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Tarımsal atıklardan elde edilen sürdürülebilir tekstil lifleri: Ananas yaprağı lifleri

Yıl 2016, Cilt: 20 Sayı: 2, 203 - 221, 01.08.2016
https://doi.org/10.16984/saufenbilder.07521

Öz

Ananas yaprağı lifleri, adından da anlaşılacağı gibi ananas bitkisinin yapraklarından elde edilen doğal bir lif türüdür. Ananas bitkisi genellikle meyvesi için yetiştirildiğinden, her yıl tonlarca ananas yaprağı tarımsal atık olarak ortaya çıkmaktadır. Yapılarındaki selüloz oranı oldukça yüksek olan bu lifler, üstün mekanik özellikleri ve suyu seven yapısı ile iyi bir tekstil malzemesi olarak kabul edilmektedir. Ayrıca, kolay ulaşılabilir, biyobozunur ve geri dönüştürülebilir olması sayesinde özellikle biyo-kompozitlerin üretiminde tercih edilen bir malzeme haline gelmiştir. Hem tarımsal atıkların değerlendirilmesi hem de çevre dostu özellikleri ile sürdürülebilir üretimin hedeflendiği şu günlerde, ananas yaprağı lifi önemli bir hammadde kaynağıdır. Bu derleme çalışmasında, ananas yaprağı liflerinin yapısı, özellikleri, elde ediliş yöntemleri ve kullanım alanları gibi başlıklar detaylı olarak incelenmiştir.  

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Sustainable textile fibers obtained from agricultural wastes: Pineapple leaf fibers

Yıl 2016, Cilt: 20 Sayı: 2, 203 - 221, 01.08.2016
https://doi.org/10.16984/saufenbilder.07521

Öz

Pineapple leaf fiber, as is evident from its name, is a natural fiber that is obtained from pineapple plant. Tons of pineapple leaves are wasted every year since pineapple plant is mostly cultivated for only fruit production. Pineapple fiber has high cellulose content in their structure and is known to be a useful textile material with excellent mechanical properties and hydrophilic character. Furthermore, this fiber has become a preferred material in the production of biocomposites owing to its properties such as easily being accessible, biodegradable and recyclable. Today, pineapple leaf fiber is an important raw material resource that can contribute to sustainable production with both utilization of agro-wastes and its eco-friendly properties. In this review, topics such as structure, properties, end uses and extraction methods of pineapple fibers are examined in detail.

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  • A. Azoff. (2013, Kasım). Do You Like Piña Coladas? How About Pineapple Silk? Available: http://www.heartsleevesblog.com/pineapple-silk-fashion/
  • (Kasım). Treasure in Threads: Piña Fiber Processing. Available: http://e-extension.gov.ph/elearning/course/view.php?id=76
  • (Kasım). Barong Tagalog. Available: https://en.wikipedia.org/wiki/Barong_Tagalog
  • M. A. Hermans, R. D. Sauer, S. U. Hossain, and J. D. Litvay, "Tissue Products Made from Low-Coarseness Fibers," USH1672 H, 1997.
  • (Kasım). Pineapple Fiber Fabric. Available: http://www.dbathis.com/p44/PINEAPPLE+FIBER+FABRIC/product_info.html
  • N. Talmon. (2012, Kasım). Emmy Rossum Wears an Adorable Yellow Dress Made Partly of Pineapple. Available: http://www.starpulse.com/news/Noelle_Talmon/2012/02/23/emmy_rossum_wears_an_adorable_yellow_d
  • (Kasım). Fique Pineapple Bag. Available: http://habutextiles.com/KIT-130
  • (Kasım). Pineapple Selvedge. Available: http://shop.nordstrom.com/s/naked-famous-denim-weird-guy-slim-fit-jeans-pineapple-selvedge/3646303
  • (Kasım). Patrick and Tina. Available: http://patrickandtina.weebly.com/santa-cruz.html
  • (Kasım). Pineapple Fiber (Piña) Fan with Embroidery and Calado. Available: http://www.ebuyphilippines.com/ladiesbagforexportcandystripestotebag-1-1-1-1-1-1-1-1-1-1-1-1-2.aspx
  • (Kasım). Piña Pineapple Fiber Fabric Available: http://bohohill.com/products/convertible-aladdin-unisex-pants-hindu-om-script-airy-pina-pineapple-fiber-fabric-brown?variant=2630966851
  • B. M. Cherian, A. L. Leão, S. F. de Souza, S. Thomas, L. A. Pothan, and M. Kottaisamy, "Isolation of Nanocellulose from Pineapple Leaf Fibres by Steam Explosion," Carbohydrate Polymers, vol. 81, pp. 720-25, 2010.
  • S. Hickey. (2014, Kasım). Wearable Pineapple Fibres Could Prove Sustainable Alternative to Leather. Available: http://www.theguardian.com/business/2014/dec/21/wearable-pineapple-leather-alternative
  • N. Lopattananon, Y. Payae, and M. Seadan, "Influence of Fiber Modification on Interfacial Adhesion and Mechanical Properties of Pineapple Leaf Fiber‐Epoxy Composites," Journal of Applied Polymer Science, vol. 110, pp. 433-43, 2008.
  • S. Taj, M. A. Munawar, and S. Khan, "Natural Fiber-Reinforced Polymer Composites," Proceedings-Pakistan Academy of Sciences, vol. 44, p. 129, 2007.
  • K. d. S. d. Prado and M. A. d. S. Spinacé, "Characterization of Fibers from Pineapple's Crown, Rice Husks and Cotton Textile Residues," Materials Research, vol. 18, pp. 530-37, 2015.
  • J. George, S. Bhagawan, and S. Thomas, "Improved Interactions in Chemically Modified Pineapple Leaf Fiber Reinforced Polyethylene Composites," Composite Interfaces, vol. 5, pp. 201-23, 1997.
  • J. George, S. Bhagawan, and S. Thomas, "Effects of Environment on the Properties of Low-Density Polyethylene Composites Reinforced with Pineapple-Leaf Fibre," Composites Science and Technology, vol. 58, pp. 1471-85, 1998.
  • P. Threepopnatkul, N. Kaerkitcha, and N. Athipongarporn, "Effect of Surface Treatment on Performance of Pineapple Leaf Fiber–Polycarbonate Composites," Composites Part B: Engineering, vol. 40, pp. 628-32, 2009.
  • S. Mishra, A. Mohanty, L. Drzal, M. Misra, S. Parija, S. Nayak, et al., "Studies on Mechanical Performance of Biofibre/Glass Reinforced Polyester Hybrid Composites," Composites Science and Technology, vol. 63, pp. 1377-85, 2003.
  • S. Saha, B. Das, P. Ray, S. Pandey, and K. Goswami, "Sem Studies of the Surface and Fracture Morphology of Pineapple Leaf Fibers," Textile Research Journal, vol. 60, pp. 726-31, 1990.
  • K. Panyasart, N. Chaiyut, T. Amornsakchai, and O. Santawitee, "Effect of Surface Treatment on the Properties of Pineapple Leaf Fibers Reinforced Polyamide 6 Composites," Energy Procedia, vol. 56, pp. 406-13, 2014.
  • X.-h. Huang and D.-q. Shen, "Degumming and Dyeing of Pineapple Leaf Fiber," Journal of Textile Research, vol. 27, p. 75, 2006.
  • C. Dong, Z. Lu, X. Zhang, P. Zhu, and N. Li, "The Preparation and Dyeing Properties of Pineapple Leaf Fibres Modified with a Cationic Modifier," Coloration Technology, vol. 130, pp. 260-65, 2014.
  • W. Sricharussin. (2010, Kasım). Dyeing and Finishing Pineapple Fibre Fabrics for New Value-Added Products. Available: http://www.thaiwest.su.ac.th/en/research-project-2/research-and-innovation-for-transfer-technology-to-rural-community-project/2010-2/dyeing-and-finishing-pineapple-fibre-fabrics-for-new-value-added-products/
  • D.-y. Gu and M. Li, "Study on the Pretreatment of the Pineapple Fiber/Cotton Knitted Fabrics," Textile Auxiliaries, vol. 11, p. 016, 2011.
  • W. Sricharussin, P. Ree-Iam, W. Phanomchoeng, and S. Poolperm, "Effect of Enzymatic Treatment on the Dyeing of Pineapple Leaf Fibres with Natural Dyes," Scienceasia, vol. 35, pp. 31-36, 2009.
  • M. S. Alam, G. A. Khan, and S. A. Razzaque, "Estimation of Main Constituents of Ananus Comosus (Pineapple) Leaf Fiber and Its Photo-Oxidative Degradation," Journal of Natural Fibers, vol. 6, pp. 138-50, 2009.
Toplam 142 adet kaynakça vardır.

Ayrıntılar

Konular Mühendislik
Bölüm Derleme Makalesi
Yazarlar

Ece Kalaycı Bu kişi benim

Osman Ozan Avinç

Ahmet Bbozkurt Bu kişi benim

Arzu Yavaş

Yayımlanma Tarihi 1 Ağustos 2016
Gönderilme Tarihi 14 Aralık 2015
Kabul Tarihi 25 Ocak 2016
Yayımlandığı Sayı Yıl 2016 Cilt: 20 Sayı: 2

Kaynak Göster

APA Kalaycı, E., Avinç, O. O., Bbozkurt, A., Yavaş, A. (2016). Sustainable textile fibers obtained from agricultural wastes: Pineapple leaf fibers. Sakarya University Journal of Science, 20(2), 203-221. https://doi.org/10.16984/saufenbilder.07521
AMA Kalaycı E, Avinç OO, Bbozkurt A, Yavaş A. Sustainable textile fibers obtained from agricultural wastes: Pineapple leaf fibers. SAUJS. Ağustos 2016;20(2):203-221. doi:10.16984/saufenbilder.07521
Chicago Kalaycı, Ece, Osman Ozan Avinç, Ahmet Bbozkurt, ve Arzu Yavaş. “Sustainable Textile Fibers Obtained from Agricultural Wastes: Pineapple Leaf Fibers”. Sakarya University Journal of Science 20, sy. 2 (Ağustos 2016): 203-21. https://doi.org/10.16984/saufenbilder.07521.
EndNote Kalaycı E, Avinç OO, Bbozkurt A, Yavaş A (01 Ağustos 2016) Sustainable textile fibers obtained from agricultural wastes: Pineapple leaf fibers. Sakarya University Journal of Science 20 2 203–221.
IEEE E. Kalaycı, O. O. Avinç, A. Bbozkurt, ve A. Yavaş, “Sustainable textile fibers obtained from agricultural wastes: Pineapple leaf fibers”, SAUJS, c. 20, sy. 2, ss. 203–221, 2016, doi: 10.16984/saufenbilder.07521.
ISNAD Kalaycı, Ece vd. “Sustainable Textile Fibers Obtained from Agricultural Wastes: Pineapple Leaf Fibers”. Sakarya University Journal of Science 20/2 (Ağustos 2016), 203-221. https://doi.org/10.16984/saufenbilder.07521.
JAMA Kalaycı E, Avinç OO, Bbozkurt A, Yavaş A. Sustainable textile fibers obtained from agricultural wastes: Pineapple leaf fibers. SAUJS. 2016;20:203–221.
MLA Kalaycı, Ece vd. “Sustainable Textile Fibers Obtained from Agricultural Wastes: Pineapple Leaf Fibers”. Sakarya University Journal of Science, c. 20, sy. 2, 2016, ss. 203-21, doi:10.16984/saufenbilder.07521.
Vancouver Kalaycı E, Avinç OO, Bbozkurt A, Yavaş A. Sustainable textile fibers obtained from agricultural wastes: Pineapple leaf fibers. SAUJS. 2016;20(2):203-21.