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Mathematical Modeling of Diffusion of a Hydrophilic Ionic Fertilizer in Plant Cuticles: Surfactant and Hygroscopic Effects

机译:亲水离子肥料在植物表皮中扩散的数学模型:表面活性剂和吸湿作用

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摘要

The agricultural industry requires improved efficacy of sprays being applied to crops and weeds to reduce their environmental impact and increase financial returns. One way to improve efficacy is by enhancing foliar penetration. The plant leaf cuticle is the most significant barrier to agrochemical diffusion within the leaf. The importance of a mechanistic mathematical model has been noted previously in the literature, as each penetration experiment is dictated by its specific parameters, namely plant species, environmental conditions such as relative humidity and spray formulation including adjuvant addition. A mechanistic mathematical model has been previously developed by the authors, focusing on plant cuticle diffusion of calcium chloride through tomato fruit cuticles including pore swelling, ion binding and evaporation, along with the ability to vary the active ingredient concentration and type, relative humidity and plant species. Here we further develop this model to include adjuvant effects as well as the hygroscopic nature of deliquescent ionic solutions with evaporation on the cuticle surface. These modifications to a penetration and evaporation model provide a novel addition to the literature and allow the model to be applied to many types of evaporating ionic hygroscopic solutions on many types of substrates, not just plant cuticles. We validate our theoretical model results against appropriate experimental data, discuss key sensitivities and relate theoretical predictions to physical mechanisms. The important governing mechanisms influencing surfactant enhanced penetration of ionic active through plant cuticles were found to be aqueous pore radius, pore density, cuticle thickness and initial contact angle of the applied droplet; ion binding, relative humidity and evaporation including hygroscopic water absorption parameters for point of deliquescence. The sensitivity analysis indicated surfactants increase penetration by changing the point of deliquescence of a solution, which alters the water absorption and the initial contact angle, which alters the number of pores under the droplet. The results of the validation and sensitivity analysis imply that this model accounts for many of the mechanisms governing penetration in plant cuticles.
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增加财务收益。一种提高功效的方法是通过增强叶面渗透。植物叶片表皮是农用化学物质在叶片内扩散的最主要障碍。先前已经在文献中指出了机械数学模型的重要性,因为每个渗透实验均由其特定参数(即植物种类,环境条件(例如相对湿度)和包括佐剂的喷雾剂)决定。作者先前已经建立了一种机械数学模型,其重点在于氯化钙通过番茄果实表皮的植物表皮扩散,包括孔膨胀,离子结合和蒸发,以及改变活性成分浓度和类型,相对湿度和植物的能力。种类。在这里,我们进一步开发了该模型,以包括佐剂效果以及潮解性离子溶液在表皮表面蒸发的吸湿性。对渗透和蒸发模型的这些修改为文献提供了新颖的补充,并使该模型不仅可以应用于植物表皮,还可以应用于多种类型的基质上的多种类型的蒸发离子吸湿溶液。我们根据适当的实验数据验证了理论模型的结果,讨论了关键的敏感性并将理论预测与物理机制联系起来。发现影响表面活性剂增强离子活性剂通过植物表皮渗透的重要控制机制是所施加的液滴的水孔半径,孔密度,表皮厚度和初始接触角。离子结合,相对湿度和蒸发,包括潮解点的吸湿性吸水参数。敏感性分析表明,表面活性剂通过改变溶液的潮解点来增加渗透性,从而改变吸水率和初始接触角,从而改变液滴下的孔数。验证和敏感性分析的结果表明,该模型解释了许多控制植物表皮渗透的机制。

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