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首页> 外文期刊>Hydrological Processes >Spatio‐temporal heterogeneity in soil water stable isotopic composition and its ecohydrologic implications in semiarid ecosystems
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Spatio‐temporal heterogeneity in soil water stable isotopic composition and its ecohydrologic implications in semiarid ecosystems

机译:土壤水分稳定同位素组成的时代异质性及半胱氨酸生态系统的生态文化意义

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摘要

Spatio-temporal heterogeneity in soil water content is recognized as a common phenomenon, but heterogeneity in the hydrogen and oxygen isotope composition of soil water, which can reveal processes of water cycling within soils, has not been well studied. New advances are being driven by measurement approaches allowing sampling with high density in both space and time. Using in situ soil water vapour probe techniques, combined with conventional soil and plant water vacuum distillation extraction, we monitored the hydrogen and oxygen stable isotopic composition of soil and plant waters at paired sites dominated by grasses and Gambel's oak (Quercus gambelii) within a semiarid montane ecosystem over the course of a growing season. We found that sites spaced only 20 m apart had profoundly different soil water isotopic and volumetric conditions. We document patterns of depth- and time-explicit variation in soil water isotopic conditions at these sites and consider mechanisms for the observed heterogeneity. We found that soil water content and isotopic variability were damped under Q. gambelii, perhaps due in part to hydraulic redistribution of deep soil water or groundwater by Q. gambelii in these soils relative to the grass-dominated site. We also found some support for H isotope discrimination effects during water uptake by Q. gambelii. In this ecosystem, the soil water content was higher than that at the neighbouring Grass site, and thus, 25% more water was available for transpiration by Q. gambelii compared with the Grass site. This work highlights the role of plants in governing soil water variation and demonstrates that they can also strongly influence the isotope ratios of soil water. The resulting fine-scale heterogeneity has implications for the use of isotope tracers to study soil hydrology and evaporation and transpiration fluxes to improve understanding of water cycling through the soil-plant-atmosphere continuum.
机译:土壤水含量的时空异质性被认为是常见的现象,但在土壤水中的氢和氧同位素组成中的异质性,可以揭示土壤中的水分过程,并未得到很好的研究。通过测量方法正在驱动新进展,允许在空间和时间和时间上具有高密度的采样。使用原位土壤水蒸气探针技术,结合常规土壤和植物水真空蒸馏提取,我们监测了由草地和甘氏橡木(Quercus Gambelii)主导的土壤和植物水域的氢气和氧气稳定同位素组成在半干旱中蒙太烷生态系统在一个不断增长的季节。我们发现站点间隔20米,除了不同的土壤水同位素和体积条件。我们在这些位点进行土壤水同位素状况的深度和时间明显变化的模式,并考虑观察到的异质性机制。我们发现土壤含水量和同位素变异性在Q.Gambelii下抑制了Q.Gambelii,也许是由于Q.Gambelii在这些土壤中的液压再分布,而在这些土壤中相对于草坪占地面积。我们还发现在Q.Gambelii的水吸收过程中对H同位素歧视效应的一些支持。在这种生态系统中,土壤含水量高于邻近草地的土壤含量,因此,与草地相比,Q.Gambelii的Q.Gambelii可获得25%的水。这项工作突出了植物在控制土壤水域变化中的作用,并表明它们也可以强烈影响土壤水的同位素比率。由此产生的细尺寸异质性对使用同位素示踪剂来研究土壤水文和蒸发和蒸发通量,以改善通过土壤植物气氛连续性的水循环的理解。

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