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Integrated pesticide transport modeling in surface and subsurface environments.

机译:地表和地下环境中的综合农药运输模型。

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Pesticide leaching and runoff lead to contamination of both surface and subsurface environments. The intrinsic connection between surface and ground water, in particular, increases the vulnerability of the entire hydrosystem to pesticide contamination. This study is aimed at modeling the physical and biochemical processes related to three-phase pesticide transport and transformation and quantifying the spatial and temporal variability of pesticide residues in the hydrosystem so as to evaluate their potential adverse impacts and eventually identify water-quality management strategies.; Integrity of a hydrosystem highlights the importance of integrated modeling of pesticide, water, and sediment transport. As an initial effort, a physically-based analytical integrated pesticide transport model (A-IPTM) is proposed for a simplified vadose zone-aquifer-river system and compared with a numerical counterpart that couples widely-used PRZM2 and MT3D. The A-IPTM is suitable for quickly obtaining an overall insight into pesticide pathways and conducting a screening-level environmental evaluation. Furthermore, an integrated pesticide transport model (IPTM) is developed for more sophisticated characterization of both spatial and temporal distributions of pesticide residues and their pathways in a coupled surface and subsurface system. The IPTM essentially comprises a set of internally-linked models simulating water flow and three-phase pesticide transport and transformation in the plant canopy zone, overland, vadose zone, aquifer, and river water column and bed. As one of the distinct features of this study, a hybrid semidiscrete solution method is proposed, which incorporates analytical and numerical methodologies into a uniform, flexible modeling framework. Implementation of a set of linear and nonlinear numerical schemes and flexibility in the model structure particularly enhance the capability of the IPTM. Efforts are also made to test the IPTM by means of theoretical analysis, comparison with standard numerical and analytical counterparts, and application to real-world problems. In a case study, the IPTM is applied to the Orestimba Creek basin for evaluating the environmental fate of diazinon. It is found that timing of rainfall and pesticide application as well as irrigation scheduling and methods often dominate pesticide exposure levels in surface and subsurface environments. The results also emphasize the importance of the integrated pesticide-water-crop management.
机译:农药的浸出和径流导致地面和地下环境的污染。地表水与地下水之间的固有联系尤其增加了整个水系系统对农药污染的脆弱性。本研究旨在对与三相农药运输和转化有关的物理和生化过程进行建模,并量化农药残留在水系统中的时空变化,以评估其潜在的不利影响并最终确定水质管理策略。 ;水文系统的完整性凸显了对农药,水和沉积物传输进行综合建模的重要性。作为一项初步工作,提出了一种基于物理的综合农药综合运输模型(A-IPTM),用于简化的渗流带-含水层-河流系统,并与耦合了广泛使用的PRZM2和MT3D的数值模型进行比较。 A-IPTM适用于快速全面了解农药途径并进行筛选级环境评估。此外,还开发了一种综合农药运输模型(IPTM),用于更精确地表征农药残留在时空和地下系统中的时空分布及其路径。 IPTM本质上包括一组内部链接模型,这些模型模拟植物冠层区,陆上,渗流区,含水层以及河水柱和床中的水流以及三相农药的运输和转化。作为这项研究的显着特征之一,提出了一种混合半离散求解方法,该方法将分析和数值方法学纳入统一,灵活的建模框架中。一组线性和非线性数值方案的实施以及模型结构的灵活性特别增强了IPTM的功能。还努力通过理论分析,与标准数值和分析方法的比较以及将其应用于实际问题来测试IPTM。在一个案例研究中,将IPTM应用于Orestimba Creek流域,以评估二嗪农的环境命运。结果发现,降雨时间和农药施用时间以及灌溉计划和方法通常主导着地表和地下环境中农药的暴露水平。结果还强调了农药-水-作物综合管理的重要性。

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