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Controls on sensible heat and latent energy fluxes from a short-hydroperiod Florida Everglades marsh

涡度相关法 环境科学 旱季 沼泽 季节性 湿地 雨季 潜热 水文学(农业) 水平衡 鲍恩比率 显热 蒸散量 能量平衡 生长季节 大气科学 生态系统 生态学 地理 生物 地质学 岩土工程 气象学
作者
Jessica L. Schedlbauer,Steven F. Oberbauer,Gregory Starr,Kristine L. Jimenez
出处
期刊:Journal of Hydrology [Elsevier BV]
卷期号:411 (3-4): 331-341 被引量:22
标识
DOI:10.1016/j.jhydrol.2011.10.014
摘要

Little is known of energy balance in low latitude wetlands where there is a year-round growing season and a climate best defined by wet and dry seasons. The Florida Everglades is a highly managed and extensive subtropical wetland that exerts a substantial influence on the hydrology and climate of the south Florida region. However, the effects of seasonality and active water management on energy balance in the Everglades ecosystem are poorly understood. An eddy covariance and micrometeorological tower was established in a short-hydroperiod Everglades marsh to examine the dominant environmental controls on sensible heat (H) and latent energy (LE) fluxes, as well as the effects of seasonality on these parameters. Seasonality differentially affected H and LE fluxes in this marsh, such that H was principally dominant in the dry season and LE was strongly dominant in the wet season. The Bowen ratio was high for much of the dry season (1.5–2.4), but relatively low (<0.7) in the wet season. Net radiation strongly influenced H and LE fluxes across nearly all seasons and years (Radj2=0.48-0.79). However, the 2009 dry season LE data were not consistent with this relationship (Radj2=0.08) because of low seasonal variation in LE following a prolonged end to the previous wet season. In addition to net radiation, H and LE fluxes were significantly related to soil volumetric water content (VWC), water depth, air temperature, and occasionally vapor pressure deficit. Given that VWC and water depth were determined in part by water management decisions, it is clear that human actions have the ability to influence the mode of energy dissipation from this ecosystem. Impending modifications to water management under the Comprehensive Everglades Restoration Plan may shift the dominant turbulent flux from this ecosystem further toward LE, and this change will likely affect local hydrology and climate.

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