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Simulation on the effects of non-point source pollution in Qingjiang River basin based on SWAT model and GIS

机译:基于SWAT模型和GIS的清江流域非点源污染效果模拟

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Assessment of the pollution of water bodies from non-point sources (NPS) is a complex data-requiring and time-consuming task. The accuracy of NPS pollution models depends to a great extent on how well model input parameters describe the relevant characteristics of the watershed. It is assumed that promoting the precision of input parameters affects the simulation results of runoff, sediment and nutrients yield from the entire watershed. An integration of simulating model with GIS technique is one of the most efficient methods to NPS pollution quantified research at present. In this study, the basic database, which includes DEM, soil and landuse map, climate data, and land management data, were established for the study purpose using GIS. The generation and formation of non-point source pollution involves great uncertainty, and this uncertainty makes monitoring and controlling pollution very difficult. Understanding the main parameters that affect NPS pollution uncertainty is necessary to provide the basis for the planning and design of control measures. Based on the results of parameter sensitivity analysis, the sensitive parameters of Soil and Water Assessment Tool (SWAT) model were identified, and then model parameters related to stream flow and nutrient loadings were calibrated and validated by the observed value, and the simulation showed that the simulated values were reasonably comparable to the observed data, suggesting the validity of SWAT model. The spatial-temporal distribution features of NPS pollution in the Qingjiang River basin (a case study of this paper which is one main branch of Yangtze River basin in Three Gorges Project area) were revealed. NPS pollution mainly takes place in flood season. The critical risk areas of soil erosion were identified. Stream flow and nutrient loadings (including total nitrogen (TN) and total phosphorus (TP)) in Qingjiang River Basin were simulated. The surface runoff and nutrient yield results indicated that the averag- e annual runoff and output of TN and TP provides better understanding on stream flow and nutrient loadings responding to variations of land use conditions, agricultural tillage operation and natural rainfall etc.
机译:来自非点源水体的污染(NPS)的评估是一个复杂的数据要求和耗时的任务。非点源污染模型的精确度取决于在很大的程度上模型输入参数如何很好地描述分水岭的相关特征。据推测,促进输入参数的精度影响径流,泥沙的模拟结果和营养物质从整个流域屈服。模拟与GIS技术模型的整合是最有效的方法,以非点源污染一个目前定量研究。在这项研究中,基本的数据库,其中包括数字高程模型,土壤和土地利用地图,气候数据和土地管理数据,建立了利用GIS的研究目的。非点源污染的产生和形成涉及很大的不确定性,而这种不确定性使得监测和控制污染非常困难。了解影响非点源污染的不确定性的主要参数是必要的,以提供规划依据和设计的控制措施。基于参数灵敏度分析的结果,土壤和水评估工具(SWAT)模型的敏感参数进行鉴定,并与流流量和营养物负荷然后模型参数通过所观察到的值进行校准和验证,仿真表明所述模拟值分别为合理媲美的观测数据,提示SWAT模型的有效性。非点源污染的清江流域的时空分布特征(本文是长江流域三峡库区的一个主分区为例)被揭露。非点源污染主要发生在汛期。水土流失的关键风险领域进行了鉴定。清江流域流流量和营养物负荷(包括总氮(TN)和总磷(TP))进行了模拟。地表径流和养分产量结果表明,TN和TP的averag-Ë年径流量和输出,提供更佳的流流动的理解和营养物负荷响应的土地使用条件,农业耕作的操作和自然降雨等的变化

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