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Optimization of Sodium Lignosulfonate Treatment on Nylon Fabric Using Box–Behnken Response Surface Design for UV Protection

Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The effect of sodium lignosulfonate (LS) treatment on nylon fabric for enhancing its ultraviolet protection ability has been studied. Various concentrations of LS were applied on nylon fabric using the exhaust method and the treatment was optimized using Box–Behnken response surface design. The ultraviolet protection factor (UPF) is achieved, as high as 62.13 with one such LS-treated nylon fabric. The LS-treated nylon fabrics were characterized using FTIR, FESEM, Energy dispersive X-ray (EDX), and Thermo-gravimetric analysis (TGA) instruments. The UPF and color-strength (K/S) values are signifi cantly increased with an increase in the concentration of LS without any loss of tensile properties and thermal stability. The LS treatment has excellent wash fastness.
Rocznik
Strony
248--257
Opis fizyczny
Bibliogr. 21 poz.
Twórcy
  • Uttar Pradesh Textile Technology Institute, Kanpur-208001, India
  • ICAR-National Institute of Natural Fibre Engineering and Technology, 12, Regent Park, Kolkata-700040, West Bengal, India
  • ICAR-Central Sheep and Wool Research Institute, Avikanagar 304501, India
  • Uttar Pradesh Textile Technology Institute, Kanpur-208001, India
  • Uttar Pradesh Textile Technology Institute, Kanpur-208001, India
autor
  • ICAR-Central Sheep and Wool Research Institute, Avikanagar 304501, India
Bibliografia
  • [1] Ammayappan, L., Jose, S. (2015). Functional aspects, eco-testing, and environmental impact of natural dyes. Handbook of Sustainable Apparel Production, CRC Press.
  • [2] Ibrahim, N. A, Allam, E. A., El-Hossamy, M. B., El-Zairy, W. M. (2007). UV-protective finishing of cellulose/wool blended fabrics. Polymer-Plastics Technology and Engineering, 46(9), 905–911.
  • [3] Pandey, R., Patel, S., Pandit, P., Nachimuthu, S., Jose, S. (2018). Coloration of textiles using roasted peanut skin-an agro processing residue. Journal of Cleaner Production, 172, 1319–1326.
  • [4] Gies, P. (2007). Photo protection by clothing. Photodermatol Photoimmunol Photomed, 23, 264–274.
  • [5] Osterwalder, U., Schlenker, W., Rohwer, H. (2000). Facts and fiction on ultraviolet protection by clothing. Radiation Protection Dosimetry, 91(1), 255–259.
  • [6] Saravanan, D. (2007). UV protection textile Materials. AUTEX Research Journal, 7(1), 53–62.
  • [7] Fatehi, P., Ni, Y. (2011). Integrated forest biorefinery − Sulfite process. In: Zho, J, Zhang, X, Pan, X. (Eds.). Sustainable production of fuels, chemicals and fibers from forest biomass. American Chemical Society (Washington, DC). pp. 409–441.
  • [8] Vishtal, A. G., Kraslawski, A. (2011). Challenges in industrial applications of technical lignins. BioResources, 6, 3547–3568.
  • [9] Feng, B., Guo, W., Peng, J., Zhang, W. (2018). Separation of scheelite and calcite using calcium lignosulphonate as depressant. Separation and Purification Technology, 199, 346–350.
  • [10] Alsulami, Q. A., Albukhari, S. M., Hussein, M. A., Tay, G. S., Rozman, H. D. (2020). Biodegradable lignin as a reactive raw material in UV curable systems. Polymer-Plastics Technology and Materials, 59(13), 1387–1406. doi: 10.1080/25740881.2020.1750649.
  • [11] Abreu, H.S., Nascimento, A.M., Maria, M.A. (1999). Lignin structure and wood properties. Wood and Fiber Science, 31(4), 426–433.
  • [12] Zimniewska, M., Kozlowski, R., Batog, J. (2008). Molecular Crystals and Liquid Crystals, 484, 44/[416].
  • [13] Aro, T., Fatehi, P. (2017). Production and application of lignosulfonates and sulfonated lignin. ChemSusChem, 10(9), 1861–1877.
  • [14] Yang, D., Qui, X., Zhou, M., Lou, H. (2007). Properties of sodium lignosulfonate as dispersant of coal water slurry. Energy Conversion and Management, 48(9), 2433–2438.
  • [15] Gu, X. D., Sun, M. Y., Zhang, L., Fu, H. W., Cui, L., et al. (2010). UV-B induced changes in the secondary metabolites of morus alba L. leaves. Molecules, 15, 2980–2993.
  • [16] Jose, S., Mishra, L., Basu, G., Samanta, A. K. (2017). Study on reuse of coconut fiber chemical retting bath. Part II – recovery and characterization of lignin. Journal of Natural Fibers, 14, 510–518.
  • [17] Pandey, R., Jose, S., Basu, G., Sinha, M. K. (2019). Novel methods of degumming and bleaching of indian flax variety tiara. Journal of Natural Fibers, 1–11.
  • [18] Jose, S., Mishra, L., Debnath, S., Pal, S., Munda, P. K., Basu, G. (2019). Improvement of water quality of remnant from chemical retting of coconut fibre through electrocoagulation and activated carbon treatment. Journal of Cleaner Production, 210, 630–637.
  • [19] Azad fallah, M., Mirshokraei, S. A., Latibari, A. J. (2008). Photo degradation of acidolysis lignin from BCMP. Molecules, 13, 3129–3139.
  • [20] Ajao, O., Jeaidi, J., Benali, M., Restrepo, A. M., El. Mehdi, N., et al. (2018). Quantification and variability analysis of lignin optical properties for color-dependent industrial applications, Molecules, 23(2), 377.
  • [21] Jose, S., Pandit, P., Pandey, R. (2019). Chickpea husk – A potential industrial agro residue for the coloration and functional finishing of textiles. Industrial Crops and Products, 142. 111833.
Uwagi
Opracowanie rekordu ze środków MEiN, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2022-2023).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-0065c973-18e9-4db7-8ee6-cd6aa5339266
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