Department of Land, Air and Water Resources, University of California, Davis, CA, 95616, USA.
USDA-ARS Watershed Physical Processes and Water Quality & Ecology Research Unit, Oxford, MS, 38655, USA.
Sci Total Environ. 2021 May 1;767:144898. doi: 10.1016/j.scitotenv.2020.144898. Epub 2021 Jan 21.
The development of modeling technology to adequately simulate water and pesticide movement within the rice paddy environment faces several challenges. These include: (1) adequately representing ponded conditions; (2) the collection/implementation of temporal/spatial pesticide application data at field scales; (3) the integration of various mixed-landuses simulation schemes. Currently available models do not fully consider these challenges and results may not be sufficiently accurate to represent fate and transport of rice pesticides at watershed scales. Therefore, in this study, an integrated simulation system, "RiceWQ-AnnAGNPS", was developed to fully address these challenges and is illustrated in a California watershed with rice farming practices. The integrated system successfully extends field level simulations to watershed scales while considering the impact of mixed landuses on downstream loadings. Moreover, the system maintains the application information at fine spatial scales and handles varying treated paddy areas via the "split and adjust" approach. The new system was evaluated by investigating the fate and transport of thiobencarb residues in the Colusa Basin, California as a case study. Thiobencarb concentrations in both water and sediment phases were accurately captured by the calibrated RiceWQ model at the edge of field. After spatial upscaling, the integrated system successfully reflected both the seasonal pattern of surface runoff and the timing of monthly thiobencarb loadings. Incorporating future enhancements can further improve model performance by including more detailed water drainage schedules and management practices, improving the accuracy of summer runoff estimations, and incorporating a more sophisticated in-stream process module. This integrated system provides a framework for evaluating rice pesticide impacts as part of a basin level management approach to improve water quality, which can be extended to other rice agrochemicals, or other areas with fine-scale spatial information of pesticide applications.
建模技术的发展以充分模拟稻田环境中的水和农药运移面临着若干挑战。这些挑战包括:(1)充分代表积水条件;(2)在田间尺度上收集/实施时间/空间农药应用数据;(3)整合各种混合土地利用模拟方案。目前可用的模型没有充分考虑到这些挑战,结果可能不够准确,无法代表流域尺度上的水稻农药的命运和迁移。因此,在这项研究中,开发了一个综合模拟系统“RiceWQ-AnnAGNPS”,以充分应对这些挑战,并在加利福尼亚州具有水稻种植实践的流域中进行了说明。该综合系统成功地将田间水平的模拟扩展到流域尺度,同时考虑了混合土地利用对下游负荷的影响。此外,该系统通过“拆分和调整”方法在精细空间尺度上保留应用信息,并处理不同处理稻田的面积。该新系统通过以加利福尼亚州科卢萨流域的硫丹残留为例进行评估,考察了其命运和迁移。在田间边缘,经过校准的 RiceWQ 模型准确地捕获了水和沉积物相中硫丹的浓度。经过空间扩展后,综合系统成功地反映了地表径流水的季节性模式和每月硫丹负荷的时间。通过纳入未来的增强功能,包括更详细的排水计划和管理实践,改进夏季径流量估算的准确性,并纳入更复杂的河道过程模块,可以进一步提高模型性能。该综合系统为评估水稻农药的影响提供了一个框架,作为流域水平管理方法的一部分,以改善水质,可以扩展到其他水稻农用化学品或其他具有农药应用精细空间信息的地区。