Mathematical modeling of diffusion of a hydrophilic ionic fertilizer in plant cuticles: Surfactant and hygroscopic effects

, , & Forster, Wilhelmina (2018) Mathematical modeling of diffusion of a hydrophilic ionic fertilizer in plant cuticles: Surfactant and hygroscopic effects. Frontiers in Plant Science, 9, Article number: 1888 1-21.

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Mathematical Modeling of Diffusion of a Hydrophilic Ionic Fertilizer in Plant Cuticles- Surfactant and Hygroscopic Effects.pdf.
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Description

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.

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10 citations in Scopus
8 citations in Web of Science®
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ID Code: 124129
Item Type: Contribution to Journal (Journal Article)
Refereed: Yes
ORCID iD:
Farrell, Troyorcid.org/0000-0002-6629-4174
Measurements or Duration: 21 pages
Keywords: adsorption, ionic active ingredient, mathematical model, plant cuticle, porous diffusion
DOI: 10.3389/fpls.2018.01888
ISSN: 1664-462X
Pure ID: 33389626
Divisions: Past > Institutes > Institute for Future Environments
Past > QUT Faculties & Divisions > Science & Engineering Faculty
Current > Schools > School of Mathematical Sciences
Copyright Owner: Consult author(s) regarding copyright matters
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Deposited On: 08 Jan 2019 03:24
Last Modified: 01 Mar 2024 19:09