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首页> 外文期刊>Ocean Science Discussions >Absolute Salinity, ''Density Salinity'' and the Reference-Composition Salinity Scale: present and future use in the seawater standard TEOS-10
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Absolute Salinity, ''Density Salinity'' and the Reference-Composition Salinity Scale: present and future use in the seawater standard TEOS-10

机译:绝对盐度,“密度盐度”和参考组成盐度标度:海水标准TEOS-10的当前和将来使用

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Salinity plays a key role in the determination of the thermodynamic properties of seawater and the new TEOS-101 standard provides a consistent and effective approach to dealing with relationships between salinity and these thermodynamic properties. However, there are a number of practical issues that arise in the application of TEOS-10, both in terms of accuracy and scope, including its use in the reduction of field data and in numerical models. First, in the TEOS-10 formulation for IAPSO Standard Seawater, the Gibbs function takes the Reference Salinity as its salinity argument, denoted SR, which provides a measure of the mass fraction of dissolved material in solution based on the Reference Composition approximation for Standard Seawater. We discuss uncertainties in both the Reference Composition and the Reference-Composition Salinity Scale on which Reference Salinity is reported. The Reference Composition provides a much-needed fixed benchmark but modified reference states will inevitably be required to improve the representation of Standard Seawater for some studies. However, the Reference-Composition Salinity Scale should remain unaltered to provide a stable representation of salinity for use with the TEOS-10 Gibbs function and in climate change detection studies. Second, when composition anomalies are present in seawater, no single salinity variable can fully represent the influence of dissolved material on the thermodynamic properties of seawater. We consider three distinct representations of salinity that have been used in previous studies and discuss the connections and distinctions between them. One of these variables provides the most accurate representation of density possible as well as improvements over Reference Salinity for the determination of other thermodynamic properties. It is referred to as "Density Salinity" and is represented by the symbol SAdens; it stands out as the most appropriate representation of salinity for use in dynamical physical oceanography. The other two salinity variables provide alternative measures of the mass fraction of dissolved material in seawater. "Solution Salinity", denoted SAsoln, is the most obvious extension of Reference Salinity to allow for composition anomalies; it provides a direct estimate of the mass fraction of dissolved material in solution. "Added-Mass Salinity", denoted SAadd, is motivated by a method used to report laboratory experiments; it represents the component of dissolved material added to Standard Seawater in terms of the mass of material before it enters solution. We also discuss a constructed conservative variable referred to as "Preformed Salinity", denoted S?, which will be useful in process-oriented numerical modelling studies. Finally, a conceptual framework for the incorporation of composition anomalies in numerical models is presented that builds from studies in which composition anomalies are simply ignored up to studies in which the influences of composition anomalies are accounted for using the results of biogeochemical models. 1TEOS-10: international Thermodynamic Equation of Seawater 2010, http://www.teos-10.org/.
机译:盐度在确定海水热力学性质中起着关键作用,新的TEOS-10 1 标准为处理盐度与这些热力学性质之间的关系提供了一致而有效的方法。但是,TEOS-10的应用在准确性和范围方面都存在许多实际问题,包括在减少现场数据和数值模型中的使用。首先,在用于IAPSO标准海水的TEOS-10配方中,吉布斯函数将参考盐度作为其盐度参数,表示为S R ,它提供了基于溶液的溶解物质质量分数的度量。标准海水的参考成分近似值。我们讨论了参考组成和参考组成盐度量表上报告参考盐度的不确定性。参考成分提供了急需的固定基准,但是对于某些研究,不可避免地需要修改的参考状态以提高标准海水的含量。但是,参考成分盐度量表应保持不变,以提供盐度的稳定表示,以便与TEOS-10 Gibbs函数配合使用以及用于气候变化检测研究。其次,当海水中存在成分异常时,没有任何盐度变量可以完全代表溶解物质对海水热力学性质的影响。我们考虑了以前研究中使用的三种不同的盐度表示形式,并讨论了它们之间的联系和区别。这些变量之一提供了密度的最准确表示,并且在确定其他热力学性质方面比参考盐度有所改进。它称为“密度盐度”,用符号S A dens 表示;它是用于动态物理海洋学的最合适的盐度表示法。其他两个盐度变量提供了海水中溶解物质质量分数的替代度量。 “溶液盐度”,表示为S A soln ,是参考盐度最明显的扩展,以允许组成异常。它可以直接估算溶液中溶解物质的质量分数。 “附加质量盐度”,表示为S A add ,是通过一种用于报告实验室实验的方法来激发的。它代表添加到标准海水中的溶解物质的成分,以其在进入溶液之前的质量为准。我们还将讨论一个构造的保守变量,称为“盐度预先设定”,表示为S ,这将在面向过程的数值建模研究中很有用。最后,提出了一种将成分异常纳入数值模型的概念框架,该框架从仅忽略成分异常的研究一直到使用生物地球化学模型的结果考虑成分异常影响的研究建立。 1 TEOS-10:2010年国际海水热力学方程,http://www.teos-10.org/。

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