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DOĞAL ELYAF TAKVİYELİ SÜRDÜRÜLEBİLİR EPOKSİ KOMPOZİTLERİN MEKANİK ÖZELLİKLERİ

Year 2024, Volume: 8 Issue: 2, 108 - 118, 31.12.2024
https://doi.org/10.62301/usmtd.1506650

Abstract

Kompozitlerin çeşitli alanlarda kullanımı, vermiş olduğu kolaylık, stabilite, çekme, eğilme ve darbe direnci gibi üstünlüklerde dolayı hızla artmıştır. Tekstil kompozitlerindeki mekanik özellikler lif takviyesi ile yakından bağlantılıdır. Keten lifleri çeşitli polimerler malzemeler ile birlikte kullanılmaktadır. Keten liflerinde kullanılan en yaygın matris malzemesi işlenmesi kolay olduğundan ve iyi mekanik özelliklere sahip olduğundan, epoksi polipropilendir. Keten elyaf takviyeli kompozitler yüksek çekme eğilme ve darbe mukavemetine sahiptir. Diğer doğal liflerle karşılaştırıldığında, keten liflerle yapılan kompozitler maliyetlidir. Bu çalışmada farklı uzunluklarda keten elyaf takviyeli kumaş yüzeyine epoksi polimer uygulanarak kompozit yüzey elde edilmiş ve elde edilen kompozit numunelerin mekanik özellikleri incelenmiştir. Keten liflerinden yapılan kompozitlerin test sonucunda 17,76 ile 26,62 MPa arasında ölçülen çekme mukavemeti, 28,82 ile 46,92 MPa arasında eğilme dayanımı ve 2,39-5,25 J darbe dayanımı ölçülmüştür. Elde edilen sonuçlar epoksi reçine ile keten elyaf takviyeli polimerik kompozit malzemelerin mekanik özelliklerinde iyileşmeler sağlandığını göstermektedir.

References

  • N. Korkmaz, E. Çakmak, M. Dayık, Dokuma karbon elyaf takviyeli karbon nano tüp-epoksi kompozit malzemelerin mekanik ve termal karakterizasyonu, Süleyman Demirel Üniversitesi Fen Bilimleri Enstitüsü Dergisi 20 (2) (2016) 338-353.
  • H. Özdemir, E. Mert, The effects of fabric structural parameters on the breaking, bursting and ımpact strengths of diced woven fabrics, Journal of Textile & Apparel 23 (2) (2013) 113–123.
  • H. Özdemir, E. Mert, The effects of fabric structural parameters on the tensile, bursting, and impact strengths of cellular woven fabrics, Journal of the Textile Institute 104 (3) (2013) 330-338.
  • H. Özdemir, B. M. Içten, A. Doğan, Experimental investigation of the tensile and impact properties of twill and twill derivative woven fabric reinforced composites, Journal of the Textile and Apparel 28 (4) (2018) 258-272.
  • H. Özdemir, B. M. Içten, The mechanical performance of plain and plain derivative woven fabrics reinforced composites: tensile and impact properties, The Journal of The Textile Institute 109 (1) (2018) 133-145.
  • M. Ramesh, Flax (Linum usitatissimum L.) fibre reinforced polymer composite materials: A review on preparation, properties and prospects, Progress in Materials Science 102 (2019) 109-166.
  • C. Baley, M. Gomina, J. Breard, A. Bourmaud, P. Davies, Variability of mechanical properties offlax fibres for composite reinforcement, Industrial crops and products, 145 (2020) 111984.
  • S. K. Muniandy, S. M. Sapuan, R. A. Ilyas, A. Azmi, Sugar palm lignocellulosic fiber reinforced polymer composite: a review, Journal of Fibers and Polymer Composites, 1 (1) (2022) 1-19.
  • L. F. Ng, , S. Dhar Malingam, M. Z. Selamat, Z. Mustafa, O. Bapokutty, A comparison study on the mechanical properties of composites based on kenaf and pineapple leaf fibres, Polymer Bulletin 77 (2020) 1449-1463.
  • R. Yan, X. Chen, Aramid/epoxy composites with angle-laid reinforcement constructions for ballistic protection, Journal of industrial textiles 45 (5) (2016) 765-779.
  • C. Atas, O. Sayman, An overall view on impact response of woven fabric composite plates, Composite Structures 82 (3) (2008) 336-345.
  • M. Mariatti, M. Jannah, , A. Abu Bakar, H. A. Khalil, Properties of banana and pandanus woven fabric reinforced unsaturated polyester composites, Journal of composite materials 42 (9) (2008) 931-941.
  • N. M. Barkoula, S. K. Garkhail, T. Peijs, Effect of compounding and injection molding on the mechanical properties of flax fiber polypropylene composites, Journal of reinforced plastics and composites 29 (9) (2010) 1366-1385.
  • Y. Li, Q. Li, H. Ma, The voids formation mechanisms and their effects on the mechanical properties of flax fiber reinforced epoxy composites, Composites Part A: Applied Science and Manufacturing 72 (2015) 40-48.
  • I. E. Sawi, H. Bougherara, R. Zitoune, Z. Fawaz, Influence of the manufacturing process on the mechanical properties of flax/epoxy composites, Journal of Biobased Materials and Bioenergy 8 (1) (2014) 69-76.
  • P. B. Gning, S. Liang, L. Guillaumat, W. J. Pui, Influence of process and test parameters on the mechanical properties of flax/epoxy composites using response surface methodology, Journal of materials science 46 (2011) 6801-6811.
  • S. M. Yukseloglu, H. Yoney, The mechanical properties of flax fibre reinforced composites. In Natural Fibres: Advances in Science and Technology Towards Industrial Applications: From Science to Market (2016) 255-266.
  • J. George, J. Ivens, I. Verpoest, Mechanical properties of flax fibre reinforced epoxy composites. Die Angewandte Makromolekulare Chemie, 272 (1), (1999) 41-45.
  • K. Charlet, J. P. Jernot, M. Gomina, L. Bizet, J. Bréard, Mechanical properties of flax fibers and of the derived unidirectional composites, Journal of composite materials 44 (24) (2010) 2887-2896.
  • ASTM International. Standard test method for tensile properties of polymer matrix composite materials, (2014).
  • E. K. Çeven, G. K. Günaydin, Investigation of moisture management and air permeability properties of fabrics with linen and linen-polyester blend yarns. Fibres & Textiles in Eastern Europe 4 (130), (2018) 39-47.
  • E. K. Çeven, G. K. Günaydin, Investigation of some mechanical and air permeability properties of shirting fabrics produced from compact yarns made of natural and synthetic fibres. Uludağ Üniversitesi Mühendislik Fakültesi Dergisi 24.2 (2019) 445-460.
  • E. K. Çeven, G. K. Günaydin, Investigation of selected physical properties of knitted fabrics produced from macaroni yarns. Fibres & Textiles in Eastern Europe 26.4 (130) (2018) 59-66.
  • E. K. Çeven, G. K. Günaydin, Effect of washing cycle on tenacity and stretching properties of denim fabrics containing elastane. J Fashion Technol Textile Eng 2 (5) (2018) 1-5.
  • M. Kodaloğlu and F. Akarslan Kodaloğlu, Environmentally friendly recycled leather reinforced composite: thermal and acoustic properties. Teknik Bilimler Dergisi, 14 (2), (2024), 32-37.
  • M. Kodaloğlu and F. Akarslan Kodaloğlu, Investigation of thermal insulation and water absorption properties of cortaderia selloana short fibers reinforced sustainabilit composite material. Türk Bilim ve Mühendislik Dergisi, 6(2), (2024), 14-20.

MECHANICAL PROPERTIES OF NATURAL FIBRE‑REINFORCED SUSTAINABLE EPOXY COMPOSITES

Year 2024, Volume: 8 Issue: 2, 108 - 118, 31.12.2024
https://doi.org/10.62301/usmtd.1506650

Abstract

The use of composites in various fields has increased rapidly due to their advantages such as convenience, stability, tensile, flexural and impact resistance. Mechanical properties in textile composites are closely linked to fiber reinforcement. Flax fibers are used with various polymer materials. The most common matrix material used in flax fibers is epoxy polypropylene, as it is easy to process and has good mechanical properties. Flax fiber reinforced composites have high tensile, flexural and impact strength. Compared to other natural fibers, composites made with flax fibers are costly. In this study, a composite surface was obtained by applying epoxy polymer to the surface of flax fiber reinforced fabric of different lengths and the mechanical properties of the resulting composite samples were examined. As a result of the testing of composites made of flax fibers, tensile strength measured between 17.76 and 26.62 MPa, flexural strength between 28.82 and 46.92 MPa and impact strength of 2.39-5.25 J were measured. The results obtained show that improvements were achieved in the mechanical properties of epoxy resin and flax fiber reinforced polymeric composite materials.

References

  • N. Korkmaz, E. Çakmak, M. Dayık, Dokuma karbon elyaf takviyeli karbon nano tüp-epoksi kompozit malzemelerin mekanik ve termal karakterizasyonu, Süleyman Demirel Üniversitesi Fen Bilimleri Enstitüsü Dergisi 20 (2) (2016) 338-353.
  • H. Özdemir, E. Mert, The effects of fabric structural parameters on the breaking, bursting and ımpact strengths of diced woven fabrics, Journal of Textile & Apparel 23 (2) (2013) 113–123.
  • H. Özdemir, E. Mert, The effects of fabric structural parameters on the tensile, bursting, and impact strengths of cellular woven fabrics, Journal of the Textile Institute 104 (3) (2013) 330-338.
  • H. Özdemir, B. M. Içten, A. Doğan, Experimental investigation of the tensile and impact properties of twill and twill derivative woven fabric reinforced composites, Journal of the Textile and Apparel 28 (4) (2018) 258-272.
  • H. Özdemir, B. M. Içten, The mechanical performance of plain and plain derivative woven fabrics reinforced composites: tensile and impact properties, The Journal of The Textile Institute 109 (1) (2018) 133-145.
  • M. Ramesh, Flax (Linum usitatissimum L.) fibre reinforced polymer composite materials: A review on preparation, properties and prospects, Progress in Materials Science 102 (2019) 109-166.
  • C. Baley, M. Gomina, J. Breard, A. Bourmaud, P. Davies, Variability of mechanical properties offlax fibres for composite reinforcement, Industrial crops and products, 145 (2020) 111984.
  • S. K. Muniandy, S. M. Sapuan, R. A. Ilyas, A. Azmi, Sugar palm lignocellulosic fiber reinforced polymer composite: a review, Journal of Fibers and Polymer Composites, 1 (1) (2022) 1-19.
  • L. F. Ng, , S. Dhar Malingam, M. Z. Selamat, Z. Mustafa, O. Bapokutty, A comparison study on the mechanical properties of composites based on kenaf and pineapple leaf fibres, Polymer Bulletin 77 (2020) 1449-1463.
  • R. Yan, X. Chen, Aramid/epoxy composites with angle-laid reinforcement constructions for ballistic protection, Journal of industrial textiles 45 (5) (2016) 765-779.
  • C. Atas, O. Sayman, An overall view on impact response of woven fabric composite plates, Composite Structures 82 (3) (2008) 336-345.
  • M. Mariatti, M. Jannah, , A. Abu Bakar, H. A. Khalil, Properties of banana and pandanus woven fabric reinforced unsaturated polyester composites, Journal of composite materials 42 (9) (2008) 931-941.
  • N. M. Barkoula, S. K. Garkhail, T. Peijs, Effect of compounding and injection molding on the mechanical properties of flax fiber polypropylene composites, Journal of reinforced plastics and composites 29 (9) (2010) 1366-1385.
  • Y. Li, Q. Li, H. Ma, The voids formation mechanisms and their effects on the mechanical properties of flax fiber reinforced epoxy composites, Composites Part A: Applied Science and Manufacturing 72 (2015) 40-48.
  • I. E. Sawi, H. Bougherara, R. Zitoune, Z. Fawaz, Influence of the manufacturing process on the mechanical properties of flax/epoxy composites, Journal of Biobased Materials and Bioenergy 8 (1) (2014) 69-76.
  • P. B. Gning, S. Liang, L. Guillaumat, W. J. Pui, Influence of process and test parameters on the mechanical properties of flax/epoxy composites using response surface methodology, Journal of materials science 46 (2011) 6801-6811.
  • S. M. Yukseloglu, H. Yoney, The mechanical properties of flax fibre reinforced composites. In Natural Fibres: Advances in Science and Technology Towards Industrial Applications: From Science to Market (2016) 255-266.
  • J. George, J. Ivens, I. Verpoest, Mechanical properties of flax fibre reinforced epoxy composites. Die Angewandte Makromolekulare Chemie, 272 (1), (1999) 41-45.
  • K. Charlet, J. P. Jernot, M. Gomina, L. Bizet, J. Bréard, Mechanical properties of flax fibers and of the derived unidirectional composites, Journal of composite materials 44 (24) (2010) 2887-2896.
  • ASTM International. Standard test method for tensile properties of polymer matrix composite materials, (2014).
  • E. K. Çeven, G. K. Günaydin, Investigation of moisture management and air permeability properties of fabrics with linen and linen-polyester blend yarns. Fibres & Textiles in Eastern Europe 4 (130), (2018) 39-47.
  • E. K. Çeven, G. K. Günaydin, Investigation of some mechanical and air permeability properties of shirting fabrics produced from compact yarns made of natural and synthetic fibres. Uludağ Üniversitesi Mühendislik Fakültesi Dergisi 24.2 (2019) 445-460.
  • E. K. Çeven, G. K. Günaydin, Investigation of selected physical properties of knitted fabrics produced from macaroni yarns. Fibres & Textiles in Eastern Europe 26.4 (130) (2018) 59-66.
  • E. K. Çeven, G. K. Günaydin, Effect of washing cycle on tenacity and stretching properties of denim fabrics containing elastane. J Fashion Technol Textile Eng 2 (5) (2018) 1-5.
  • M. Kodaloğlu and F. Akarslan Kodaloğlu, Environmentally friendly recycled leather reinforced composite: thermal and acoustic properties. Teknik Bilimler Dergisi, 14 (2), (2024), 32-37.
  • M. Kodaloğlu and F. Akarslan Kodaloğlu, Investigation of thermal insulation and water absorption properties of cortaderia selloana short fibers reinforced sustainabilit composite material. Türk Bilim ve Mühendislik Dergisi, 6(2), (2024), 14-20.
There are 26 citations in total.

Details

Primary Language English
Subjects Mechanical Engineering (Other)
Journal Section Research Articles
Authors

Murat Kodaloğlu 0000-0001-6644-8068

Feyza Akarslan Kodaloğlu 0000-0002-7855-8616

Publication Date December 31, 2024
Submission Date June 28, 2024
Acceptance Date August 12, 2024
Published in Issue Year 2024 Volume: 8 Issue: 2

Cite

APA Kodaloğlu, M., & Akarslan Kodaloğlu, F. (2024). MECHANICAL PROPERTIES OF NATURAL FIBRE‑REINFORCED SUSTAINABLE EPOXY COMPOSITES. Uluslararası Sürdürülebilir Mühendislik Ve Teknoloji Dergisi, 8(2), 108-118. https://doi.org/10.62301/usmtd.1506650
AMA Kodaloğlu M, Akarslan Kodaloğlu F. MECHANICAL PROPERTIES OF NATURAL FIBRE‑REINFORCED SUSTAINABLE EPOXY COMPOSITES. Uluslararası Sürdürülebilir Mühendislik ve Teknoloji Dergisi. December 2024;8(2):108-118. doi:10.62301/usmtd.1506650
Chicago Kodaloğlu, Murat, and Feyza Akarslan Kodaloğlu. “MECHANICAL PROPERTIES OF NATURAL FIBRE‑REINFORCED SUSTAINABLE EPOXY COMPOSITES”. Uluslararası Sürdürülebilir Mühendislik Ve Teknoloji Dergisi 8, no. 2 (December 2024): 108-18. https://doi.org/10.62301/usmtd.1506650.
EndNote Kodaloğlu M, Akarslan Kodaloğlu F (December 1, 2024) MECHANICAL PROPERTIES OF NATURAL FIBRE‑REINFORCED SUSTAINABLE EPOXY COMPOSITES. Uluslararası Sürdürülebilir Mühendislik ve Teknoloji Dergisi 8 2 108–118.
IEEE M. Kodaloğlu and F. Akarslan Kodaloğlu, “MECHANICAL PROPERTIES OF NATURAL FIBRE‑REINFORCED SUSTAINABLE EPOXY COMPOSITES”, Uluslararası Sürdürülebilir Mühendislik ve Teknoloji Dergisi, vol. 8, no. 2, pp. 108–118, 2024, doi: 10.62301/usmtd.1506650.
ISNAD Kodaloğlu, Murat - Akarslan Kodaloğlu, Feyza. “MECHANICAL PROPERTIES OF NATURAL FIBRE‑REINFORCED SUSTAINABLE EPOXY COMPOSITES”. Uluslararası Sürdürülebilir Mühendislik ve Teknoloji Dergisi 8/2 (December 2024), 108-118. https://doi.org/10.62301/usmtd.1506650.
JAMA Kodaloğlu M, Akarslan Kodaloğlu F. MECHANICAL PROPERTIES OF NATURAL FIBRE‑REINFORCED SUSTAINABLE EPOXY COMPOSITES. Uluslararası Sürdürülebilir Mühendislik ve Teknoloji Dergisi. 2024;8:108–118.
MLA Kodaloğlu, Murat and Feyza Akarslan Kodaloğlu. “MECHANICAL PROPERTIES OF NATURAL FIBRE‑REINFORCED SUSTAINABLE EPOXY COMPOSITES”. Uluslararası Sürdürülebilir Mühendislik Ve Teknoloji Dergisi, vol. 8, no. 2, 2024, pp. 108-1, doi:10.62301/usmtd.1506650.
Vancouver Kodaloğlu M, Akarslan Kodaloğlu F. MECHANICAL PROPERTIES OF NATURAL FIBRE‑REINFORCED SUSTAINABLE EPOXY COMPOSITES. Uluslararası Sürdürülebilir Mühendislik ve Teknoloji Dergisi. 2024;8(2):108-1.