulations for k(L) are recovered including (i) kL = root 2/15Sc(-1/2)v(K), v(K) is the Kolmogorov velocity defined by the Reynolds number v(K)eta/nu = 1 and nu is the kinematic viscosity of water; (ii) surface divergence formulations; (iii) k(L) alpha Sc(-1/2)u(*), where u(*) is the waterside friction velocity; (iv) k(L) alpha Sc-1/2 root g nu/u(*) for Keulegan numbers exceeding a threshold needed for long-wave generation, where the proportionality constant varies with wave age, g is the gravitational acceleration; and (v) k(L) = root 2/15Sc(-1/2) (nu g beta(o)q(o))(1/4) in free convection, where q(o) is the surface heat flux and beta(o) is the thermal expansion of water. The work demonstrates that the aforementioned k(L) formulations can be recovered from a single structure function model derived for locally homogeneous and isotropic turbulence.


英文关键词air-water gas exchange gas transfer velocity structure function microeddy model scaling laws turbulence
领域资源环境
收录类别SCI-E
WOS记录号WOS:000448088100003
WOS关键词NEAR-SURFACE TURBULENCE ; MASS-TRANSFER ; CARBON-DIOXIDE ; EXCHANGE ; WIND ; EVAPORATION ; INTERFACE ; FLUX ; STREAM ; FLOWS
WOS类目Environmental Sciences ; Limnology ; Water Resources
WOS研究方向Environmental Sciences & Ecology ; Marine & Freshwater Biology ; Water Resources
引用统计
文献类型期刊论文
条目标识符http://119.78.100.173/C666/handle/2XK7JSWQ/21325
专题资源环境科学
作者单位1.Duke Univ, Nicholas Sch Environm, Durham, NC 27708 USA;
2.Duke Univ, Dept Civil & Environm Engn, Durham, NC 27706 USA;
3.Univ Helsinki, Dept Phys, Helsinki, Finland;
4.Karlsruher Inst Technol, IMK IFU, Garmisch Partenkirchen, Germany
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GB/T 7714
Katul, Gabriel,Mammarella, Ivan,Gronholm, Tiia,et al. A Structure Function Model Recovers the Many Formulations for Air-Water Gas Transfer Velocity[J]. WATER RESOURCES RESEARCH,2018,54(9):5905-5920.
APA Katul, Gabriel,Mammarella, Ivan,Gronholm, Tiia,&Vesala, Timo.(2018).A Structure Function Model Recovers the Many Formulations for Air-Water Gas Transfer Velocity.WATER RESOURCES RESEARCH,54(9),5905-5920.
MLA Katul, Gabriel,et al."A Structure Function Model Recovers the Many Formulations for Air-Water Gas Transfer Velocity".WATER RESOURCES RESEARCH 54.9(2018):5905-5920.
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