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  • 1
    Electronic Resource
    Electronic Resource
    Palo Alto, Calif. : Annual Reviews
    Annual Review of Fluid Mechanics 35 (2003), S. 373-412 
    ISSN: 0066-4189
    Source: Annual Reviews Electronic Back Volume Collection 1932-2001ff
    Topics: Mechanical Engineering, Materials Science, Production Engineering, Mining and Metallurgy, Traffic Engineering, Precision Mechanics , Physics
    Notes: Abstract Recent small-scale turbulence observations allow the mixing regimes in lakes, reservoirs, and other enclosed basins to be categorized into the turbulent surface and bottom boundary layers as well as the comparably quiet interior. The surface layer consists of an energetic wave-affected thin zone at the very top and a law-of-the-wall layer right below, where the classical logarithmic-layer characteristic applies on average. Short-term current and dissipation profiles, however, deviate strongly from any steady state. In contrast, the quasi-steady bottom boundary layer behaves almost perfectly as a logarithmic layer, although periodic seiching modifies the structure in the details. The interior stratified turbulence is extremely weak, even though much of the mechanical energy is contained in baroclinic basin-scale seiching and Kelvin waves or inertial currents (large lakes). The transformation of large-scale motions to turbulence occurs mainly in the bottom boundary and not in the interior, where the local shear remains weak and the Richardson numbers are generally large.
    Type of Medium: Electronic Resource
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  • 2
    Electronic Resource
    Electronic Resource
    Springer
    Aquatic sciences 60 (1998), S. 210-219 
    ISSN: 1420-9055
    Keywords: Key words: Lake, mixing, mixed layer, temperature microstructure.
    Source: Springer Online Journal Archives 1860-2000
    Topics: Biology
    Notes: Abstract: A microstructure profiler was designed especially for the investigation of the diurnal dynamics of turbulent mixing in shallow lakes. 7 hours observation of these dynamics in a shallow, polymictic lake shows a multitude of different mixing processes acting together on very short time-scales. Estimated turbulent diffusivities for the surface mixed layer, using the Cox number method, are lognormally distributed with a mean of K z≈ 10-5 m2 s-1. The results are discussed within the context of their relevance for modelling the effect of turbulent mixing on phytoplankton primary production.
    Type of Medium: Electronic Resource
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