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Influence of aquifer heterogeneity on sea level rise-induced seawater intrusion: A probabilistic approach

机译:含水层异质性对海平面上升诱导海水入侵的影响:概率方法

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Seawater intrusion (SWI) is influenced by a variety of coastal phenomena, such as sea level rise (SLR), inundation of low-lying coastal regions, coastal storms, recharge rate variations, and pumping-induced saltwater upconing. Quantification of the influence of heterogeneity in the hydraulic conductivity field on SWI combined with SLR, land-surface inundation, and recharge rate variations in an unconfined aquifer is the main objective of the present study. The principal SWI indicators used in this study are length of the SWI wedge, seawater volume, and weighted average transition zone width. Characterized by the hydraulic conductivity field variance (sigma(2)(ln)(k)), the longitudinal correlation length (lambda(x)), the type of SLR (gradual or instantaneous SLR), the land-surface inundation consideration, and the recharge rate variations, 72 scenarios have been introduced, and for each of them, 50 sets of heterogeneous hydraulic conductivity fields have been generated. Based on two approaches, namely ensemble Monte-Carlo and a Bayesian framework, it is demonstrated that: (1) the land-surface inundation consideration increases the SWI wedge length and the seawater volume regardless of the type of SLR, while it decreases the weighted average transition zone width in gradual SLR scenarios; (2) A x has a more significant impact on SWI characteristics compared to sigma(2)(ln)(k); (3) increasing the degree of aquifer heterogeneity results in larger effective dispersion values; (4) Numerical bootstrapping suggests that the introduced Bayesian framework could be adopted as an alternative to computationally demanding methods such as bootstrapping for stochastic analysis of SWI; (5) Reliability analysis indicates the general belief that considering the heterogeneity decreases the SWI wedge length and the seawater volume, while increases the transition zone width compared to the homogeneous modeling is associated with huge amounts of uncertainty proportional to the aquifer heterogeneity itself; and (6) the results show that the impact of heterogeneity on the SWI indicators is similar under different recharge rates.
机译:海水入侵(SWI)受到各种沿海现象的影响,如海平面上升(SLR),淹没低洼的沿海地区,沿海风暴,充电率变化和泵送诱导的盐水上涨。 SWI与SLR,陆地淹没和充电率变化与SWI液压导电场中的异质性对非整合含水层的补给率变化的影响是本研究的主要目的。本研究中使用的主要SWI指标是SWI楔,海水体积和加权平均过渡区宽度的长度。其特征在于液压导电场方差(Sigma(2)(Ln)(k)),纵向相关长度(Lambda(x)),单反(逐步或瞬时SLR)的类型,土地淹没考虑,以及已经引入了充电速率变化,72场景,并且对于它们中的每一个,已经产生了50组异构液压导电场。基于两种方法,即集合Monte-Carlo和贝叶斯框架,据证明:(1)土地面淹没考虑因素增加了SWI楔形长度和海水体积,而无论单反的类型如何,它会降低加权渐进单反情景中的平均转换区宽度; (2)与Sigma(2)(LN)(K)相比,X对SWI特性具有更大的影响; (3)增加含水层异质性的程度导致较大的有效分散值; (4)数值引导表明,介绍的贝叶斯框架可以作为计算要求要求苛刻的方法采用替代,例如对SWI的随机分析的自动启动; (5)可靠性分析表明,考虑异质性的一般信念降低了SWI楔形长度和海水体积,同时增加了与均匀建模相比的过渡区宽度与含水层异质性本身的大量不确定性相关联; (6)结果表明,在不同的充电率下,异质性对SWI指标的影响类似。

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