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Atmospheric vapour and precipitation are not in isotopic equilibrium in a continental mountain environment

机译:大气蒸气和沉淀在大陆山区环境中不是同位素平衡

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Isotopic exchange with atmospheric vapour can strongly influence the isotopic values of evaporating surface water bodies (e.g., lakes), influencing our understanding of hydrological processes across aquatic and terrestrial environments. Rather than measure the isotopic values of the atmosphere directly, it is much more common to estimate values by assuming equilibrium with local precipitation. This assumption may introduce large errors, thereby biasing hydrological inferences and understanding. The pattern and magnitude of this error has been quantified only in a few circumstances. We compared observations of vapour and precipitation isotope values over a four-year record collected in a montane environment in the central Rocky Mountains of North America. We further investigated factors and conditions promoting disequilibrium. Scenario comparisons assessed the impact of theoretical and methodological elements on the accuracy of the equilibrium assumption. We found that the equilibrium assumption was not well supported by direct and continuous observations of vapour isotopes using tower-based laser isotope spectroscopy, particularly during the summer months. Across all scenarios, errors associated with the equilibrium assumption were high, credibly ranging from 14 to 154 parts per thousand for delta H-2 and 1.5 to 16.3 parts per thousand for delta O-18. Environmental covariates (e.g., vapour pressure deficit, air pressure) helped explain some of the apparent disequilibrium. Although the equilibrium assumption for estimating atmospheric vapour isotope values may not be applicable in a continental montane environment, our findings highlight opportunities for using direct vapour isotope measurements to better understand vapour sources, air mass mixing, and phase changes over complex mountainous terrain, which in turn may better constrain regional- to global-scale hydrological process estimates, such as evapotranspiration rates and the water budgets of mountain lakes.
机译:具有大气蒸气的同位素交换可以强烈影响蒸发表面水体的同位素值(例如,湖泊),影响我们对水生和陆地环境的水文过程的理解。不是直接测量大气的同位素值,而是通过假设局部降水的平衡来估计值更常见。这种假设可能引入大错误,从而偏向水文推迟和理解。此错误的模式和幅度仅在几个情况下量化。我们比较了在北美中央岩石山区的蒙太金属环境中收集的为期四年记录的蒸汽和降水同位素值的观察。我们进一步调查了促进不平衡的因素和条件。情景比较评估了理论和方法论元素对平衡假设的准确性的影响。我们发现,使用塔基激光同位素光谱,特别是在夏季,蒸气同位素的直接和连续观察,均衡的均衡假设并不适当地支持。在所有场景中,与均衡假设相关的错误很高,可靠地从14至154份千分之一的ΔH-2和1.5至16.3份千分之一的达到达到ΔO-18。环境协变量(例如,蒸气压赤字,气压)有助于解释一些明显的不平衡。虽然估计大气蒸气同位素值的平衡假设可能不适用于大陆山料环境中,但我们的研究结果突出了使用直接蒸气同位素测量以更好地理解蒸汽源,空气阵容和相变在复杂的山区地形上的机会转弯可能更好地限制区域 - 全球水文过程估计,例如爬山湖的蒸散率和水预算。

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  • 来源
    《Hydrological Processes》 |2020年第14期|3078-3101|共24页
  • 作者单位

    Univ Wyoming Dept Bot Laramie WY 82071 USA|Univ Wyoming Water Resources Environm Sci & Engn Program Laramie WY 82071 USA;

    Univ Wyoming Dept Geol & Geophys Laramie WY 82071 USA;

    Univ Wyoming Dept Bot Laramie WY 82071 USA;

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