Boundary versus internal diapycnal mixing in stratified natural waters

dc.contributor.authorGoudsmit, Gerrit-Heindeu
dc.contributor.authorPeeters, Frank
dc.contributor.authorGloor, Manueldeu
dc.contributor.authorWüest, Alfreddeu
dc.date.accessioned2011-03-24T17:34:32Zdeu
dc.date.available2011-03-24T17:34:32Zdeu
dc.date.issued1997deu
dc.description.abstractUsing the fluorescent dye uranin,tracer release experiments to study the contribution of bottom boundary mixing to diapycnal transport in stratified natural waters were performed in Lake Alpnach(central Switzerland)during 1992-1995.A first experiment involved injecting the tracer from a point source into the center of the hypolimnion (that part of the lake below the surface mixed layer). An in situ fluorometerw as then employed to detect the horizontal and vertical spreading of the tracer cloud, allowing rates of diapycnal diffusivity to be determined. As long as the tracer was confined to the interior water region, the diapycnal diffusivity was relatively small. However, after the tracer cloud had reached the lake boundary, the diapycnal diffusivity increased by approximately one order of magnitude. In a second experiment, the tracer was released near the sediment-water interface. In this case the dynamics of vertical tracer spreading were opposite. During the first few hours after tracer release, diapycnal diffusivities were large, subsequently decreasing as the tracer cloud drifted away from the lake boundary. Basin-wide diapycnal diffusivities calculated from heat flux measurements based on temperature profiles obtained from thermistor chains or conductivity-temperature-depths casts agreed well with the values obtained from the vertical tracer diffusion after horizontal homogenization. The results of the tracer experiments corroborate the hypothesis that diapycnal fluxes are determined predominantly by mixing in the bottom boundary region.eng
dc.description.versionpublished
dc.format.mimetypeapplication/pdfdeu
dc.identifier.citationFirst publ. in: Journal of Geophysical Research 102 (1997), No. C13, pp. 27,903-27,914deu
dc.identifier.doi10.1029/97JC01861
dc.identifier.ppn274926954deu
dc.identifier.urihttp://kops.uni-konstanz.de/handle/123456789/7450
dc.language.isoengdeu
dc.legacy.dateIssued2007deu
dc.rightsAttribution-NonCommercial-NoDerivs 2.0 Generic
dc.rights.urihttp://creativecommons.org/licenses/by-nc-nd/2.0/
dc.subjectboundarydeu
dc.subjectdiapycnal mixingdeu
dc.subjectstratified natural watersdeu
dc.subjectLake Alpnachdeu
dc.subject.ddc570deu
dc.titleBoundary versus internal diapycnal mixing in stratified natural waterseng
dc.typeJOURNAL_ARTICLEdeu
dspace.entity.typePublication
kops.citation.bibtex
@article{Goudsmit1997Bound-7450,
  year={1997},
  doi={10.1029/97JC01861},
  title={Boundary versus internal diapycnal mixing in stratified natural waters},
  number={C13},
  volume={102},
  issn={0148-0227},
  journal={Journal of Geophysical Research},
  pages={27, 903--27, 914},
  author={Goudsmit, Gerrit-Hein and Peeters, Frank and Gloor, Manuel and Wüest, Alfred}
}
kops.citation.iso690GOUDSMIT, Gerrit-Hein, Frank PEETERS, Manuel GLOOR, Alfred WÜEST, 1997. Boundary versus internal diapycnal mixing in stratified natural waters. In: Journal of Geophysical Research. 1997, 102(C13), pp. 27, 903-27, 914. ISSN 0148-0227. Available under: doi: 10.1029/97JC01861deu
kops.citation.iso690GOUDSMIT, Gerrit-Hein, Frank PEETERS, Manuel GLOOR, Alfred WÜEST, 1997. Boundary versus internal diapycnal mixing in stratified natural waters. In: Journal of Geophysical Research. 1997, 102(C13), pp. 27, 903-27, 914. ISSN 0148-0227. Available under: doi: 10.1029/97JC01861eng
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    <dcterms:abstract xml:lang="eng">Using the fluorescent dye uranin,tracer release experiments to study the contribution of bottom boundary mixing to diapycnal transport in stratified natural waters were performed in Lake Alpnach(central Switzerland)during 1992-1995.A first experiment involved injecting the tracer from a point source into the center of the hypolimnion (that part of the lake below the surface mixed layer). An in situ fluorometerw as then employed to detect the horizontal and vertical spreading of the tracer cloud, allowing rates of diapycnal diffusivity to be determined. As long as the tracer was confined to the interior water region, the diapycnal diffusivity was relatively small. However, after  the tracer cloud had reached the lake boundary, the diapycnal diffusivity increased by approximately one order of magnitude. In a second experiment, the tracer was released near the sediment-water interface. In this case the dynamics of vertical tracer spreading were opposite. During the first few hours after tracer release, diapycnal diffusivities were large, subsequently decreasing as the tracer cloud drifted away from the lake boundary. Basin-wide diapycnal diffusivities calculated from heat flux measurements based on temperature profiles obtained from thermistor chains or conductivity-temperature-depths casts agreed well with the values obtained from the vertical tracer diffusion after horizontal homogenization. The results of the tracer experiments corroborate the hypothesis that diapycnal fluxes are determined predominantly by mixing in the bottom boundary region.</dcterms:abstract>
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kops.sourcefield.plainJournal of Geophysical Research. 1997, 102(C13), pp. 27, 903-27, 914. ISSN 0148-0227. Available under: doi: 10.1029/97JC01861eng
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