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Modeling the Translocation and Transformation of Chemicals in the Soil-Plant Continuum: A Dynamic Plant Uptake Module for the HYDRUS Model

机译:在土壤植物连续体中化学物质的迁移和转化建模:HYDRUS模型的动态植物吸收模块

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Food contamination is responsible for thousands of deaths worldwide every year. Plants represent the most common pathway for chemicals into the human and animal food chain. Although existing dynamic plant uptake models for chemicals are crucial for the development of reliable mitigation strategies for food pollution, they nevertheless simplify the description of physicochemical processes in soil and plants, mass transfer processes between soil and plants and in plants, and transformation in plants. To fill this scientific gap, we couple a widely used hydrological model (HYDRUS) with a multicompartment dynamic plant uptake model, which accounts for differentiated multiple metabolization pathways in plant's tissues. The developed model is validated first theoretically and then experimentally against measured data from an experiment on the translocation and transformation of carbamazepine in three vegetables. The analysis is further enriched by performing a global sensitivity analysis on the soil-plant model to identify factors driving the compound's accumulation in plants' shoots, as well as to elucidate the role and the importance of soil hydraulic properties on the plant uptake process. Results of the multilevel numerical analysis emphasize the model's flexibility and demonstrate its ability to accurately reproduce physicochemical processes involved in the dynamic plant uptake of chemicals from contaminated soils.
机译:食品污染每年在全球造成数千人死亡。植物是化学物质进入人类和动物食物链的最常见途径。尽管现有的动态植物化学吸收模型对于开发可靠的食品污染缓解策略至关重要,但是它们简化了土壤和植物中物理化学过程,土壤与植物之间以及植物之间的传质过程以及植物转化的描述。为了填补这一科学空白,我们将广泛使用的水文模型(HYDRUS)与多室动态植物吸收模型相结合,该模型可解释植物组织中不同的多种代谢途径。首先从理论上验证了开发的模型,然后根据卡马西平在三种蔬菜中易位和转化的实验数据对实验数据进行了验证。通过对土壤-植物模型进行全局敏感性分析,以确定驱动该化合物在植物新芽中积累的因素,并阐明土壤水力学特性在植物吸收过程中的作用和重要性,可以进一步丰富该分析。多级数值分析的结果强调了该模型的灵活性,并证明了其能够准确地重现涉及从污染土壤中动态吸收植物化学物质的物理化学过程的能力。

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