用双反应物模型估计地表水和地下水中的快、慢反应组分

P. Jamwal, M. Naveen, Y. Javeed
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引用次数: 2

摘要

摘要维持配水网络中的余氯水平是一项具有挑战性的任务,特别是在通常间歇性供水的发展中国家。为了模拟配水网络中氯的衰变,了解散装水中氯的动力学是非常重要的。最近的研究表明,氯的衰变速率取决于初始氯水平和水中存在的有机和无机物的类型,这表明一阶衰变模型无法准确预测散装水中的氯衰变。本研究采用双反应物(2R)模型对地表水和地下水中的快、慢反应组分进行估算。我们对地表水和地下水在初始氯含量为1、2和5 mg L−1时进行了实验规模试验。我们使用衰减数据集来估计地表水和地下水的最佳参数值。校正后,用两个不同初始氯浓度(ICCs)的衰变数据集验证2R模型。这项研究得出了三个重要发现。(a)我们发现地下水中慢速和快速反应成分的比例是地表水的30倍。这一观察结果支持了现有文献的观点,即地下水中存在高水平的慢反应组分(锰和芳香烃)。(b)对于地表水和地下水,我们都获得了良好的模型预测,解释了所有情况下数据方差的97% %。衰减数据集的均方误差与仪器误差接近,表明2R模型对两种水中氯的预测是可行的。(c)在深部地下水中,对于高ICC水平(> 2 mg L−1),一阶模型可以准确预测散装水中氯的衰变。
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Estimating fast and slow reacting components in surface water and groundwater using a two-reactant model
Abstract. Maintaining residual chlorine levels in a water distribution network is a challenging task, especially in the context of developing countries where water is usually supplied intermittently. To model chlorine decay in water distribution networks, it is very important to understand chlorine kinetics in bulk water. Recent studies have suggested that chlorine decay rate depends on initial chlorine levels and the type of organic and inorganic matter present in water, indicating that a first-order decay model is unable to accurately predict chlorine decay in bulk water. In this study, we employed the two-reactant (2R) model to estimate the fast and slow reacting components in surface water and groundwater. We carried out a bench-scale test for surface water and groundwater at initial chlorine levels of 1, 2, and 5 mg L−1. We used decay data sets to estimate optimal parameter values for both surface water and groundwater. After calibration, the 2R model was validated with two decay data sets with varying initial chlorine concentrations (ICCs). This study arrived at three important findings. (a) We found that the ratio of slow to fast reacting components in groundwater was 30 times greater than that of the surface water. This observation supports the existing literature which indicates the presence of high levels of slow reacting fractions (manganese and aromatic hydrocarbons) in groundwater. (b) Both for surface water and groundwater, we obtained good model prediction, explaining 97 % of the variance in data for all cases. The mean square error obtained for the decay data sets was close to the instrument error, indicating the feasibility of the 2R model for chlorine prediction in both types of water. (c) In the case of deep groundwater, for high ICC levels (> 2 mg L−1), the first-order model can accurately predict chlorine decay in bulk water.
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来源期刊
Drinking Water Engineering and Science
Drinking Water Engineering and Science Environmental Science-Water Science and Technology
CiteScore
3.90
自引率
0.00%
发文量
3
审稿时长
40 weeks
期刊最新文献
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