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  4. Breathing sediments: The control of diffusive transport across the sediment-water interface by periodic boundary-layer turbulence
 
research article

Breathing sediments: The control of diffusive transport across the sediment-water interface by periodic boundary-layer turbulence

Lorke, A
•
Muller, B
•
Maerki, M
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2003
Limnology And Oceanography

We performed combined in situ measurements of bottom boundary-layer turbulence and of diffusive oxygen fluxes at the sediment-water interface in a medium-sized mesotrophic lake. The turbulence was driven by internal seiching with a period of 18 h. This periodic forcing, a prominent feature of enclosed water bodies, led to distinct deviations of the structure and the dynamics of the bottom boundary layer from the classical law-of-the-wall theory. A major feature was a phase lag between the current velocity and the turbulent energy dissipation of approximately 10% of the seiching period (1.5-2 h). The oxygen flux into the sediment was controlled by the diffusive boundary layer, the thickness of which varied between 0.16 and 0.84 mm during the course of a seiching period, and was strongly affected by the periodic bottom boundary-layer turbulence. The rate of dissipation of turbulent energy in the bottom boundary layer allowed us to define the Batchelor length for dissolved oxygen, which quantifies the smallest scales of oxygen fluctuations and provides an appropriate scaling for the diffusive boundary-layer thickness and the corresponding oxygen fluxes. An analysis of the governing time scales revealed the importance of turbulence in controlling the small-scale spatial heterogeneity of the diffusive fluxes. Higher turbulence causes the diffusive boundary layer (DBL) to follow the sediment topography more smoothly, resulting in an increased area-averaged flux due to the greater effective surface area.

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Type
research article
DOI
10.4319/lo.2003.48.6.2077
Web of Science ID

WOS:000186772800001

Author(s)
Lorke, A
Muller, B
Maerki, M
Wuest, A  
Date Issued

2003

Publisher

Amer Soc Limnology Oceanography

Published in
Limnology And Oceanography
Volume

48

Issue

6

Start page

2077

End page

2085

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
APHYS  
Available on Infoscience
June 10, 2013
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/92676
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