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The structure of turbulence near a tall forest edge: the backward-facing step flow analogy revisited 总被引:5,自引:0,他引:5
Matteo Detto Gabriel G Katul Mario Siqueira Jehn-Yih Juang Paul Stoy 《Ecological applications》2008,18(6):1420-1435
Flow disturbances near tall forest edges are receiving significant attention in diverse disciplines including ecology, forest management, meteorology, and fluid mechanics. Current theories suggest that near a forest edge, when the flow originates from a forest into a large clearing, the flow retains its forest canopy turbulence structure at the exit point. Here, we propose that this framework is not sufficiently general for dense forested edges and suggest that the flow shares several attributes with backward-facing step (BFS) flow. Similar analogies, such as rotor-like circulations, have been proposed by a number of investigators, though the consequences of such circulations on the primary terms in the mean momentum balance at the forest clearing edge have rarely been studied in the field. Using an array of three triaxial sonic anemometers positioned to measure horizontal and vertical gradients of the velocity statistics near a forest edge, we show that the flow structure is more consistent with an intermittent recirculation pattern, rather than a continuous rotor, whose genesis resembles the BFS flow. We also show that the lateral velocity variance, v'2, is the moment that adjusts most slowly with downwind distance as the flow exits from the forest into the clearing. Surprisingly, the longitudinal and vertical velocity variances (u'2 and w'2) at the forest edge were comparable in magnitude to their respective values at the center of a large grass-covered forest clearing, suggesting rapid adjustment at the edge. Discussions on how the forest edge modifies the spectra and co-spectra of momentum fluxes, effective mixing length, and static pressure are also presented. 相似文献
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Animal lifespans range from a few days to many decades, and this life history diversity is especially pronounced in ants.
Queens can live for decades. Males, in contrast, are often assumed to act as ephemeral sperm delivery vessels that die after
a brief mating flight—a view developed from studies of lekking species in temperate habitats. In a tropical ant assemblage,
we found that males can live days to months outside the nest, a trait hypothesized to be associated with female calling, another
common mating system. We combined feeding experiments with respirometry to show that lifespan can be enhanced over 3 months
by feeding outside the nest. In one focal female calling species, Ectatomma ruidum, feeding enhanced male lifespan, but not sperm content. Extended lifespans outside the nest suggest stronger than expected
selection on premating traits of male ants, although the ways these traits shape male mating success remain poorly understood. 相似文献
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