IF 11.4 1区 环境科学与生态学 Q1 ENGINEERING, ENVIRONMENTAL Water Research Pub Date : 2025-02-08 DOI:10.1016/j.watres.2025.123256
Yujing Huang , Chang Liu , Yu Shao , Yiyi Ma , Shuang Song , Feilong Dong , Tuqiao Zhang
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摘要

清洗供水管道是全球日益普遍的做法,目的是提供高质量的饮用水。冰猪清洗是一种广泛使用的管道清洗技术,可有效清除管道壁上的大量沉积物。在此过程中,吸附在沉积物上的微污染物不可避免地会释放到污水中,对公众健康构成潜在威胁。现有技术只能通过各种后处理方法来处理这些微污染物。为了提高管道清洁效率并降低成本,我们开发了一种增强型冰浆,在基础冰浆中加入微量过一硫酸盐(PMS),以实现超快、原位去除沉积物中的微污染物。与基础冰浆的比较研究表明,使用增强型冰浆可显著提高对常见微污染物卡马西平(CBZ)的去除效率。在基础冰浆中,随着氯化钠含量(3-7 wt%)的增加,10 分钟内对 CBZ 的去除率在 16-23% 之间,而在基础冰浆中引入 10 μM PMS 后,1 分钟内就能几乎完全去除 CBZ。针对增强型冰浆,全面考察了运行参数(如 PMS 和 Cl- 浓度、清洗流速)和管道特性(如 CBZ 和 Fe2+ 浓度、浊度、管道沉积物)对 CBZ 去除效率的影响。增强的微污染物去除过程主要由羟基和硫酸盐等活性物种驱动。值得注意的是,在冰渣处理过程中几乎检测不到氯化副产品,降解产物的生态毒性也很小。每立方米清洁管道的成本为 0.16 欧元,与其他方法相比,强化冰浆具有显著的经济优势。总之,强化冰浆为减少供水系统中的微污染物提供了一种环保、经济、高效的解决方案。
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Enhanced ice slurry with low oxidant consumption for ultrafast in-situ removal of micropollutants sheltered in sediments of water supply pipelines
The cleaning of water supply pipelines represents an increasingly prevalent global practice with the aim of providing high-quality drinking water. Ice pigging, a widely-utilized pipe cleaning technique, can effectively remove substantial sediment sediments from pipe walls. During this process, micropollutants adsorbed to the sediments are inevitably released into the effluent, posing a potential threat to public health. Existing technologies can only address these micropollutants through various post-treatment methods. To improve pipeline cleaning efficiency and reduce costs, we have developed an enhanced ice slurry by adding a minute quantity of peroxymonosulfate (PMS) into the base ice slurry for ultrafast, in-situ removal of micropollutants within sediments. Comparative studies with the base ice slurry demonstrate a significant enhancement in the removal efficiency of the common micropollutant carbamazepine (CBZ) using the enhanced ice slurry. While the removal efficiency of CBZ ranged from 16 to 23 % with increasing NaCl content from 3 to 7 wt% over 10 min for the base ice slurry, nearly complete removal of CBZ was achieved within 1 min by introducing 10 μM PMS into the base ice slurry. The influence of operational parameters (e.g., PMS and Cl- concentrations, cleaning flow velocity) and pipeline characteristics (e.g., CBZ and Fe2+ concentrations, turbidity, pipe sediment) on CBZ removal efficiency was comprehensively examined for the enhanced ice slurry. The enhanced micropollutant removal process was mainly driven by active species such as hydroxyl and sulfate. Remarkably, chlorinated byproducts were scarcely detected during ice pigging, and the degradation products exhibited minimal ecotoxicity. With a cost of 0.16 Euro per cubic meter of cleaned pipe, the enhanced ice slurry presents a notable economic advantage over alternative methods. Overall, the enhanced ice slurry offers an environmentally friendly, cost-effective, and efficient solution for reducing micropollutants in water supply systems.
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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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