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Deep soil water dynamics in an undisturbed primary forest in central Amazonia: Differences between normal years and the 2005 drought

机译:亚马逊中部原始森林中深层土壤水动力学:正常年份与2005年干旱之间的差异

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摘要

Understanding how Amazonian rainforests deal with extended droughts is critical in the face of changing climate. This research analyze the physical properties and the soil water dynamics of a deep soil profile in an area of primary forest in central Amazonia to elucidate these processes under drought and nondrought conditions. Physical soil properties derived from soil cores exhibited a distinctive layer between 480 and 880cm deep, characterized by higher microporosity and low plant water availability. In situ soil moisture measurements collected during the period from January 2003 through February 2006 and for depths ranging from 10 to 1,430cm suggest that, in the study site, the top 480cm of the soil profile satisfied most of the transpirational demands in normal climatological years. However, during exceptionally dry periods, such as the 2005 drought, root uptake occurs below 480cm. As concluded by previous studies, most of the uptake is concentrated in the first meter of the soil profile: More than 40% of the total demand for transpiration is supplied by the top meter of soil. Because deep root uptake occurred at greater depths than normal during the 2005 drought, our results suggest that this is a fundamental mechanism to cope with prolonged droughts.
机译:面对气候变化,了解亚马逊雨林如何应对长期干旱至关重要。这项研究分析了亚马逊地区中部原始森林地区深层土壤剖面的物理性质和土壤水分动力学,以阐明干旱和非干旱条件下的这些过程。源自土壤核心的物理土壤特性在480至880cm深处表现出独特的层,其特征在于较高的微孔率和较低的植物水分利用率。在2003年1月至2006年2月期间收集的10到1,430cm深度的原位土壤水分测量结果表明,在研究地点,土壤剖面的顶部480cm满足了正常气候年份的大部分蒸腾需求。但是,在异常干燥的时期,例如2005年干旱,根吸收发生在480cm以下。正如以前的研究所得出的结论,大部分吸收都集中在土壤剖面的第一米:最高蒸腾需求量的40%以上来自最高土壤。由于在2005年干旱期间,深层根系吸收的深度大于正常深度,因此我们的结果表明,这是应对长期干旱的基本机制。

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