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Tytuł artykułu

Comparison of Selected Properties of Eco-Friendly Soybean and Other Fibres

Treść / Zawartość
Identyfikatory
Warianty tytułu
PL
Porównanie wybranych właściwości ekologicznych włókien sojowych
Języki publikacji
EN
Abstrakty
EN
Biodegradable and sustainable products are being employed to make contributions to efforts concerning environmental protection and the reduction of oil consumption. Biodegradable fibres present a simple and notable opportunity for providing sustainable textiles. Soybean fibre is a kind of regenerated and new-generation protein plant fibre. The present work aimed to analyse the many different properties of soybean fibres. Particularly it was focused on their performance, functional, comfort and dyeing properties. In literature, there are studies regarding soybean fibres but topics mostly involved the analysis of comfort properties of the fibre. In this study, fibre structure and composition, flame and UV resistance, strength, pilling behaviour, air and water vapour permeability, water absorption, drape and dyeing properties were studied. It was indicated that soybean fibre is capable of meeting the performance, comfort and functional requirements of classical and technical textile products. The fibre has many of the good qualities of natural fibres such as tenacity, moisture regain, soft-lustrous handle, dyeability and colour fastness properties, and also has some of the functional properties of synthetic fibres such as being flame retardant and anti-ultraviolet.
PL
Produkty biodegradowalne i odnawialne są coraz powszechniej stosowane dla ochrony środowiska naturalnego i redukcji zużycia paliw. Takim problemem są włókna naturalne w tym sojowe, będące przykładem nowej generacji włókien proteinowych. W pracy przedstawiono analizę rożnych właściwości, w szczególności ich zastosowania, funkcjonalności komfortu użytkowania i wybarwialności. W literaturze znajduje się wiele publikacji związanych z komfortem produktów z włókien sojowych, natomiast w przedstawionych badaniach zwrócono uwagę na ich strukturę i skład a, także ich palność, odporność na promieniowanie UV, wytrzymałość, piling, przepuszczalność powietrza i pary wodnej, absorpcje wody, układalność i wybarwialność. Stwierdzono, że włókna sojowe mają wiele ważnych pozytywnych właściwości charakterystycznych dla innych włókien naturalnych.
Rocznik
Strony
14--24
Opis fizyczny
Bibliogr. 46 poz., rys., tab.
Twórcy
autor
  • Department of Textile Engineering, Engineering & Architecture Faculty, Suleyman Demirel University, Isparta, Turkey
autor
  • Chemistry Engineering Department, Engineering Faculty, Suleyman Demirel University, Isparta, Turkey
autor
  • Department of Textile Engineering, Engineering & Architecture Faculty, Suleyman Demirel University, Isparta, Turkey
autor
  • Department of Textile Engineering, Engineering & Architecture Faculty, Suleyman Demirel University, Isparta, Turkey
autor
  • Department of Textile Engineering, Engineering & Architecture Faculty, Suleyman Demirel University, Isparta, Turkey
Bibliografia
  • 1. Zupin Z, Dimitrovski K. Properties of Fabrics From Cotton and Biodegradable Yarns Bamboo, SPF, PLA in Weft. www.intechopen.com/download/pdf/pdfs, 2011.
  • 2. Anounymous. Soybean Protein Fiber. http://www.apparelsearch.com, 2011.
  • 3. Yi-You L. The Soybean Protein Fibre-A Healthy&Comfortable Fibre For The 21st Century. Fibres & Textiles in Eastern Europe, 2004; 12: 8.
  • 4. Özgen B. New Biodegradable Fibres, Yarn Properties and Their Applications in Textiles: a Review. Industria Textile 2012; 63: 3-6.
  • 5. Anounymous. Soya Silk - Ecological Textile. www.hayteks.biz.tr, 2011.
  • 6. Anounymous. Properties of Soybean Protein Fibers and Yarns. www.swicofil.com, 2011.
  • 7. Vynias D, Owens H, Carr CM. Surface and Bulk Analysis Of Bleaching Soybean Fabric in The Presence of Protein Hydrolysate. Journal Applied Polymer Science 2013; 128: 4271–4276.
  • 8. Cimilli S, Nergis BU, Candan C, Özdemir M. A Comparative Study Of Some Comfort-Related Properties of Socks of Different Fiber Types. Textile Research Journal 2010; 80: 948.
  • 9. Ciukas R, Abramaviciüte J, Kerpauskas P. Investigation of the Thermal Properties of Socks Knitted from Yarns with Peculiar Properties. Part I. Thermal Conductivity Coefficient of Socks Knitted from Natural and Synthetic Textured Yarns. Fibres & Textiles in Eastern Europe 2010; 18(3): 89-93.
  • 10. Kavuşturan Y, Çeven EK, Özdemir Ö. Effect Of Chenille Yarns Produced With Selected Comfort Fibres On The Abrasion And Bending Properties Of Knitted Fabrics. Fibres & Textiles in Eastern Europe 2010; 18: 48.
  • 11. Vynias D. Investigation into the Flame Retardant Properties of Soybean Fabric Treated with Sulphamic Acid. Journal of Applied Polymer Science 2010; 117: 875– 881.
  • 12. Marmarali A, Blaga M, Üte TB, Damcı G. Thermal Comfort Properties Of Blended Yarns Knitted Fabrics. In: ITMC 2009 International Conference, 2009, Morrocco.
  • 13. Örtlek HG, Korkmaz M. Soya Fasülyesi İpliğinin Örme Kumaş Formundaki Performansının İncelenmesi. www.ggctt.com/tr/%3f/ggctt3/26, 2011.
  • 14. Reddy N, Yang Y. Natural Cellulose Fibers From Soybean Straw. Bioresource Technology 2009; 100: 3593.
  • 15. Vynias D. Soybean Fibre A Novel Fibre In The Textile Industry. Http://Cdn.Intechopen.Com/Pdfs/15723/IntechSoybean_Fibre_A_Novel_Fibre_In_The_Textile_Industry.Pdf, 2006
  • 16. Rijavec T, Zupin Z. Recent Trends for Enhancing the Diversity and Quality of Soybean Products: Soybean Protein Fibres (SPF). 2012, 501.
  • 17. Kitapçı K, Kılıç H. Determination Of Performance and Dyeing Properties of Soybean Fibres. Bachelor Thesis, Suleyman Demirel University, Engineering Faculty, Textile Engineering Department, Isparta, Turkey, 2012.
  • 18. Yelkovan S. Investigation Of Functional Properties of the Fabrics Obtained from Soybean Fibres. Bachelor Thesis, Suleyman Demirel University, Engineering Faculty, Textile Engineering Department, Isparta, Turkey, 2010.
  • 19. TS 393 EN ISO 13938-1 Textiles- Bursting Properties of Fabrics- Part 1: Hydraulic Method for Determination of Bursting Strength and Bursting Distension, 2002.
  • 20. TS EN ISO 12945-2 Textiles- Determination of Fabric Propensity to Surface Fuzzing And To Pilling- Part 2: Modified Martindale Method (ISO 12945-2:2000), 2002.
  • 21. TS 391 EN ISO 9237 Textiles-Determination of Permeability of Fabrics to Air, 1999.
  • 22. BS 3449 Testing The Resistance of Fabrics to Water Absorption (Static Immersion Test).
  • 23. TS 9693 Textiles The Assessment of Drape of Fabrics, 1991.
  • 24. AATCC 61-1993: 1A Colorfastness to Laundering, Home and Commercial: Accelerated (Hand Wash), 1993.
  • 25. TS EN ISO 105-X12 Textiles - Tests for Colour Fastness - Part X12: Colour Fastness To Rubbing, 2006.
  • 26. TS 1008 EN ISO 105 B02 Textiles- Tests For Colour Fastness- Part B02: Colour Fastness to Artificial Light: Xenon Arc Fading Test, 2001.
  • 27. Anonymous, Soybean Protein Fibre: Cashmere Vegetable. Http://Www.Orionfilati.It, 2011.
  • 28. Morton EW, Hearle JWS. Physical Properties Of Textile Fibers. The Textile Institute, Manchester, 1993.
  • 29. Batra SK. Handbook of Fibre Science And Technology: Other Long Vegetable Fibers. M. Lewin, And E.M. Pearce Editions, Fibre Chemistry, 4, 1998, Marcel Dekker Inc., New York, p. 505–571.
  • 30. Yueping W, Ge W, Haitao C, Genlin T, Zheng L, Feng XQ, Xiangqi Z. Structures of Bamboo Fiber for Textiles. Textile Research Journal 2010; 80: 334-343.
  • 31. Waite M. Sustainable Textiles: The Role Of Bamboo And A Comparison Of Bamboo Textile Properties (II). Journal Of Textile And Apparel Technology And Management 2010; 6: 1.
  • 32. Johnson NAG, Wood EJ, Ingham PE, Mcneil SJ, Mcfarlane ID. Wool As A Technical Fiber. Journal Of Textile Institute 2003; 94: 26.
  • 33. Rippon JA. Wool Dyeing, Bradford: SDC 1992, 19.
  • 34. Hatch KL. Fry Not! UV-Protective Textile Standards. ASTM Stand News 2001; 29: 18-21.
  • 35. Crews PC, Kachman S, Beyer AG. Influences On UVR Transmission Of Undyed Woven Fabrics. Textile Chemist Colorist 1999; 31: 17-26.
  • 36. Sarkar AK, Appidi S. Single Bath Process For Imparting Antimicrobial Activity And Ultraviolet Protective Property To Bamboo Viscose Fabric. Cellulose 2009; 16: 923.
  • 37. Hatch KL. Making A Claim That A Garment Is UV Protective. AATCC Revision 2003; 3: 23-26.
  • 38. Oğlakçıoğlu N, Çelik P, Üte TB, Marmaralı A, Kadoğlu H. Thermal Comfort Properties Of Angora Rabbit/Cotton Fiber Blended Knitted Fabrics. Textile Research Journal 2009; 79: 888-894.
  • 39. Stankovic S, Popovic D, Poparic GB. Thermal Properties Of Textile Fabrics Made Of Natural And Regenerated Cellulose Fibers. Polymer Testing 2008; 27: 41-48.
  • 40. Majumdar A, Mukhopadhyay S, Yadav R. Thermal Properties Of Knitted Fabrics Made From Cotton And Regenerated Bamboo Cellulosic Fibres. International Journal Of Thermal Sciences 2010; 49: 2042-2048.
  • 41. Anounymous. Experience the Unparalleled Advantages of Bamboo Yarn and Bamboo Fabric!. www.bambrotex.com, 2012.
  • 42. Xu Y, Lu Z, Tang R. Structure And Thermal Properties Of Bamboo Viscose, Tencel And Conventional Viscose Fiber. Journal of Thermal Analysis and Calorimetry 2007; 89: 197-201.
  • 43. Ahlawat SS, Khanna N, Sharma DP, Panda PC. Effect Of Feeding Poultry Viscera Meal On Wool Traits Of Angora Rabbits. Indian Journal Animal Research 2003; 37: 130-132.
  • 44. Anounymous, http://www.wira.com, 2013.
  • 45. Li Y. The Science Of Clothing Comfort. Textile Progress 2001. The Textile Institute, Manchester, 31(1): 102-103.
  • 46. Gün AD, Tiber B. Color, Color Fastness And Abrasion Properties Of 50/50 Bamboo/Cotton Blended Plain Knitted Fabrics In Three Different Stitch Lengths. Textile Research Journal 2011; 81: 1903-1915.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-18838a9a-95f5-486e-ad87-42bb33115fde
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