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Production and Characterization of Controlled Release Urea Using Biopolymer and Geopolymer as Coating Materials

Synthetic polymers-based controlled release urea (CRU) leaves non-biodegradable coating shells when applied in soil. Several alternative green materials are used to produce CRU, but most of these studies have issues pertaining to nitrogen release longevity, process viability, and the ease of applica...

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Autores principales: Azeem, Babar, KuShaari, Kuzilati, Naqvi, Muhammad, Kok Keong, Lau, Almesfer, Mohammed Khaloofah, Al-Qodah, Zakaria, Naqvi, Salman Raza, Elboughdiri, Noureddine
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7077693/
https://www.ncbi.nlm.nih.gov/pubmed/32050641
http://dx.doi.org/10.3390/polym12020400
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author Azeem, Babar
KuShaari, Kuzilati
Naqvi, Muhammad
Kok Keong, Lau
Almesfer, Mohammed Khaloofah
Al-Qodah, Zakaria
Naqvi, Salman Raza
Elboughdiri, Noureddine
author_facet Azeem, Babar
KuShaari, Kuzilati
Naqvi, Muhammad
Kok Keong, Lau
Almesfer, Mohammed Khaloofah
Al-Qodah, Zakaria
Naqvi, Salman Raza
Elboughdiri, Noureddine
author_sort Azeem, Babar
collection PubMed
description Synthetic polymers-based controlled release urea (CRU) leaves non-biodegradable coating shells when applied in soil. Several alternative green materials are used to produce CRU, but most of these studies have issues pertaining to nitrogen release longevity, process viability, and the ease of application of the finished product. In this study, we utilized tapioca starch, modified by polyvinyl alcohol and citric acid, as coating material to produce controlled release coated urea granules in a rotary fluidized bed equipment. Response surface methodology is employed for studying the interactive effect of process parameters on urea release characteristics. Statistical analysis indicates that the fluidizing air temperature and spray rate are the most influential among all five process parameters studied. The optimum values of fluidizing air temperature (80 °C), spray rate (0.13 mL/s), atomizing pressure (3.98 bar), process time (110 min), and spray temperature (70 °C) were evaluated by multi-objective optimization while using genetic algorithms in MATLAB(®). Urea coated by modified-starch was double coated by a geopolymer to enhance the controlled release characteristics that produced promising results with respect to the longevity of nitrogen release from the final product. This study provides leads for the design of a fluidized bed for the scaled-up production of CRU.
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spelling pubmed-70776932020-03-20 Production and Characterization of Controlled Release Urea Using Biopolymer and Geopolymer as Coating Materials Azeem, Babar KuShaari, Kuzilati Naqvi, Muhammad Kok Keong, Lau Almesfer, Mohammed Khaloofah Al-Qodah, Zakaria Naqvi, Salman Raza Elboughdiri, Noureddine Polymers (Basel) Article Synthetic polymers-based controlled release urea (CRU) leaves non-biodegradable coating shells when applied in soil. Several alternative green materials are used to produce CRU, but most of these studies have issues pertaining to nitrogen release longevity, process viability, and the ease of application of the finished product. In this study, we utilized tapioca starch, modified by polyvinyl alcohol and citric acid, as coating material to produce controlled release coated urea granules in a rotary fluidized bed equipment. Response surface methodology is employed for studying the interactive effect of process parameters on urea release characteristics. Statistical analysis indicates that the fluidizing air temperature and spray rate are the most influential among all five process parameters studied. The optimum values of fluidizing air temperature (80 °C), spray rate (0.13 mL/s), atomizing pressure (3.98 bar), process time (110 min), and spray temperature (70 °C) were evaluated by multi-objective optimization while using genetic algorithms in MATLAB(®). Urea coated by modified-starch was double coated by a geopolymer to enhance the controlled release characteristics that produced promising results with respect to the longevity of nitrogen release from the final product. This study provides leads for the design of a fluidized bed for the scaled-up production of CRU. MDPI 2020-02-10 /pmc/articles/PMC7077693/ /pubmed/32050641 http://dx.doi.org/10.3390/polym12020400 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Azeem, Babar
KuShaari, Kuzilati
Naqvi, Muhammad
Kok Keong, Lau
Almesfer, Mohammed Khaloofah
Al-Qodah, Zakaria
Naqvi, Salman Raza
Elboughdiri, Noureddine
Production and Characterization of Controlled Release Urea Using Biopolymer and Geopolymer as Coating Materials
title Production and Characterization of Controlled Release Urea Using Biopolymer and Geopolymer as Coating Materials
title_full Production and Characterization of Controlled Release Urea Using Biopolymer and Geopolymer as Coating Materials
title_fullStr Production and Characterization of Controlled Release Urea Using Biopolymer and Geopolymer as Coating Materials
title_full_unstemmed Production and Characterization of Controlled Release Urea Using Biopolymer and Geopolymer as Coating Materials
title_short Production and Characterization of Controlled Release Urea Using Biopolymer and Geopolymer as Coating Materials
title_sort production and characterization of controlled release urea using biopolymer and geopolymer as coating materials
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7077693/
https://www.ncbi.nlm.nih.gov/pubmed/32050641
http://dx.doi.org/10.3390/polym12020400
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