首页> 外文学位 >The partitioning of evaporanspiration along the grassland-forest continuum: Ecohydrological implications of microclimatic trends and response to amount of woody plant cover.
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The partitioning of evaporanspiration along the grassland-forest continuum: Ecohydrological implications of microclimatic trends and response to amount of woody plant cover.

机译:沿草地-森林连续体的蒸发蒸腾量的分配:微气候趋势的生态水文学意义以及对木本植物覆盖量的响应。

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摘要

Evapotranspiration dominates the water budget in drylands, exerting important controls not only on the dynamics of water, but also on the amount and distribution of vegetation on a landscape. The spatial and temporal variability of vegetation cover imposes constraints on key ecohydrological processes that feedback to the dynamics of evapotranspiration and, most importantly, its partitioning between direct evaporation and transpiration from plants, one of the most significant ecohydrological challenges. Yet, lacking are systematic evaluations of how variations in woody plant cover---a fundamental vegetation attribute of landscapes that can vary spatially with amount of cover and temporally with leaf phenology---influence the dynamics of soil microclimate and ultimately the partitioning of evapotranspiration into its components. This study presents the results of field experiments that systematically evaluated the effects of amount of canopy cover and its seasonality in both surface microclimate and soil evaporation. These field observations are complemented by controlled experiments that directly evaluate the relationship between amount of canopy cover and the partitioning of evapotranspiration, with an assessment of its larger-scale implications using a regional land surface--atmosphere model. Finally, this study presents a classroom-adaptation of the evapotranspiration partitioning experiment that was used to effectively translate new scientific concepts and information into k-12 classrooms. Overall, the results from this study provide a comprehensive understanding about the interactive ways in which canopy cover, canopy structure attributes and plant phenology influence soil surface microclimate---characterized by near-ground solar radiation and soil temperature---and soil evaporation. More specifically, the results illustrate how the main control of deciduous-woody vegetation on soil evaporation is the addition of litter to the surface. However, in absence of litter, attributes of woody cover influence soil evaporation variably with season and phenology. Further, The results from this study illustrate how the partitioning of evapotranspiration exhibits a non-linear response to amount of woody canopy cover. Notably, when incorporated into a regional surface-atmosphere model, this non-linearity strongly affects water fluxes, highlighting the potential implications for ecological, hydrological, and atmospheric processes associated with the partitioning of evapotranspiration, providing important insights for natural resource management.
机译:蒸散量是干旱地区水量的主要来源,不仅对水的动力,而且对景观中植被的数量和分布都起着重要的控制作用。植被覆盖的时空变化对关键的生态水文过程施加了限制,这些过程反馈了蒸散的动态,最重要的是,其在植物的直接蒸发和蒸腾之间进行了分配,这是最重要的生态水文挑战之一。然而,缺乏对木本植物覆盖率变化的系统评价,木本植物覆盖率是景观的基本植被属性,可以随覆盖量的变化而空间地变化,而随叶片物候的变化在时间上会影响土壤微气候的动态并最终影响蒸散的分布。纳入其组成部分。这项研究提出了田间实验的结果,该实验系统地评估了冠层覆盖量及其季节在表面微气候和土壤蒸发中的影响。这些实地观察得到了受控实验的补充,该实验直接评估冠层覆盖量与蒸散量之间的关系,并使用区域性地表-大气模型评估其更大范围的意义。最后,本研究提出了一种蒸散分配实验的教室适应方法,该方法用于将新的科学概念和信息有效地转化为k-12个教室。总体而言,这项研究的结果对冠层的覆盖,冠层的结构属性和植物物候学影响土壤表面微气候的相互作用方式有了全面的了解-以近地太阳辐射和土壤温度为特征-以及土壤蒸发。更具体而言,结果说明了落叶木本植物对土壤蒸发的主要控制方式是如何向地表添加凋落物。但是,在没有凋落物的情况下,木质覆盖物的属性会随季节和物候变化而影响土壤蒸发。此外,这项研究的结果说明了蒸散的分配如何表现出对木冠层覆盖量的非线性响应。值得注意的是,将这种非线性纳入区域地表-大气模型后,会强烈影响水通量,突显了与蒸散量分配有关的生态,水文和大气过程的潜在影响,为自然资源管理提供了重要见识。

著录项

  • 作者单位

    The University of Arizona.;

  • 授予单位 The University of Arizona.;
  • 学科 Biology Ecology.;Natural Resource Management.;Hydrology.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 236 p.
  • 总页数 236
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:37:14

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