A Data-Driven Approach to Improving the Durability and Performance of Navol Polyzeinth Coatings


Authors : Dr. A. Karunamurthy; S. Priyanka

Volume/Issue : Volume 10 - 2025, Issue 5 - May


Google Scholar : https://tinyurl.com/2u8jtr6x

DOI : https://doi.org/10.38124/ijisrt/25may813

Note : A published paper may take 4-5 working days from the publication date to appear in PlumX Metrics, Semantic Scholar, and ResearchGate.


Abstract : This project focuses on the development and analysis of Navol Polyzeinth as a next-generation material for superior coating applications, leveraging Big Data techniques to optimize its performance. Navol Polyzeinth is engineered to enhance durability, resistance, and overall surface protection across a wide range of industrial uses. By integrating advanced data analytics, the system can examine experimental data, environmental factors, and performance outcomes to identify the key parameters influencing coating effectiveness. The project features a streamlined data processing framework that enables the precise evaluation of material behavior under varying conditions, reducing the need for extensive manual testing. The solution provides a user-friendly interface for visualizing results and gaining actionable insights into material optimization. The project is implemented using cutting-edge data analysis tools and aims to transform coating technology through data-driven innovation.

Keywords : Polymer Coating, Corrosion Resistance, Bio-based Material, Tomato Pomace, BPA-Free Coating, Surface Protection, Advanced Coating Technology.

References :

  1. S. Mohanty, S.K. Nayak, Natural Fibres, Biopolymers, and Biocomposites: Recent Advances in Materials Science, CRC Press, 2010.
  2. M. N. Belgacem, A. Gandini, Monomers, Polymers and Composites from Renewable Resources, Elsevier, 2008.
  3. M. Shamsuri, D. Daik, “Synthesis and Characterization of Lignin-Based Biopolymers for Coating Applications,” Ind. Crops Prod., vol. 41, pp. 9–15, 2013.
  4. J. O. Akindoyo, M. D. Beg, S. Ghazali, et al., “Polyurethane Types, Synthesis and Applications—A Review,” RSC Adv., vol. 6, no. 115, pp. 114453–114482, 2016.
  5. S. J. Eichhorn, et al., “Current International Research into Cellulose Nanofibres and Nanocomposites,” J. Mater. Sci., vol. 45, pp. 1–33, 2010.
  6. K. Madhavan Nampoothiri, N. R. Nair, R. P. John, “An Overview of the Recent Developments in Polylactide (PLA) Research,” Bioresour. Technol., vol. 101, pp. 8493–8501, 2010.
  7. G. Wypych, Handbook of Polymers, 2nd ed. ChemTec Publishing, 2016.
  8. J. Zhang, X. Liu, H. Gao, et al., “Eco-Friendly Coatings Derived from Bio-Based Polymers,” Prog. Org. Coat., vol. 123, pp. 1–10, 2018.
  9. H. Siracusa, P. Rocculi, S. Romani, M. Rosa, “Biodegradable Polymers for Food Packaging: A Review,” Trends Food Sci. Technol., vol. 19, no. 12, pp. 634–643, 2008.
  10. M. Reddy, M. Vivekanandhan, M. Misra, S. Bhatia, A. Mohanty, “Biobased Plastics and Bionanocomposites: Current Status and Future Opportunities,” Prog. Polym. Sci., vol. 38, no. 10-11, pp. 1653–1689, 2013.
  11. J. George, S. N. Sabapathi, “Cellulose Nanocrystals: Synthesis, Functional Properties, and Applications,” Nanotechnol. Sci. Appl., vol. 8, pp. 45–54, 2015.
  12. M. Scaffaro, G. Maio, N. Lopresti, “Sustainable Coatings for Packaging Applications: Advances and Challenges,” Coatings, vol. 8, no. 10, pp. 350, 2018.
  13. N. Sothornvit, J. M. Krochta, “Plasticizer Effect on Mechanical Properties of Beta-Lactoglobulin Films,” J. Food Eng., vol. 50, pp. 149–155, 2001.
  14. L. Averous, “Polylactic Acid: Synthesis, Properties, and Applications,” in Monomers, Polymers and Composites from Renewable Resources, Elsevier, 2008, pp. 433–450.
  15. M. T. Martino, M. Jiménez, F. Ruseckaite, N. Zaritzky, “Functional Properties of Edible Film Based on Casein and Starch,” Food Eng., vol. 30, pp. 211–221, 2009.
  16. S. Aloui, A. Khwaldia, “Natural Antimicrobial Edible Coatings for Food Packaging Applications: A Review,” Crit. Rev. Food Sci. Nutr., vol. 56, no. 16, pp. 340–351, 2016.
  17. R. Khandelwal, P. Dhar, S. Kaur, et al., “Biopolymer-Based Coatings for Food Packaging Applications,” Food Chem., vol. 327, pp. 127055, 2020.

This project focuses on the development and analysis of Navol Polyzeinth as a next-generation material for superior coating applications, leveraging Big Data techniques to optimize its performance. Navol Polyzeinth is engineered to enhance durability, resistance, and overall surface protection across a wide range of industrial uses. By integrating advanced data analytics, the system can examine experimental data, environmental factors, and performance outcomes to identify the key parameters influencing coating effectiveness. The project features a streamlined data processing framework that enables the precise evaluation of material behavior under varying conditions, reducing the need for extensive manual testing. The solution provides a user-friendly interface for visualizing results and gaining actionable insights into material optimization. The project is implemented using cutting-edge data analysis tools and aims to transform coating technology through data-driven innovation.

Keywords : Polymer Coating, Corrosion Resistance, Bio-based Material, Tomato Pomace, BPA-Free Coating, Surface Protection, Advanced Coating Technology.

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