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EFFECTS OF USAGE ACRYLIC YARN ON THERMAL COMFORT AND MOISTURE MANAGEMENT PROPERTIES OF WOVEN SHIRTING FABRICS

Yıl 2018, Cilt: 28 Sayı: 2, 141 - 150, 30.06.2018

Öz

In this study, comfort and moisture transmission properties of fine shirting fabrics produced by combining widely used fibre types of viscose, PES and cotton with acrylic fiber were investigated. For this purpose, 10 different fabrics were woven with viscose warp and cotton, PES, viscose, acrylic, cotton/acrylic, viscose/acrylic, and PES/acrylic weft yarns and with plain and etamine weaves. Thermal resistance, thermal conductivity, thermal absorbtivity, air permeability and moisture transmission properties of fabrics were measured and the results then evaluated statistically. According to the results obtained, thermal resistance, thermal conductivity, thermal absorbtivity and air permeability properties of fabrics were not affected by material type and addition of acrylic yarns, but weaving type showed a significant effect on these fabric properties. It was also seen that material type and acrylic yarn usage in the fabrics influenced moisture management properties of fabrics and increased OMMC values.

Kaynakça

  • 1. Oğlakçıoğlu N., İlleez A.A., Erdoğan M. Ç., Marmaralı A. and Güner M., 2013, “Effects of Sewing Process on Thermal Comfort Properties of Cycling Clothes”, Journal of Textiles and Engineer, Vol:20(90), pp:32-41.
  • 2. Havenith G., 2002, “The Interaction of Clothing and Thermoregulation”, Exogenous Dermatology, Vol:1(5), pp:221-230.
  • 3. Marmaralı A., Kadoğlu H., Oğlakçıoğlu N. and Bedez Üte T., 2008, “Thermal Comfort Properties of Milk Protein/Cotton Fiber Blended Knitted Fabrics”, Simpozionul Anual Al Specialiştilor Din Industria De Tricotaje-Confectii, Iaşi, Romanya.
  • 4. Oğlakçıoğlu N., Çelik P., Bedez Üte T., Marmaralı A. and Kadoğlu H., 2009, “Thermal Comfort Properties of Angora Rabbit/Cotton Fiber Blended Knitted Fabrics”, Textile Research Journal, Vol:79(10), pp:888-894.
  • 5. Turay A., Özdil N., Süpüren G., and Özçelik G., 2009, “The Effects of The Production Conditions of Ribbon Typed Fancy Yarns on The Thermophysiological Propertions”, Tekstil ve Konfeksiyon, Vol:19(4), pp: 280-284.
  • 6. Hes L., 1999, “Optimisation of Shirt Fabrics' Composition from the Point of View of Their Appearance and Thermal Comfort”, International Journal of Clothing Science and Technology, Vol:11 (2/3), pp:105-115.
  • 7. Hes L., M. de Araujo and R. Storova, 1996, “Thermal Comfort of Socks Containing PP Filaments”, Textile Asia, December, pp:57-59.
  • 8. Oğlakçıoğlu N. and Marmaralı A., 2007, “Thermal Comfort Properties of Some Knitted Structures”, Fibres & Textiles in Eastern Europe, Vol:15 (5-6/64- 65), pp:94-96.
  • 9. Özdil N., 2008, “A Study on Thermal Comfort Properties of The Socks”, Tekstil ve Konfeksiyon, Vol:18(2), pp:154-158.
  • 10. Özdil N., Marmaralı A. and Dönmez Kretzschmar S., 2007, “Effect of Yarn Properties on Thermal Comfort of Knitted Fabrics”, International Journal of Thermal Sciences, Vol:46, pp:1318-1322.
  • 11. Vigneswaran C., Chandrasekaran K. and Senthilkumar, P., 2009, “Effect of Thermal Conductivity Behavior of Jute/Cotton Blended Knitted Fabrics”, Journal of Industrial Textiles, Vol:38(4), pp:289-307.
  • 12. Ertekin G. and Marmaralı A., 2011, “Effects of Tuck and Miss Stitches on Thermal Comfort Properties of Plain Knitted Fabrics”, Journal of Textiles and Engineer, Vol:18(83), pp:21-26.
  • 13. Shrivas R.G. and Patil L.G., 2015, “Effect Of Different Weaves Thermal Resistance Properties Shrting Cotton Fabric”, Textile Value Chain, http://www.textilevaluechain.com/index.php/article/technical/item/379-effect-of-different-weaves-on-thermal-resistance-properties-shrting-cottonfabric( Accessed:14.03.2017).
  • 14. Erenler A., 2013, “Investigation and Prediction of Comfort Properties of Clothing Aimed Weaving Fabrics”, Ph.D. Thesis, Çukurova University, Institute of Natural and Applied Science, pp:296.
  • 15. Güneşoğlu S., 2005, “Investigating the Comfort Properties of Sportwear Clothings” Ph.D. Thesis, Uludag University, Institute of Natural and Applied Science, pp:208.
  • 16. Marmaralı A., Kretzschmar D. S., Özdil N. and Oğlakçıoğlu G. N., 2006, “Parameters That Affect Thermal Comfort of Garment”, Tekstil ve Konfeksiyon, Vol:16(4), pp:241-246.
  • 17. Frydych I., Dzıworska G., and Bilska J., 2002, “Comparative Analysis Of The Thermal Insulation Properties Of Fabrics Made Of Natural And Man- Made Cellulose Fibres”, Fibres &Textiles in Eastern Europe, Vol: 4(39), pp:55-59.
  • 18. Kanat Z. E., 2007, “Comparison of Comfort Properties of Woven Fabrics Produced With Different Yarns”, M.Sc. Thesis, Ege University, Graduate Scholl of Natural and Applied Science, pp:108.
  • 19. Özkan E. T. and Kaplangiray M. B., 2015, “Investigating Moisture Management Properties of Weaving Military Clothes”, Uludağ University Journal of The Faculty of Engineering, Vol:20(1), pp:51-63
  • 20. Selli F., 2013, “Investigation of Commercial Single Jersey and Rib Knitted Fabrics’ Air Permeability and Moisture Management Properties”, M.Sc. Thesis, Pamukkale University, Institute of Science, pp:103.
  • 21. Kanat Z.E. and Özdil N., 2013, “Aktiviteye Bağlı Olarak Giysilerde Değişen Nem Miktarının Isıl Konfora Etkisi”, Isıl Konfor Sempozyumu, 11. Ulusal Tesisat Mühendisliği Kongresi, İzmir, pp:1967-1972.
  • 22. Turan R. B., 2012, “Relationships Between Permeability Properties and Structural-Geometrical Properties of Fabrics”, Ph.D. Thesis, Dokuz Eylül University, Graduate Scholl of Natural and Applied Science, pp:382.
  • 23. Peirce F. T., 1937, “The Geometry of Cloth Structure, Journal of the Textile Institute, 28(3), pp:45-96.
  • 24. Morton W. E. and Hearle J. W. S., 2008, Physical Properties of Textile Fibres. (4th Ed.). Cambridge: The Textile Institute, CRC Press, Woodhead Publishing Limited, pp:796
  • 25. Fourne F., 1999, Synthetic Fibers: Machines and Equipment, Manufacture, Properties, Handbook for Plant Engineering, Carl Hanser Verlag GmbH & Co., pp:910
  • 26. Hes L., 2000, “An Indirect Method for The Fast Evaluation of Surface Moisture Absorptiveness of Shirt and Underwear Fabrics”, Vlakna a Textil, 7(2), pp:91- 96.
  • 27. TS 391 EN ISO 9237, April, 1999, Textiles-Determination of Permeability of Fabrics to Air, (Accessed: 12.02.2017).
  • 28. Backer S., 1951, “The Relationship Between the Structural Geometry of a Textile Fabric and It’s Physical Properties: Part IV: Interstice Geometry and Air Permeability”, Textile Research Journal, Vol:21, pp:703-714.
  • 29. Moisture Management Tester Operation Manual, (Accessed: 20.02.2017).

GÖMLEKLİK DOKUMA KUMAŞLARDA AKRİLİK İPLİK KULLANIMININ KUMAŞLARIN TERMAL KONFOR VE NEM İLETİM ÖZELLİKLERİNE ETKİLERİ

Yıl 2018, Cilt: 28 Sayı: 2, 141 - 150, 30.06.2018

Öz

Bu çalışmada, ince gömleklik dokuma kumaşlarda kullanılmayan bir elyaf türü olan akrilik iplikler ile yaygın olarak kullanılan pamuk, viskon ve PES ipliklerin birlikte kullanıldığı gömleklik dokuma kumaşların termal konfor ve nem iletim özellikleri incelenmiştir. Bu amaçla piyasada gömleklik olarak kullanılan viskon çözgü iplikleri ile atkıda, pamuk, viskon, PES, akrilik, pamuk/akrilik, viskon/akrilik ve PES/akrilik iplikler kullanılarak bezayağı ve etamin örgüde on farklı gömleklik dokuma kumaş üretilmiştir. Kumaşların termal direnç, termal iletkenlik, termal absorbsiyon ve hava geçirgenliği özellikleri ile nem iletim yetenekleri test edilmiş ve sonuçlar istatistiksel olarak değerlendirilmiştir. Elde edilen sonuçlara göre, kumaşların termal direnç, termal iletkenlik, termal absorbsiyon ve hava geçirgenliği özellikleri üzerinde kullanılan lif tipinin ve atkıda akrilik ilavesinin etkisi görülmezken, örgü tipinin bu özelliklere etkisinin olduğu görülmüştür. Deneysel kumaşlarda kullanılan lif tipinin ve akrilik iplik kullanımının kumaşların nem iletim özelliklerine etki ettiği ve OMMC değerlerini arttırdığı gözlenmiştir.

Kaynakça

  • 1. Oğlakçıoğlu N., İlleez A.A., Erdoğan M. Ç., Marmaralı A. and Güner M., 2013, “Effects of Sewing Process on Thermal Comfort Properties of Cycling Clothes”, Journal of Textiles and Engineer, Vol:20(90), pp:32-41.
  • 2. Havenith G., 2002, “The Interaction of Clothing and Thermoregulation”, Exogenous Dermatology, Vol:1(5), pp:221-230.
  • 3. Marmaralı A., Kadoğlu H., Oğlakçıoğlu N. and Bedez Üte T., 2008, “Thermal Comfort Properties of Milk Protein/Cotton Fiber Blended Knitted Fabrics”, Simpozionul Anual Al Specialiştilor Din Industria De Tricotaje-Confectii, Iaşi, Romanya.
  • 4. Oğlakçıoğlu N., Çelik P., Bedez Üte T., Marmaralı A. and Kadoğlu H., 2009, “Thermal Comfort Properties of Angora Rabbit/Cotton Fiber Blended Knitted Fabrics”, Textile Research Journal, Vol:79(10), pp:888-894.
  • 5. Turay A., Özdil N., Süpüren G., and Özçelik G., 2009, “The Effects of The Production Conditions of Ribbon Typed Fancy Yarns on The Thermophysiological Propertions”, Tekstil ve Konfeksiyon, Vol:19(4), pp: 280-284.
  • 6. Hes L., 1999, “Optimisation of Shirt Fabrics' Composition from the Point of View of Their Appearance and Thermal Comfort”, International Journal of Clothing Science and Technology, Vol:11 (2/3), pp:105-115.
  • 7. Hes L., M. de Araujo and R. Storova, 1996, “Thermal Comfort of Socks Containing PP Filaments”, Textile Asia, December, pp:57-59.
  • 8. Oğlakçıoğlu N. and Marmaralı A., 2007, “Thermal Comfort Properties of Some Knitted Structures”, Fibres & Textiles in Eastern Europe, Vol:15 (5-6/64- 65), pp:94-96.
  • 9. Özdil N., 2008, “A Study on Thermal Comfort Properties of The Socks”, Tekstil ve Konfeksiyon, Vol:18(2), pp:154-158.
  • 10. Özdil N., Marmaralı A. and Dönmez Kretzschmar S., 2007, “Effect of Yarn Properties on Thermal Comfort of Knitted Fabrics”, International Journal of Thermal Sciences, Vol:46, pp:1318-1322.
  • 11. Vigneswaran C., Chandrasekaran K. and Senthilkumar, P., 2009, “Effect of Thermal Conductivity Behavior of Jute/Cotton Blended Knitted Fabrics”, Journal of Industrial Textiles, Vol:38(4), pp:289-307.
  • 12. Ertekin G. and Marmaralı A., 2011, “Effects of Tuck and Miss Stitches on Thermal Comfort Properties of Plain Knitted Fabrics”, Journal of Textiles and Engineer, Vol:18(83), pp:21-26.
  • 13. Shrivas R.G. and Patil L.G., 2015, “Effect Of Different Weaves Thermal Resistance Properties Shrting Cotton Fabric”, Textile Value Chain, http://www.textilevaluechain.com/index.php/article/technical/item/379-effect-of-different-weaves-on-thermal-resistance-properties-shrting-cottonfabric( Accessed:14.03.2017).
  • 14. Erenler A., 2013, “Investigation and Prediction of Comfort Properties of Clothing Aimed Weaving Fabrics”, Ph.D. Thesis, Çukurova University, Institute of Natural and Applied Science, pp:296.
  • 15. Güneşoğlu S., 2005, “Investigating the Comfort Properties of Sportwear Clothings” Ph.D. Thesis, Uludag University, Institute of Natural and Applied Science, pp:208.
  • 16. Marmaralı A., Kretzschmar D. S., Özdil N. and Oğlakçıoğlu G. N., 2006, “Parameters That Affect Thermal Comfort of Garment”, Tekstil ve Konfeksiyon, Vol:16(4), pp:241-246.
  • 17. Frydych I., Dzıworska G., and Bilska J., 2002, “Comparative Analysis Of The Thermal Insulation Properties Of Fabrics Made Of Natural And Man- Made Cellulose Fibres”, Fibres &Textiles in Eastern Europe, Vol: 4(39), pp:55-59.
  • 18. Kanat Z. E., 2007, “Comparison of Comfort Properties of Woven Fabrics Produced With Different Yarns”, M.Sc. Thesis, Ege University, Graduate Scholl of Natural and Applied Science, pp:108.
  • 19. Özkan E. T. and Kaplangiray M. B., 2015, “Investigating Moisture Management Properties of Weaving Military Clothes”, Uludağ University Journal of The Faculty of Engineering, Vol:20(1), pp:51-63
  • 20. Selli F., 2013, “Investigation of Commercial Single Jersey and Rib Knitted Fabrics’ Air Permeability and Moisture Management Properties”, M.Sc. Thesis, Pamukkale University, Institute of Science, pp:103.
  • 21. Kanat Z.E. and Özdil N., 2013, “Aktiviteye Bağlı Olarak Giysilerde Değişen Nem Miktarının Isıl Konfora Etkisi”, Isıl Konfor Sempozyumu, 11. Ulusal Tesisat Mühendisliği Kongresi, İzmir, pp:1967-1972.
  • 22. Turan R. B., 2012, “Relationships Between Permeability Properties and Structural-Geometrical Properties of Fabrics”, Ph.D. Thesis, Dokuz Eylül University, Graduate Scholl of Natural and Applied Science, pp:382.
  • 23. Peirce F. T., 1937, “The Geometry of Cloth Structure, Journal of the Textile Institute, 28(3), pp:45-96.
  • 24. Morton W. E. and Hearle J. W. S., 2008, Physical Properties of Textile Fibres. (4th Ed.). Cambridge: The Textile Institute, CRC Press, Woodhead Publishing Limited, pp:796
  • 25. Fourne F., 1999, Synthetic Fibers: Machines and Equipment, Manufacture, Properties, Handbook for Plant Engineering, Carl Hanser Verlag GmbH & Co., pp:910
  • 26. Hes L., 2000, “An Indirect Method for The Fast Evaluation of Surface Moisture Absorptiveness of Shirt and Underwear Fabrics”, Vlakna a Textil, 7(2), pp:91- 96.
  • 27. TS 391 EN ISO 9237, April, 1999, Textiles-Determination of Permeability of Fabrics to Air, (Accessed: 12.02.2017).
  • 28. Backer S., 1951, “The Relationship Between the Structural Geometry of a Textile Fabric and It’s Physical Properties: Part IV: Interstice Geometry and Air Permeability”, Textile Research Journal, Vol:21, pp:703-714.
  • 29. Moisture Management Tester Operation Manual, (Accessed: 20.02.2017).
Toplam 29 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Bölüm Makaleler
Yazarlar

Arzu Yavaşcaoğlu Bu kişi benim

Recep Eren Bu kişi benim

Gülcan Süle

Yayımlanma Tarihi 30 Haziran 2018
Gönderilme Tarihi 21 Haziran 2017
Kabul Tarihi 13 Mart 2018
Yayımlandığı Sayı Yıl 2018 Cilt: 28 Sayı: 2

Kaynak Göster

APA Yavaşcaoğlu, A., Eren, R., & Süle, G. (2018). EFFECTS OF USAGE ACRYLIC YARN ON THERMAL COMFORT AND MOISTURE MANAGEMENT PROPERTIES OF WOVEN SHIRTING FABRICS. Textile and Apparel, 28(2), 141-150.

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