State Key Laboratory of Hydraulic Engineering Simulation and Safety, Tianjin University, Tianjin, 300072, China.
Environ Sci Pollut Res Int. 2016 Jun;23(12):12332-42. doi: 10.1007/s11356-016-6448-0. Epub 2016 Mar 15.
Water transfer projects are important for realizing reasonable allocation of water resources, but once a water pollution accident occurs during such a project, the water environment is exposed to enormous risks. Therefore, it is critical to determine an appropriate emergency control system (ECS) for sudden water pollution accidents that occur in water transfer projects. In this study, the analytical hierarchy process (AHP) integrated with the coordinated development degree model (CDDM) was used to develop the ECS. This ECS was developed into two parts, including the emergency risk assessment and the emergency control. Feasible emergency control targets and control technology were also proposed for different sudden water pollution accidents. A demonstrative project was conducted in the Fangshui to Puyang channel, which is part of the Beijing-Shijiazhuang Emergency Water Supply Project (BSP) in the Middle Route of the South-to-North Water Transfer Project (MR-SNWTP) in China. However, we could not use an actual toxic soluble pollutant to validate our ECS, so we performed the experiment with sucrose to test the ECS based on its concentration variation. The relative error of peak sucrose concentration was less than 20 %.
调水工程对于实现水资源的合理配置十分重要,但在调水工程中一旦发生水污染事故,水环境将面临巨大风险。因此,建立合理的调水工程突发性水污染事故应急控制体系至关重要。本研究采用层次分析法(AHP)与协调发展度模型(CDDM)相结合的方法构建应急控制体系,将其分为应急风险评价和应急控制两部分,并针对不同突发性水污染事故提出可行的应急控制目标和控制技术。以南水北调中线工程北京至石家庄段应急供水工程的房山水至濮阳段为示范工程,由于无法采用实际有毒可溶污染物进行验证,因此采用蔗糖进行浓度变化实验,验证应急控制体系,其峰值蔗糖浓度的相对误差小于 20%。