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Nonlinear Porous Diffusion Modeling of Hydrophilic Ionic Agrochemicals in Astomatous Plant Cuticle Aqueous Pores: A mechanistic approach

机译:亲水性离子农用化学品在无鳞植物表皮水孔中的非线性多孔扩散模型:一种机械方法

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摘要

The agricultural industry requires improved efficacy of sprays being applied to crops and weeds in order to reduce their environmental impact and deliver improved financial returns. Enhanced foliar uptake is one means of improving efficacy. The plant leaf cuticle is known to be the main barrier to diffusion of agrochemicals within the leaf. The usefulness of a mathematical model to simulate uptake of agrochemicals in plant cuticles has been noted previously in the literature, as the results of each uptake experiment are specific to each formulation of active ingredient, plant species and environmental conditions. In this work we develop a mathematical model and numerical simulation for the uptake of hydrophilic ionic agrochemicals through aqueous pores in plant cuticles. We propose a novel, nonlinear, porous diffusion model for ionic agrochemicals in isolated cuticles, which extends simple diffusion through the incorporation of parameters capable of simulating: plant species variations, evaporation of surface droplet solutions, ion binding effects on the cuticle surface and swelling of the aqueous pores with water. We validate our theoretical results against appropriate experimental data, discuss the key sensitivities in the model and relate theoretical predictions to appropriate physical mechanisms. Major influencing factors have been found to be cuticle structure, including tortuosity and density of the aqueous pores, and to a lesser extent humidity and cuticle surface ion binding effects.
机译:农业行业要求将喷雾剂的功效提高到农作物和杂草上,以减少其对环境的影响并提高财务收益。增加叶面吸收是提高功效的一种手段。已知植物叶片表皮是农用化学品在叶片内扩散的主要障碍。先前已经在文献中指出了数学模型用于模拟植物表皮中农用化学品吸收的有用性,因为每个吸收实验的结果对于活性成分,植物种类和环境条件的每种配方都是特定的。在这项工作中,我们开发了一个数学模型和数值模拟,用于通过植物表皮中的水孔吸收亲水性离子农药。我们提出了一种用于离析表皮中离子农用化学品的新型,非线性,多孔扩散模型,该模型通过并入能够模拟的参数来扩展简单扩散:植物物种变化,表面液滴溶液的蒸发,表皮表面上的离子结合效应以及溶胀。用水冲洗毛孔。我们根据适当的实验数据验证了理论结果,讨论了模型中的关键敏感性并将理论预测与适当的物理机制联系起来。已经发现主要的影响因素是表皮结构,包括水孔的曲折度和密度,以及较小程度的湿度和表皮表面离子结合作用。

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