关于保守混合的一个注记:对旧金山河口盐度-迁移模型成分选择的启示

Q3 Agricultural and Biological Sciences San Francisco Estuary and Watershed Science Pub Date : 2023-06-15 DOI:10.15447/sfews.2023v21iss2art3
P. Hutton, Sujoy B. Roy
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引用次数: 0

摘要

比电导(EC)与保守混合行为的偏差在科学文献中得到了证实。这一原理是基于这样的观察,即随着水样中盐浓度的增加,样品中单个离子的迁移率降低,因此它们的导电能力降低。尽管如此,旧金山河口(河口)一些常用的盐度传输模型将EC作为主要模拟成分,将其视为保守量。采用这种建模方法可能是为了利用EC数据的广泛可用性进行模型校准和验证,并消除在以具有不同离子组成的多源水为特征的领域中在EC和盐度之间转换的需要。可以说,这种方法在数据转换误差和模型模拟误差之间提供了合理的折衷。在本文中,我们对这种方法进行了严格的评估,采用了广泛的盐度数据集,其中包括河口EC和主要离子浓度的测量。我们证明并量化了EC偏离稳态、保守混合行为的情况;回顾三种整体盐度测量(实际盐度、离子强度和极限等效电导)的保守混合行为;并评价其与河口EC的源相关关系。我们发现,限制等效电导——一个假设水样中单个离子之间不受抑制的流动性的值——是河口盐度传输的一个有吸引力的替代方案。除了是一个保守的量外,它还与河口主要源水的EC一致相关,从而解决了与数据翻译错误相关的问题。最后,我们讨论了采用各种盐度传输模型组成部分的利弊。
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A Note on Conservative Mixing: Implications for Selecting Salinity-Transport Model Constituents in the San Francisco Estuary
The deviation of specific electrical conductance (EC) from conservative mixing behavior is well-established in the scientific literature. This principle is based on the observation that, as salt concentration in a water sample increases, the mobility of individual ions in the sample decreases, and thus their ability to conduct electricity decreases. Despite this fact, some commonly used models for salinity transport in the San Francisco Estuary (estuary) utilize EC as a primary simulation constituent, treating it as a conservative quantity. Such a modeling approach has likely been followed to exploit the wide availability of EC data for model calibration and validation, and to obviate the need to translate between EC and salinity in a domain characterized by multiple source waters with varying ionic make-ups. Arguably, this approach provides a reasonable trade-off between data translation error and model simulation error. In this paper, we critically evaluate this approach, employing an extensive salinity data set that includes measurements of EC and major ion concentrations in the estuary. We demonstrate and quantify EC deviation from steady-state, conservative mixing behavior; review the conservative mixing behavior of three bulk salinity measures (practical salinity, ionic strength, and limiting equivalent conductance); and evaluate their source-dependent correlations with EC in the estuary. We find limiting equivalent conductance—a value that assumes uninhibited mobility among individual ions in a water sample—to be an attractive alternative for salinity transport in the estuary. In addition to being a conservative quantity, it is consistently correlated with EC in the estuary’s dominant source waters, and thus addresses concerns related to data-translation error. We conclude this paper discussing pros and cons of adopting various salinity-transport model constituents.
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来源期刊
San Francisco Estuary and Watershed Science
San Francisco Estuary and Watershed Science Environmental Science-Water Science and Technology
CiteScore
2.90
自引率
0.00%
发文量
24
审稿时长
24 weeks
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