Flow hydrodynamics in tidal marsh canopies
Гидродинамика течения в пологах приливных болот
1995-12-01
SCID: 54.1/kwc3n9nb
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hot-film anemometryover-marsh flowplant-flow interactionstidal marsh canopiesturbulent flow energy
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Abstract (AI)
The transport of particulate and dissolved matter on the surface of coastal marshes is controlled by the hydrodynamic characteristics of over‐marsh flows. High‐frequency (5 Hz) in situ measurements of flow speed were collected in Spartina alterniflora, Juncus roemerianus, and Distichlis spicata canopies using hot‐film anemometry sensor arrays. These data indicate that mean flow speed, turbulence intensity, and the shape of the vertical speed profile are influenced by variations in plant morphology and stem density. Mean flow speed and turbulence intensity are inversely related to stern density and to distance from the creek edge. Flow energies decrease by about one order of magnitude when flows encounter the vegetated marsh surface and continue to decrease as vegetation density increases. Turbulent flow energy also decays exponentially with increasing distance from the creek edge. Reductions in flow speed coupled with energy decay provide a hydrologic mechanism for sediment deposition patterns commonly observed in marsh systems. Suspended matter transport is also affected by plant‐flow interactions. Vertical flow structure is strongly influenced by canopy morphology (plant type and plant shape). Plant‐flow interactions result in vertical speed profiles whose shapes deviate from the logarithmic profile typical in free‐stream conditions and in the development of transitional flow regimes (i.e. neither laminar nor fully turbulent).
Key Findings
1
Canopy–flow interactions produce non-logarithmic vertical velocity profiles and transitional regimes that are neither laminar nor fully turbulent, affecting suspended-matter transport.
2
High-frequency in situ measurements showed that plant morphology and stem density control mean flow speed, turbulence intensity, and vertical velocity-profile shape in tidal marsh canopies.
3
Mean flow speed and turbulence intensity decrease with increasing stem density and distance from the creek edge.
4
Turbulent flow energy decays exponentially with increasing distance from the creek edge, promoting sediment deposition patterns observed in marshes.
5
Vegetated marsh surfaces reduce flow energy by approximately one order of magnitude, with further reductions as vegetation density increases.
Research Object
Over-marsh flows through coastal marsh canopies of Spartina alterniflora, Juncus roemerianus, and Distichlis spicata
Research Subject
Hydrodynamic characteristics and plant–flow interactions, including mean flow speed, turbulence intensity, vertical speed profiles, flow-energy decay, and transitional flow regimes as functions of plant morphology, stem density, and distance from the creek edge
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1995-12-01
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