Araştırma Makalesi
BibTex RIS Kaynak Göster

EFFECT OF WEFT YARN FIBER CONTENTS ON THE MOISTURE MANAGEMENT PERFORMANCE OF DENIM FABRICS WOVEN WITH DIFFERENT CONSTRUCTIONAL PARAMETERS

Yıl 2018, Cilt: 28 Sayı: 2, 151 - 161, 30.06.2018

Öz

The research presented in this paper assessed the effects of the properties of the weft yarns having different fiber contents (such as cotton, coolmax, cordura, thermocool and elastane) and ratios and the fabric constructional parameters on certain moisture management properties of denim fabrics. The correlation between fabric constructional parameters (such as fabric thickness, fabric weight, fabric bulk density and fabric cover factor) and moisture management properties (such as wetting time (top and bottom), spreading speed (top and bottom), accumulative one-way transport capability and overall moisture management capability) were examined in accordance with different weft yarn properties. A general overview of the results showed that moisture management property of denim fabrics was affected from fiber content ratios of weft yarns and fabric properties. In addition, while these effects were found to be related to fabric thickness, fabric weight and fabric bulk density, it was found that they were not related to fabric cover factor.

Kaynakça

  • 1. Khushbu, P. and Thakkar, A. (2015). Effect of fabric construction parameters on air permeability and thermal resistance of commercially produced denim fabric. IJSRD-International Journal for Scientific Research & Development, 3, 767-769.
  • 2. Midha, V., Kumar, S. S. and Kumar, M. N. (2017). Investigation on permeability and moisture management properties of different denim fabrics after repeated laundering. The Journal of The Textile Institute, 108, 71–77.
  • 3. Maqsood, M., Hussain, T., Malik, M. H. and Nawab Y. (2016). Modeling the effect of elastane linear density, fabric thread density and weave float on the stretch, recovery and compression properties of bi-stretch woven fabrics for compression garments. The Journal of The Textile Institute, 107, 307–315.
  • 4. Chinta, S. K. and Gujar, P. D. (2013). Significance of moisture management for high performance textile fabrics. International Journal of Innovative Research in Science, Engineering and Technology, 2, 814–819.
  • 5. SDL ATLAS MMT Moisture Management Tester. (2005). Retrieved from http:// www.sdl.atlas.com.
  • 6. Venkatesh, J. and Gowda, K. N. N. (2013). Effect of plasma treatment on the moisture management properties of regenerated bamboo fabric. International Journal of Scientific and Research Publications, 3, 1-8.
  • 7. Mangat, M. M., Hussain, T. and Bajzik, V. (2012). Impact of different weft materials and washing treatments on moisture management characteristics of denim. Journal of Engineered Fibers and Fabrics, 7, 38-49.
  • 8. Hu, J., Li, Y., Yeung, K. W., Wong, A. S. W. and Xu, W. (2005). Moisture management tester: a method to characterize fabric liquid moisture management properties. Textile Research Journal, 75, 57-62.
  • 9. Özgen, B. and Altaş, S. (2014). The investigation of thermal comfort, moisture management and handle properties of knitted fabrics made of various fibres. Tekstil ve Konfeksiyon, 24, 272-278.
  • 10. Özdil, N., Süpüren, G., Özçelik, G. and Pruchova, J. (2009). A study on the moisture transport properties of the cotton knitted fabrics in single jersey structure, Tekstil ve Konfeksiyon, 3, 218-223.
  • 11. Öner, E., Atasağun, H. G., Okur, A., Beden, A. R. and Durur, G. (2013). Evaluation of moisture management properties on knitted fabrics. The Journal of The Textile Institute, 104, 699-707.
  • 12. Selli, F. and Turhan, Y. (2017). Investigation of air permeability and moisture management properties of the commercial single jersey and rib knitted fabrics. Tekstil ve Konfeksiyon, 27, 27-31.
  • 13. Li, Y., Zhu, Q. and Yeung, K. W. (2002). Influence of thickness and porosity on coupled heat and liquid moisture transfer in porous textiles. Textile Research Journal, 72, 435-446.
  • 14. Sharabaty, T., Biguenet, F., Dupuis, D. and Viallier, P. (2008). Investigation on moisture transport through polyester / cotton fabrics. Indian Journal of Fibre & Textile Research, 33, 419-425.
  • 15. Namligoz, E. S., Coban, S. and Bahtiyari, M. I. (2010). Comparison of moisture transport properties of the various woven fabrics. Tekstil ve Konfeksiyon, 20, 93-100.
  • 16. Onofrei, E., Rocha, A. M. and Catarino, A. (2011). The influence of knitted fabrics’ structure on the thermal and moisture management properties. Jounal of Engineered Fibres and Fabrics, 6, 10-22.
  • 17. Mansor, A., Ghani, S. A. and Yahya, M. F. (2016). Knitted fabric parameters in relation to comfort properties, American Journal of Materials Science, 6, 147-151.
  • 18. Ravandi, S. H. and Valizadeh, M. (2011). Properties of fibers and fabrics that contribute to human comfort. In: Song G (ed.) Improving Comfort in Clothing, Philadelphia: Woodhead Publishing Series in Textile, 61-78.
  • 19. Bedek, G., Salaün, F., Martinkovska, Z., Devaux, E. and Dupont, D. (2011). Evaluation of thermal and moisture management properties on knitted fabrics and comparison with a physiological model in warm conditions. Applied Ergonomics, 42, 792-800.
  • 20. Umair, M., Hussain, T., Shaker, K., Nawab, Y., Maqsood, M. and Jabbar, M. (2016). Effect of woven fabric structure on the air permeability and moisture management properties. The Journal of The Textile Institute, 170, 596–605.
  • 21. Kandhavadivu, P., Rathinamoorthy, R. and Surjit, R. (2014). Thermoregulatory characteristics of bamboo / lyocell union fabrics. Indian Journal of Fibre and Textile Research,39, 386-393.
  • 22. Maqsood, M., Nawab, Y., Shaker, K., Umair, M., Ashraf, M., Baitab, D. M., Hamdani, S. T. A. and Shahid, S. (2016). Modelling the effect of weave structure and fabric thread density on mechanical and comfort properties of woven fabrics. AUTEX Research Journal, 16, 160-164.
  • 23. Das, B., Das, A., Kothari, V., Fanguiero, R. and Araujo, M. D. (2009). Moisture flow through blended fabrics – Effect of hydrophilicity. Journal of Engineered Fibers and Fabrics, 4, 20–28.
  • 24. Nayak, R. K., Punj, S. K., Chatterjee, K. N. and Behera, B. K. (2009). Comfort properties of suiting fabrics. Indian Journal of Fibre & Textile Research, 34, 122–128.
  • 25. Wang, F., Zhou, X. and Wang, S. (2009). Development processes and property measurements of moisture absorption and quick dry fabrics. Fibres & Textiles in Eastern Europe, 17, 46-49.
  • 26. Ansari, N., Nosraty, H. and Rahmani, F. (2007). Measurement of capillary spaces of woven fabric by wicking determination of water into samples. The 9th Asian and the Pacific International Conference on Textiles, Taiwan.
  • 27. Zhang, Y. and Wang, H. (2007). Modeling of capillary flow in shaped polymer fibre bundles. Journal of Materials Science, 42, 8035-8037.
  • 28. Srinivasan, J., Ramakrishnan, G., Mukhopadhyay, M., and Manoharan, M. (2007). A study of knitted fabrics from polyester microdenier fibers. The Journal of The Textile Institute, 98, 31–35.
  • 29. Baltušnikaitė, J., Abraitienė, A., Stygienė, L., Krauledas, S., Rubežienė, V. and Žuravliova, S.V. (2014). Investigation of moisture transport properties of knitted materials intended for warm underwear. Fibres & Textiles in Eastern Europe, 22, 93-100.
  • 30. Hasan, M. M. B., Calvimontes, A., Synytska, A. and Dutschk, V. (2008). Effects of topographic structure on wettability of differently woven fabrics. Texttile Research Journal, 78, 996–1003.
  • 31. Kajiwara, K., Nori, R. and Okamoto, M. (2000). New fibres from Japan. The Journal of Textile Institute, 91, 32-78.
  • 32. Manshahia, M. and Das, A. (2014). High active sportswear – A critical review, Indian Journal of Fibre & Textile Research, 39, 441-449.
  • 33. Raj, S. and Sreenivasan, S. (2009). Total wear comfort index as an objective parameter for characterization of overall wearability of cotton fabrics. Journal of Engineered Fibers and Fabrics, 4, 29-41.
  • 34. Malik, Z. A., Malik, M. H., Hussain, T. and Arain, F. A. (2011). Development of models to predict tensile strength of cotton woven fabrics. Journal of Engineered Fibers and Fabrics, 6, 46-53.
  • 35. Hsieh, Y. L. (1995). Liquid transport in fabric structures, Textile Research Journal, 65, 299-307.
  • 36. Hsieh, Y. L. and Cram, L. A. (1998). Enzymatic hydrolysis to improve wetting and absorbency of polyester fabrics, Textile Research Journal, 68, 311-319.
  • 37. Peirce, F. T. (1937). The geometry of cloth structure, The Journal of The Textile Institute, 28, T45–T96.
  • 38. Seyam, A. M. (2002). The structural design of woven fabrics: theory and practice, The Textile Institute, Textile Progress, 31, 11-19.
  • 39. Hearle, J. W. S., Grosberg, P. and Backer, S. (1969). Structural mechanics of fibers, yarns and fabrics, Wiley-Interscience, New York, USA.
  • 40. Mukaka, M. M. (2012). A guide to appropriate use of correlation coefficient in medical research, Malawi Medical Journal, 24, 69-71.
  • 41. Ponda, K. and Thakkar, A. (2015). Effect of Fabric Construction Parameters on Air Permeability and Thermal Resistance of Commercially Produced Denim Fabric, International Journal for Scientific Research & Development, 3, 767-769.
  • 42. Kumari, A. and Khurana, K. (2016). Regenerated Cellulose-Based Denim Fabric for Tropical Regions: An Analytical Study on Making Denim Comfortable, Journal of Textiles, Volume 2016, 1-10.

ATKI İPLİĞİ LİF İÇERİKLERİNİN FARKLI YAPISAL PARAMETRELERLE DOKUNAN DENİM KUMAŞLARIN NEM YÖNETİM PERFORMANSI ÜZERİNDEKİ ETKİLERİ

Yıl 2018, Cilt: 28 Sayı: 2, 151 - 161, 30.06.2018

Öz

Bu makalede sunulan araştırmada, farklı lif içeriğine ve oranlarına sahip olan atkı iplik özelliklerinin (pamuk, coolmax, cordura, thermocool ve elastan gibi) ve kumaş yapısal parametrelerinin denim kumaşlarının bazı nem yönetimi özelliklerine olan etkisi değerlendirilmiştir. Kumaş yapısal parametreleri (kalınlık, gramaj, yoğunluk ve örtme faktörü gibi) ve nem yönetimi özellikleri (ıslanma süresi (üst ve alt), yayma hızı (üst ve alt), kümülatif tek yönlü taşıma kabiliyeti ve genel nem yönetimi kabiliyeti) arasındaki korelasyon farklı atkı ipliği özellikleri ile ilişikli olarak değerlendirilmiştir. Genel olarak sonuçlar incelendiğinde, denim kumaşların nem yönetimi özelliklerinin atkı ipliklerinin lif içeriği ve içerik oranlarından etkilendiği ve bu etkilerin kumaş kalınlığı, kumaş gramajı ve kumaş yoğunluğu ile ilişkili olduğu gözlenirken, kumaş örtme faktörü değerleri ile arasında önemli derecede bir korelsyonun olmadığı gözlenmiştir.

Kaynakça

  • 1. Khushbu, P. and Thakkar, A. (2015). Effect of fabric construction parameters on air permeability and thermal resistance of commercially produced denim fabric. IJSRD-International Journal for Scientific Research & Development, 3, 767-769.
  • 2. Midha, V., Kumar, S. S. and Kumar, M. N. (2017). Investigation on permeability and moisture management properties of different denim fabrics after repeated laundering. The Journal of The Textile Institute, 108, 71–77.
  • 3. Maqsood, M., Hussain, T., Malik, M. H. and Nawab Y. (2016). Modeling the effect of elastane linear density, fabric thread density and weave float on the stretch, recovery and compression properties of bi-stretch woven fabrics for compression garments. The Journal of The Textile Institute, 107, 307–315.
  • 4. Chinta, S. K. and Gujar, P. D. (2013). Significance of moisture management for high performance textile fabrics. International Journal of Innovative Research in Science, Engineering and Technology, 2, 814–819.
  • 5. SDL ATLAS MMT Moisture Management Tester. (2005). Retrieved from http:// www.sdl.atlas.com.
  • 6. Venkatesh, J. and Gowda, K. N. N. (2013). Effect of plasma treatment on the moisture management properties of regenerated bamboo fabric. International Journal of Scientific and Research Publications, 3, 1-8.
  • 7. Mangat, M. M., Hussain, T. and Bajzik, V. (2012). Impact of different weft materials and washing treatments on moisture management characteristics of denim. Journal of Engineered Fibers and Fabrics, 7, 38-49.
  • 8. Hu, J., Li, Y., Yeung, K. W., Wong, A. S. W. and Xu, W. (2005). Moisture management tester: a method to characterize fabric liquid moisture management properties. Textile Research Journal, 75, 57-62.
  • 9. Özgen, B. and Altaş, S. (2014). The investigation of thermal comfort, moisture management and handle properties of knitted fabrics made of various fibres. Tekstil ve Konfeksiyon, 24, 272-278.
  • 10. Özdil, N., Süpüren, G., Özçelik, G. and Pruchova, J. (2009). A study on the moisture transport properties of the cotton knitted fabrics in single jersey structure, Tekstil ve Konfeksiyon, 3, 218-223.
  • 11. Öner, E., Atasağun, H. G., Okur, A., Beden, A. R. and Durur, G. (2013). Evaluation of moisture management properties on knitted fabrics. The Journal of The Textile Institute, 104, 699-707.
  • 12. Selli, F. and Turhan, Y. (2017). Investigation of air permeability and moisture management properties of the commercial single jersey and rib knitted fabrics. Tekstil ve Konfeksiyon, 27, 27-31.
  • 13. Li, Y., Zhu, Q. and Yeung, K. W. (2002). Influence of thickness and porosity on coupled heat and liquid moisture transfer in porous textiles. Textile Research Journal, 72, 435-446.
  • 14. Sharabaty, T., Biguenet, F., Dupuis, D. and Viallier, P. (2008). Investigation on moisture transport through polyester / cotton fabrics. Indian Journal of Fibre & Textile Research, 33, 419-425.
  • 15. Namligoz, E. S., Coban, S. and Bahtiyari, M. I. (2010). Comparison of moisture transport properties of the various woven fabrics. Tekstil ve Konfeksiyon, 20, 93-100.
  • 16. Onofrei, E., Rocha, A. M. and Catarino, A. (2011). The influence of knitted fabrics’ structure on the thermal and moisture management properties. Jounal of Engineered Fibres and Fabrics, 6, 10-22.
  • 17. Mansor, A., Ghani, S. A. and Yahya, M. F. (2016). Knitted fabric parameters in relation to comfort properties, American Journal of Materials Science, 6, 147-151.
  • 18. Ravandi, S. H. and Valizadeh, M. (2011). Properties of fibers and fabrics that contribute to human comfort. In: Song G (ed.) Improving Comfort in Clothing, Philadelphia: Woodhead Publishing Series in Textile, 61-78.
  • 19. Bedek, G., Salaün, F., Martinkovska, Z., Devaux, E. and Dupont, D. (2011). Evaluation of thermal and moisture management properties on knitted fabrics and comparison with a physiological model in warm conditions. Applied Ergonomics, 42, 792-800.
  • 20. Umair, M., Hussain, T., Shaker, K., Nawab, Y., Maqsood, M. and Jabbar, M. (2016). Effect of woven fabric structure on the air permeability and moisture management properties. The Journal of The Textile Institute, 170, 596–605.
  • 21. Kandhavadivu, P., Rathinamoorthy, R. and Surjit, R. (2014). Thermoregulatory characteristics of bamboo / lyocell union fabrics. Indian Journal of Fibre and Textile Research,39, 386-393.
  • 22. Maqsood, M., Nawab, Y., Shaker, K., Umair, M., Ashraf, M., Baitab, D. M., Hamdani, S. T. A. and Shahid, S. (2016). Modelling the effect of weave structure and fabric thread density on mechanical and comfort properties of woven fabrics. AUTEX Research Journal, 16, 160-164.
  • 23. Das, B., Das, A., Kothari, V., Fanguiero, R. and Araujo, M. D. (2009). Moisture flow through blended fabrics – Effect of hydrophilicity. Journal of Engineered Fibers and Fabrics, 4, 20–28.
  • 24. Nayak, R. K., Punj, S. K., Chatterjee, K. N. and Behera, B. K. (2009). Comfort properties of suiting fabrics. Indian Journal of Fibre & Textile Research, 34, 122–128.
  • 25. Wang, F., Zhou, X. and Wang, S. (2009). Development processes and property measurements of moisture absorption and quick dry fabrics. Fibres & Textiles in Eastern Europe, 17, 46-49.
  • 26. Ansari, N., Nosraty, H. and Rahmani, F. (2007). Measurement of capillary spaces of woven fabric by wicking determination of water into samples. The 9th Asian and the Pacific International Conference on Textiles, Taiwan.
  • 27. Zhang, Y. and Wang, H. (2007). Modeling of capillary flow in shaped polymer fibre bundles. Journal of Materials Science, 42, 8035-8037.
  • 28. Srinivasan, J., Ramakrishnan, G., Mukhopadhyay, M., and Manoharan, M. (2007). A study of knitted fabrics from polyester microdenier fibers. The Journal of The Textile Institute, 98, 31–35.
  • 29. Baltušnikaitė, J., Abraitienė, A., Stygienė, L., Krauledas, S., Rubežienė, V. and Žuravliova, S.V. (2014). Investigation of moisture transport properties of knitted materials intended for warm underwear. Fibres & Textiles in Eastern Europe, 22, 93-100.
  • 30. Hasan, M. M. B., Calvimontes, A., Synytska, A. and Dutschk, V. (2008). Effects of topographic structure on wettability of differently woven fabrics. Texttile Research Journal, 78, 996–1003.
  • 31. Kajiwara, K., Nori, R. and Okamoto, M. (2000). New fibres from Japan. The Journal of Textile Institute, 91, 32-78.
  • 32. Manshahia, M. and Das, A. (2014). High active sportswear – A critical review, Indian Journal of Fibre & Textile Research, 39, 441-449.
  • 33. Raj, S. and Sreenivasan, S. (2009). Total wear comfort index as an objective parameter for characterization of overall wearability of cotton fabrics. Journal of Engineered Fibers and Fabrics, 4, 29-41.
  • 34. Malik, Z. A., Malik, M. H., Hussain, T. and Arain, F. A. (2011). Development of models to predict tensile strength of cotton woven fabrics. Journal of Engineered Fibers and Fabrics, 6, 46-53.
  • 35. Hsieh, Y. L. (1995). Liquid transport in fabric structures, Textile Research Journal, 65, 299-307.
  • 36. Hsieh, Y. L. and Cram, L. A. (1998). Enzymatic hydrolysis to improve wetting and absorbency of polyester fabrics, Textile Research Journal, 68, 311-319.
  • 37. Peirce, F. T. (1937). The geometry of cloth structure, The Journal of The Textile Institute, 28, T45–T96.
  • 38. Seyam, A. M. (2002). The structural design of woven fabrics: theory and practice, The Textile Institute, Textile Progress, 31, 11-19.
  • 39. Hearle, J. W. S., Grosberg, P. and Backer, S. (1969). Structural mechanics of fibers, yarns and fabrics, Wiley-Interscience, New York, USA.
  • 40. Mukaka, M. M. (2012). A guide to appropriate use of correlation coefficient in medical research, Malawi Medical Journal, 24, 69-71.
  • 41. Ponda, K. and Thakkar, A. (2015). Effect of Fabric Construction Parameters on Air Permeability and Thermal Resistance of Commercially Produced Denim Fabric, International Journal for Scientific Research & Development, 3, 767-769.
  • 42. Kumari, A. and Khurana, K. (2016). Regenerated Cellulose-Based Denim Fabric for Tropical Regions: An Analytical Study on Making Denim Comfortable, Journal of Textiles, Volume 2016, 1-10.
Toplam 42 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Bölüm Makaleler
Yazarlar

Gizem Kara Bu kişi benim

Mine Akgun

Yayımlanma Tarihi 30 Haziran 2018
Gönderilme Tarihi 13 Eylül 2017
Kabul Tarihi 4 Haziran 2018
Yayımlandığı Sayı Yıl 2018 Cilt: 28 Sayı: 2

Kaynak Göster

APA Kara, G., & Akgun, M. (2018). EFFECT OF WEFT YARN FIBER CONTENTS ON THE MOISTURE MANAGEMENT PERFORMANCE OF DENIM FABRICS WOVEN WITH DIFFERENT CONSTRUCTIONAL PARAMETERS. Textile and Apparel, 28(2), 151-161.

No part of this journal may be reproduced, stored, transmitted or disseminated in any forms or by any means without prior written permission of the Editorial Board. The views and opinions expressed here in the articles are those of the authors and are not the views of Tekstil ve Konfeksiyon and Textile and Apparel Research-Application Center.