Gas transfer at the air-water interface in a turbulent flow environment / / Gerhard H. Jirka.

The gas transfer process across the air-water interface in a ottom-shear-induced turbulent environment was investigated to gain improved fundamental understanding of the physical mechanisms that control the process. For this purpose, it is necessary to reveal the hydrodynamics of the flow field as w...

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Place / Publishing House:Karlsruhe : : KIT Scientific Publishing,, 2005.
Year of Publication:2005
Language:English
Physical Description:1 online resource (ix, 128 pages)
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spelling Jirka, Gerhard H., author.
Gas transfer at the air-water interface in a turbulent flow environment / Gerhard H. Jirka.
Karlsruhe : KIT Scientific Publishing, 2005.
1 online resource (ix, 128 pages)
text txt rdacontent
computer c rdamedia
online resource cr rdacarrier
Description based on publisher supplied metadata and other sources.
The gas transfer process across the air-water interface in a ottom-shear-induced turbulent environment was investigated to gain improved fundamental understanding of the physical mechanisms that control the process. For this purpose, it is necessary to reveal the hydrodynamics of the flow field as well as the molecular diffusion and the turbulent transport contributions to the total flux. Therefore, detailed laboratory experiments were conducted to obtain these information.The experiments were performed in a grid-stirred tank using a combined Particle Image Velocimetry - Laser Induced Fluorescence (PIV-LIF) technique that has been developed for these near surface gas transfer measurements. The turbulence characteristics of the velocity near the interface were acquired from the PIV measurements and showed generally good agreement with the theoretical profiles from Hunt & Graham (1978). The LIF technique enabled visualization of the planar concentration fields which provided more insight into the gas transfer mechanisms. The high data resolution allowed detailed quantification of the concentration distribution within the thin aqueous boundary layer. The mean and turbulent fluctuation characteristics of the concentration could be elucidated and the molecular diffusion contribution to the total flux across the interface could be determined. With the combined PIV-LIF technique, which enables simultaneous and spatially synoptic measurements of 2D velocity and concentration fields, the turbulent mass flux term cw and also the total mass flux across the air-water interface could be quantified directly. For the first time, a particular trend can be inferred from the measured mean cw profiles. It could also be shown that the contribution of the turbulent mass flux to the total gas flux is significant. The co-spectra indicated different behavior for the cases with lower and higher turbulent Reynolds numbers.The interrelated interpretation of the obtained results suggest that the gas transfer process is controlled by a spectrum of different eddy sizes and the gas transfer at different turbulence levels can be associated to certain eddy sizes. For high turbulence levels the gas transfer should be asymptotic to the small eddy model, whereas for low turbulence level to the large eddy model. The new results of turbulent mass flux should aid as an excellent database in refining numerical models and developing more accurate models for the prediction of the transfer velocity.
Particle image velocimetry.
1000003544
language English
format eBook
author Jirka, Gerhard H.,
spellingShingle Jirka, Gerhard H.,
Gas transfer at the air-water interface in a turbulent flow environment /
author_facet Jirka, Gerhard H.,
author_variant g h j gh ghj
author_role VerfasserIn
author_sort Jirka, Gerhard H.,
title Gas transfer at the air-water interface in a turbulent flow environment /
title_full Gas transfer at the air-water interface in a turbulent flow environment / Gerhard H. Jirka.
title_fullStr Gas transfer at the air-water interface in a turbulent flow environment / Gerhard H. Jirka.
title_full_unstemmed Gas transfer at the air-water interface in a turbulent flow environment / Gerhard H. Jirka.
title_auth Gas transfer at the air-water interface in a turbulent flow environment /
title_new Gas transfer at the air-water interface in a turbulent flow environment /
title_sort gas transfer at the air-water interface in a turbulent flow environment /
publisher KIT Scientific Publishing,
publishDate 2005
physical 1 online resource (ix, 128 pages)
isbn 1000003544
callnumber-first T - Technology
callnumber-subject TA - General and Civil Engineering
callnumber-label TA357
callnumber-sort TA 3357.5 M43 J575 42005
illustrated Not Illustrated
dewey-hundreds 600 - Technology
dewey-tens 620 - Engineering
dewey-ones 620 - Engineering & allied operations
dewey-full 620.1
dewey-sort 3620.1
dewey-raw 620.1
dewey-search 620.1
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is_hierarchy_title Gas transfer at the air-water interface in a turbulent flow environment /
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