水流动和气泡促进挥发性有机化合物从饱和区向大气输送的耦合分析模型

IF 3.8 4区 环境科学与生态学 Q2 ENVIRONMENTAL SCIENCES
Shifang Wang, Lei Song, Haijie He, Wenjie Zhang
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引用次数: 0

摘要

提出了一个分析模型,用于评估控制水流和挥发性有机化合物(VOC)从饱和区通过气包区进入大气的耦合过程。通过有限元解对模型进行了验证。通过敏感性分析,评价气泡上升速度、水流量、大气条件等关键参数对VOC运移和底土环境排放的影响。挥发性有机化合物运移对土壤质地非常敏感,对渗透区毛细条纹有显著影响。与粉质壤土相比,砂质土壤中VOC浓度较高,因为粉质壤土中较大的体积含水量降低了VOC的有效扩散率。传统的扩散限制模型表明,由于水中VOC的扩散系数较低,饱和区VOC浓度急剧下降,而气泡促进运输使饱和区VOC浓度保持较高。扩散限制模型的相对VOC浓度可以比气泡促进VOC运输模型的计算值低4个数量级左右。增大气泡输运速度或减小饱和区厚度会增强VOC浓度梯度,导致排放通量显著增加。大气边界层对VOC浓度和排放也有显著影响。忽略大气边界层的影响会导致VOC排放通量被低估1.2倍。这些发现突出了气泡和水流耦合对饱和-非饱和-大气系统中挥发性有机化合物运移的重要意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analytical Model for Coupled Water Flow and Bubble-facilitated VOC Transport From the Saturated Zone to the Atmosphere

An analytical model is presented for assessing the coupled processes that govern water flow and volatile organic compound (VOC) transport from the saturated zone through the vadose region and into the atmosphere. The model is verified by a finite element solution. The sensitivity analyses are performed to evaluate the influence of key parameters, such as bubble upward velocity, water flow, atmospheric conditions on VOC transport and emissions from subsoil environments. VOC transport is sensitive to soil texture, which significantly impacts the capillary fringe in the vadose zone. Higher VOC concentrations are observed in sandy soils compared to silt loam, as the larger volumetric water content observed in the silt loam reduces effective VOC diffusivity. Traditional diffusion-limited models show a sharp concentration decrease in the saturated zone due to low diffusion coefficients of VOC in water, while bubble-facilitated transport maintains higher VOC concentrations in the saturated zone. The relative VOC concentration for diffusion-limited models can be around four orders magnitude lower than the calculated value for bubble-facilitated VOC transport model. Increased bubble transport velocity or reduced saturated zone thickness enhances the VOC concentration gradient, resulting in significantly higher emission fluxes. The atmospheric boundary layer also significantly impacts VOC concentrations and emissions. Ignoring the effects of the atmospheric boundary layer can lead to underestimations of VOC emission flux by a factor of 1.2. These findings highlight the significance of coupled bubble and water flow for the transport of VOCs in the saturated–unsaturated-atmospheric system.

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来源期刊
Water, Air, & Soil Pollution
Water, Air, & Soil Pollution 环境科学-环境科学
CiteScore
4.50
自引率
6.90%
发文量
448
审稿时长
2.6 months
期刊介绍: Water, Air, & Soil Pollution is an international, interdisciplinary journal on all aspects of pollution and solutions to pollution in the biosphere. This includes chemical, physical and biological processes affecting flora, fauna, water, air and soil in relation to environmental pollution. Because of its scope, the subject areas are diverse and include all aspects of pollution sources, transport, deposition, accumulation, acid precipitation, atmospheric pollution, metals, aquatic pollution including marine pollution and ground water, waste water, pesticides, soil pollution, sewage, sediment pollution, forestry pollution, effects of pollutants on humans, vegetation, fish, aquatic species, micro-organisms, and animals, environmental and molecular toxicology applied to pollution research, biosensors, global and climate change, ecological implications of pollution and pollution models. Water, Air, & Soil Pollution also publishes manuscripts on novel methods used in the study of environmental pollutants, environmental toxicology, environmental biology, novel environmental engineering related to pollution, biodiversity as influenced by pollution, novel environmental biotechnology as applied to pollution (e.g. bioremediation), environmental modelling and biorestoration of polluted environments. Articles should not be submitted that are of local interest only and do not advance international knowledge in environmental pollution and solutions to pollution. Articles that simply replicate known knowledge or techniques while researching a local pollution problem will normally be rejected without review. Submitted articles must have up-to-date references, employ the correct experimental replication and statistical analysis, where needed and contain a significant contribution to new knowledge. The publishing and editorial team sincerely appreciate your cooperation. Water, Air, & Soil Pollution publishes research papers; review articles; mini-reviews; and book reviews.
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