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Liquid Moisture Transportation Properties of Functional Underwears: Part 1

Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
This study investigates the effect of material composition on moisture management properties. Fiber type has significant influence on the moisture management properties of knitted fabrics. In this article, single jerseys knitted fabric samples with different yarn compositions were prepared. Liquid moisture transportation properties including wetting time, absorption rate, spreading speed, one-way transportation capability, and OMMC were evaluated by Moisture Management Tester (MMT) and vertical wicking was evaluated using thermography system and image analysis. Knitted sample having fine cotton yarns with coolmax and micro denier multifilament polypropylene showed best liquid transportation properties. There is a strong co-relation between OMMC and accumulative oneway transport index with vertical wicking of knitted samples.
Rocznik
Strony
97--103
Opis fizyczny
Bibliogr. 22 poz.
Twórcy
  • Faculty of Textile Engineering, Technical University of Liberec, Czech Republic
  • Faculty of Textile Engineering, Technical University of Liberec, Czech Republic
  • Masood Textile Mills, Pvt. Ltd, Faisalabad, Pakistan
autor
  • Faculty of Textile Engineering, Technical University of Liberec, Czech Republic
  • Faculty of Textile Engineering, Technical University of Liberec, Czech Republic
  • School of Textile and Design, University of Management and Technology, Lahore, Pakistan
Bibliografia
  • [1] B. Das, A. Das, V. K. Kothari, R. Fanguiero, and M. de Araújo, “Moisture transmission through textiles: Part I: Processes involved in moisture transmission and the factors at play,” Autex Res. J., vol. 7, no. 2, pp. 100–110, 2007.
  • [2] A. K. Haghi, “Experimental survey on heat and moisture transport through fabrics,” Int. J. Appl. Mech. Eng., vol. 10, no. 2, pp. 217–226, 2005.
  • [3] P. Chidambaram, R. Govindan, and K. C. Venkatraman, “Study of thermal comfort properties of cotton/regenerated bamboo knitted fabrics,” African J. Basic Appl. Sci., vol. 4, no. 2, pp. 60–66, 2012.
  • [4] Y. Li and A. S. W. Wong, Clothing biosensory engineering. Woodhead Publishing, 2006.
  • [5] B. Das, A. Das, V. K. Kothari, R. Fangueiro, and M. De Araújo, “Part II : Evaluation Methods and Mathematical Modelling,” vol. 7, no. September, pp. 194–216, 2007.
  • [6] D. Li and M. Ni, “Moisture properties of coolmax fiber blended with regenerated cellulose fibers,” in Information and Computing Science, 2009. ICIC’09. Second International Conference on, 2009, vol. 2, pp. 129–131.
  • [7] R. Fangueiro, A. Filgueiras, F. Soutinho, and X. Meidi, “Wicking behavior and drying capability of functional knitted fabrics,” Text. Res. J., vol. 80, no. 15, pp. 1522–1530, 2010.
  • [8] J. Hu, “Moisture Management Tester: A Method to Characterize Fabric Liquid Moisture Management Properties,” Text. Res. J., vol. 75, no. 1, pp. 57–62, 2005.
  • [9] F. MEMARIANI and E. EKHTIARI, “Study on wicking measurement in thin layer textiles by processing digital images,” 2010.
  • [10] R. Morent, N. De Geyter, C. Leys, E. Vansteenkiste, J. De Bock, and W. Philips, “Measuring the wicking behavior of textiles by the combination of a horizontal wicking experiment and image processing,” Rev. Sci. Instrum., vol. 77, no. 9, p. 93502, 2006.
  • [11] X.-Y. Jiang, X.-H. Zhou, M. Weng, J.-J. Zheng, and Y.-X. Jiang, “Image processing techniques and its application in water transportation through fabrics,” J. Fiber Bioeng. Informatics, vol. 3, no. 2, pp. 88–93, 2010.
  • [12] E. Öner, H. G. Atasağun, A. Okur, A. R. Beden, and G. Durur, “Evaluation of moisture management properties on knitted fabrics,” vol. 5000, no. August, 2016.
  • [13] Q. Chen, J. tu Fan, M. K. Sarkar, and K. Bal, “Plant-based biomimetic branching structures in knitted fabrics for improved comfort-related properties,” Text. Res. J., vol. 81, no. 10, pp. 1039–1048, 2011.
  • [14] et al. Machova, K., “Air Streaming in Spacer Fabrics to Support the Wear Comfort of Sport and Outdoor Clothing,” Melliand, vol. 6, pp. 23–28, 2006.
  • [15] D. Rajagopalan, A. P. Aneja, and J.-M. Marchal, “Modeling capillary flow in complex geometries,” Text. Res. J., vol. 71, no. 9, pp. 813–821, 2001.
  • [16] A. Perwuelz, P. Mondon, and C. Caze, “Experimental study of capillary flow in yarns,” Text. Res. J., vol. 70, no. 4, pp. 333–339, 2000.
  • [17] H. Ito and Y. Muraoka, “Water transport along textile fibers as measured by an electrical capacitance technique,” Text. Res. J., vol. 63, no. 7, pp. 414–420, 1993.
  • [18] H. Tagaya, J. Haikata, K. Nakata, and K. Nishizawa, “Measurement of capillary rise in fabrics by electric capacitance method,” Sen’i Gakkaishi, vol. 43, no. 8, pp. 422–430, 1987.
  • [19] J. Nath, P. G. Patil, and S. K. Shukla, “Design and development of multipurpose absorption rate meter,” J. Agric. Eng., vol. 38, no. 2, pp. 11–16, 2001.
  • [20] V. Ramesh Babu, G. Ramakrishnan, V. S. Subramanian, and P. D. Lakshmi Kantha, “Analysis of fabrics structure on the character of wicking,” J. Eng. Fiber. Fabr., vol. 7, no. 3–2012, pp. 28–33, 2012.
  • [21] R. Nemcokova, V. Glombikova, and P. Komarkova, “STUDY ON LIQUID MOISTURE TRANSPORT OF KNITTED FABRICS BY MEANS OF MMT, THERMOGRAPHY AND MICROTOMOGRAPHY SYSTEMS,” vol. 15, no. 4, 2015.
  • [22] A. Nazir, T. Hussain, F. Ahmad, and S. Faheem, “Effect of knitting parameters on moisture management and air permeability of interlock fabrics,” Autex Res. J., vol. 14, no. 1, pp. 39–46, 2014.
Uwagi
Opracowanie rekordu w ramach umowy 509/P-DUN/2018 ze środków MNiSW przeznaczonych na działalność upowszechniającą naukę (2019).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-3880c4db-015f-4506-bfe7-d9b7852ad8c9
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