多层含水层系统中地质铵垂直变化的制约因素

IF 11.4 1区 环境科学与生态学 Q1 ENGINEERING, ENVIRONMENTAL Water Research Pub Date : 2024-10-16 DOI:10.1016/j.watres.2024.122639
Wenhui Liu, Yao Du, Wenkai Qiu, Yamin Deng, Yanxin Wang
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引用次数: 0

摘要

近年来,地下水中地质(天然)铵含量升高的情况屡见报端。尽管人们对地下环境中氨的成因有了更深入的了解,但对地下水中地生氨的垂直变化仍然知之甚少。在此,我们选取了长江中游平原典型的多层含水层系统,通过水文地球化学分析确定了地铵的垂直异质性。随后,通过研究溶解有机物(DOM)的分子组成和含水层沉积物特征,确定了控制因素。结果表明,地下水中的铵浓度从深层含水层向浅层含水层递增(以 N 计为 2.13 至 9.88 mg/L),同时伴随着有机物(OM)降解向甲烷生成阶段的过渡(δ13C-DIC:-23.07 至-0.34‰)。与深层含水层相比,浅层含水层中 DOM 的特点是含 N OM 较多(15.1% > 13.13% > 12.76%),分子稳定性指数较低,降解程度更彻底。深度匹配沉积物中可溶性 OM 的特征与地下水中 DOM 的特征相似,表明水与岩石之间存在持续的相互作用。此外,抽水试验表明,水力传导率从深层含水层向浅层含水层下降(2.28 至 0.62 m/d),这进一步促进了地质铵在浅层含水层中的滞留。也就是说,沉积物中丰富的含氮 OM、生物活性 DOM 的强烈降解以及水动力作用下的长时间滞留等因素共同作用,导致浅含水层中的铵富集程度增加,从而产生了垂直变化。研究结果突出表明,复杂的耦合因素在控制多层含水层系统中的地生铵垂直分布方面具有重要意义,这对于了解地生污染地下水的空间异质性至关重要。
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Constraints on vertical variability of geogenic ammonium in multi-layered aquifer systems
The elevated levels of geogenic (natural) ammonium in groundwater have been frequently documented in recent years. Although improving insights have been achieved in understanding the genesis of ammonium in the subsurface environment, the vertical variability of the geogenic ammonium in groundwater remains poorly understood. Here, we selected typical multi-layered aquifer systems in the central Yangtze River plain and characterized the vertical heterogeneity of geogenic ammonium through the hydrogeochemical analysis. Subsequently, the controlling factors were identified by examining the molecular composition of dissolved organic matter (DOM) and aquifer sediment features. The results indicated that the ammonium concentration in groundwater increased from the deep to shallow aquifers (2.13 to 9.88 mg/L as N), accompanied by a transition in organic matter (OM) degradation towards the methanogenic stage (δ13C-DIC: -23.07 to -0.34‰). Compared to the deeper aquifers, the DOM in the shallow aquifer was characterized by a higher abundance of the N-containing OM (15.1% > 13.13% > 12.76%) with a lower molecular lability index, corresponding to more thorough degradation extent. The characteristics of the soluble OM in depth-matched sediments were similar to those of the DOM in groundwater, suggesting the persistent water-rock interactions. Besides, the pumping tests revealed that the hydraulic conductivity decreased from deep to shallow aquifers (2.28 to 0.62 m/d), which further facilitated the more retention of geogenic ammonium in the shallow aquifer. That is, the combined effects of the abundant N-containing OM in sediments, strong degradation of the bioactive DOM, and long retention governed by hydrodynamics contributed to the increased ammonium enrichment in the shallow aquifer, thereby generating the vertical variability. The findings underscore the significance of the complex coupled factors in controlling the vertical distribution of geogenic ammonium in multi-layered aquifer systems, which was crucial for understanding the spatial heterogeneity of geogenic contaminated groundwater.
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来源期刊
Water Research
Water Research 环境科学-工程:环境
CiteScore
20.80
自引率
9.40%
发文量
1307
审稿时长
38 days
期刊介绍: Water Research, along with its open access companion journal Water Research X, serves as a platform for publishing original research papers covering various aspects of the science and technology related to the anthropogenic water cycle, water quality, and its management worldwide. The audience targeted by the journal comprises biologists, chemical engineers, chemists, civil engineers, environmental engineers, limnologists, and microbiologists. The scope of the journal include: •Treatment processes for water and wastewaters (municipal, agricultural, industrial, and on-site treatment), including resource recovery and residuals management; •Urban hydrology including sewer systems, stormwater management, and green infrastructure; •Drinking water treatment and distribution; •Potable and non-potable water reuse; •Sanitation, public health, and risk assessment; •Anaerobic digestion, solid and hazardous waste management, including source characterization and the effects and control of leachates and gaseous emissions; •Contaminants (chemical, microbial, anthropogenic particles such as nanoparticles or microplastics) and related water quality sensing, monitoring, fate, and assessment; •Anthropogenic impacts on inland, tidal, coastal and urban waters, focusing on surface and ground waters, and point and non-point sources of pollution; •Environmental restoration, linked to surface water, groundwater and groundwater remediation; •Analysis of the interfaces between sediments and water, and between water and atmosphere, focusing specifically on anthropogenic impacts; •Mathematical modelling, systems analysis, machine learning, and beneficial use of big data related to the anthropogenic water cycle; •Socio-economic, policy, and regulations studies.
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