139
Views
1
CrossRef citations to date
0
Altmetric
Articles

Predicting stain repellency characteristics of knitted fabrics using fuzzy modeling and surface response methodology

, , &
Pages 683-691 | Received 22 Nov 2015, Accepted 15 Apr 2016, Published online: 05 May 2016

References

  • Abdjelil, R., Zeng, X., Koehl, L., & Perwuelz, A. (2013). Modeling Plasma Fabric Surface Treatment Using Fuzzy Logic and Artificial Neural Networks. Journal of Information and Computing Science, 8, 141–152.
  • Altinoz, C., & Winchester, S. (2001). A fuzzy approach to supplier selection. The Journal of The Textile Institute, 92, 155–167.10.1080/00405000108659605
  • Bae, G. Y., Min, BG., Jeong, Y. G., Lee, S. C., Jang, J. H., & Koo, G. H. (2009). Superhydrophobicity of cotton fabrics treated with silica nanoparticles and water-repellent agent. Journal of Colloid and Interface Science, 337, 170–175.10.1016/j.jcis.2009.04.066
  • Bagherzadeh, R., Montazer, M., Latifi, M., Sheikhzadeh, M., & Sattari, M. (2007). Evaluation of comfort properties of polyester knitted spacer fabrics finished with water repellent and antimicrobial agents. Fibers and Polymers, 8, 386–392.10.1007/BF02875827
  • Bector, C. R., & Chandra, S. (2004). Fuzzy mathematical programming and Fuzzy Matrix Games (pp. 21–56). Berlin: Springer.
  • Berkan, R. C., & Trubatch, S. L. (2000). Fuzzy systems design principles (pp. 22–131). New Delhi: Standard Publishers Distributors.
  • Borisova, A., & Reihmane, S. (2013). Hydrophobic, treatment of blended fabric’s surface. Materials Science, 19; ISSN 1392–1320, 169–173.
  • Box, G., & Draper, N. R. (1987). Empirical model-building and response surfaces. New York, NY: Wiley.
  • Clere. G, C. S. Master 2 Matériaux Qualité Management, Promotion 2006/2007. Surfaces très hydrophobes ou très hydrophiles: Préparation et Application.
  • Colleoni, C., Guido, E., Migani, V., & Rosace, G. (2015). Hydrophobic behaviour of non-fluorinated sol-gel based cotton and polyester fabric coatings. Journal of Industrial Textiles, 44, 815–834.10.1177/1528083713516664
  • Cox, E. (1995). Fuzzy logic for business and industry (pp. 39–59). Rockland, MA: Charles River Media.
  • Deng, X., Vroman, P., Zeng, X., & Koehl, L. (2007). A fuzzy criterion for selecting relevant process parameters for the development of nonwoven products. Journal of Information and Computing Science, 2, 93–102.
  • Deng, X., Vroman, P., Zeng, X., & Koehl, L. (2010). Selection of relevant variables for industrial process modeling by combining experimental data sensitivity and human knowledge. Engineering Applications of Artificial Intelligence, 23, 1368–1379.10.1016/j.engappai.2010.02.006
  • Draper, N., & John, J. A. (1988). Response-surface designs for quantitative and qualitative variables. Technometrics, 30, 423–428.10.1080/00401706.1988.10488437
  • Gunaseelan, J. Fluorocarbons in textile finishing. World of garment- Textile- Fashion. Retrieved from http://articles.fibre2fashion.com
  • Hanumansetty, S., Maity, J., Foster, R., Edgar, A. (2012). Stain resistance of cotton fabrics before and after finishing with admicellar polymerization. Applied Sciences, 2, 192–205. ISSN 2076-3417.
  • Hyung, N. (2001). Reviews of books and teaching materials: Elements of forecasting, 2nd edition, by Francis X. Diebold. The American Statistician, 55, 371–372. CODEN ASTAAJ. ISSN 0003-1305 (print), 1537-2731 (electronic).10.1198/tas.2001.s126
  • Jaouachi, B., Ben Hassen, M., Sahnoun, M., & Sakli, F. (2010). Evaluation of wet pneumatically spliced elastic denim yarns with fuzzy theory. The Journal of The Textile Institute, 101, 111–119.10.1080/00405000802283672
  • Jung, D. H., Park, I. J., Choi, Y. K., Lee, S. B., Park, H. S., & Rühe, J. (2002). Perfluorinated polymer monolayers on porous silica for materials with super liquid repellent properties. Langmuir, 18, 6133–6139.10.1021/la025558u
  • Kartalopoulos, S. V. (2000). Understanding neural networks and fuzzy logic: Basic concepts and applications (pp. 75–82). New Delhi: Prentice-Hall of India Pvt. Ltd.
  • Klir, G. J., & Yuan, B. (2000). Fuzzy sets and fuzzy logic: Theory and applications (pp. 35–49). New Delhi: Prentice-Hall of India Pvt. Ltd.
  • Körbahti, B. K., & Tanyolaç, A. (2009). Continuous electrochemical treatment of simulated industrial textile wastewater from industrial components in a tubular reactor. Journal of Hazardous Materials, 170, 771–778.10.1016/j.jhazmat.2009.05.032
  • Mattsson, E. (2013). Plasma treated water and oil repellent (Master Thesis). Department of Chemical and Biological Engineering Chalmers, University of Technology, Gothenburg, Sweden.
  • McCarthy, J. T., & Oner, D. (2000). Ultrahydrophobic surfaces. Effects of topography length scales on wettability. Langmuir, 16, 7777–7782.
  • Milliken, G. A., & Johnson, D. E. (1984). Analysis of messy data, vol. 1: Designed experiments. (pp. 121–144). New York, NY: Van Nostrand Reinhold.
  • Minko, S., Müller, M., Motornov, M., Nitschke, M., Grundke, K., & Stamm, M. (2003). Journal of the American Chemical Society, 125, 3896–3900.10.1021/ja0279693
  • Moghaddam, S. S., Alavi Moghaddam, M. R., & Arami, M. (2010). Coagulation/flocculation process for dye removal using sludge from water treatment plant: Optimization through response surface methodology. Journal of Hazardous Materials., 175, 651–657.10.1016/j.jhazmat.2009.10.058
  • Montgomery, D. C. (1996). Design and analysis of experiments (4th ed.). New York, NY: Wiley.
  • Myers, R. H. (1971). Response surface methodology. Boston, MA: Allyn and Bacon.
  • Nakajima, A., Abe, K., Hashimoto, K., & Watanabe, T. (2000). Preparation of hard super- hydrophobic films with visible light transmission. Thin Solid Films, 376, 140–143.10.1016/S0040-6090(00)01417-6
  • Nelson, P. R. (1983). A comparison of sample seizes for the analysis of means and analysis of variances. Journal of Quality Technology, 15, 33–39.
  • Roach, P., Shirtcliffe, N. J., & Newton, M. I. (2008). Progress in superhydrophobic surface development. Soft Matter, 4, 224–240.10.1039/B712575P
  • Schondelmaier, D., Cramm, S., Klingeler, R., Morenzin, J., Zilkens, C., & Eberhardt, W. (2002). Orientation and Self-Assembly of Hydrophobic Fluoroalkylsilanes. Langmuir, 18, 6242–6245.10.1021/la0256533
  • Somayajula, A., Asaithambi, P., Susree, M., & Matheswaran, M. (2011). Sonoelectrochemical oxidation for decolorization of reactive red 195. Ultrasonics Sonochem, 19(4), 803–11.
  • Vazquez, F. (2004). Silicone softeners for stain repellent and stain release fabric finishing. NC: Dow Corning Corporation Greensboro, USA.
  • Zadeh, L. A. (1965). Fuzzy sets. Information and Control, 8, 338–353.10.1016/S0019-9958(65)90241-X
  • Zhang, Z., & Zheng, H. (2009). Optimization for decolorization of azo dye acid green 20 by ultrasound and H2O2 using response surface methodology. Journal of Hazardous Materials., 172, 1388–1393.10.1016/j.jhazmat.2009.07.146
  • Zimmermann, H. J. (1996). Fuzzy set theory and its applications (2nd ed.). (pp. 109–169). New Delhi: Allied Publishers Limited.10.1007/978-94-015-8702-0

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.