Yıl: 2023 Cilt: 9 Sayı: 1 Sayfa Aralığı: 53 - 65 Metin Dili: İngilizce DOI: 10.17515/resm2022.442ma0606 İndeks Tarihi: 12-05-2023

Tensile and charpy impact properties of CNTs integrated PET/ Glass Fiber thermoplastic composites with commingled yarn

Öz:
Within this study, the non-crimp fabrics (NCF) with commingled yarns that they contained hybrid structures in which two different materials in the form of fibers were mixed, which consisted of polyethylene terephthalate (PET)/glass fiber (GF), were coated with multi-walled carbon nanotubes (MWCNTs) (weight percentages were 0 and 0.9%) and modified multi-walled carbon nanotubes (MWCNTs-Carboxylic acid (COOH)) (weight percentages were 0 and 0.9%) to fabricate hybrid composites. Three types of composite materials were prepared (pure polyethylene terephthalate/glass fiber (PET/GF), PET/GF with MWCNTs and PET/GF with MWCNTs-COOH) and they were tested against tensile and Charpy impact loadings. The effects of MWCNTs contents on the micro-structure and morphology of the composites were reported by using a scanning electron microscope (SEM), fourier transform infrared spectroscopy analysis (FTIR) and optical microscopy (OM). The specimens with MWCNTs-COOH exhibited an enhancement of 33% tensile strength, 23% tensile modulus and 8% Charpy impact energy compared to the samples without MWCNTs-COOH. It can be concluded that even a small mass fraction of MWCNTs was capable of improving the mechanical performance of the glass fiber reinforced PET matrix composites. In other words, due to the presence of the carbon nanotubes on the fiber surface helped to improve interfacial adhesion in the fabricated composites.
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  • [1] Lue JT. Physical properties of nanomaterials. Encyclopedia of Nanoscience and Nanotechnology.2007; 10 (1): 1-46.
  • [2] Roco MC. National Nanotechnology Initiative - Past, Present, Future, in Handbook on Nanoscience Engineering and Technology. 2nd edn. Taylor and Francis, Oxford, 2007: 3.1- 3.26.
  • [3] Bonard JM, Kind H, Stockli T, Nilsson LO. Field emission from carbon nanotubes: the first five years. Solid-State Electrons. 2001; 45 (6): 893-914. https://doi.org/10.1016/S0038-1101(00)00213-6
  • [4] Daenen M, Fouw RD, Hamers B, Janssen PGA, Schouteden K, Veld MAJ. The wondrous world of carbon nanotubes. A Review of current carbon nanotube technologies, Endhoven University of Technology, Eindhoven. 2003;1-97.
  • [5] Odom TW, Huang JL, Lieber CM. Single walled carbon nanotubes: from fundamental studies to new device concepts. Annals of the New York Academy of Sciences. 2002; 960(1): 203-215. https://doi.org/10.1111/j.1749-6632.2002.tb03035.x
  • [6] Loos MR, Schulte K. Is it worth the effort to reinforce polymers with carbon nanotubes? Macromolecular Theory and Simulations. 2011; 20 (5): 350-362. https://doi.org/10.1002/mats.201100007
  • [7] Kukovecz A, Kozma G. Konya Z. Multi-walled carbon nanotubes. In: R Vajtai (ed) Springer handbook of nanomaterials. New York: Springer Dordrecht Heidelberg. 2013; 147-188. https://doi.org/10.1007/978-3-642-20595-8_5
  • [8] Ghavamian A, Öchsner A. Numerical investigation on the influence of defects on the buckling behavior of single-and multi-walled carbon nanotubes. Physica E: Low- dimensional Systems and Nanostructures. 2012; 46: 241-249. https://doi.org/10.1016/j.physe.2012.08.002
  • [9] Annu A, Bhattacharya B, Singh PK, Shukla PK, Rhee HW. Carbon nanotube using spray pyrolysis: recent scenario, Journal of Alloys and Compounds. 2017; 691: 970-982. https://doi.org/10.1016/j.jallcom.2016.08.246
  • [10] Lee JH, Rhee KY, Park SJ. The tensile and thermal properties of modified CNT- reinforced basalt/epoxy composites. Materials Science and Engineering: A. 2010; 527(26): 6838-6843. https://doi.org/10.1016/j.msea.2010.07.080
  • [11] Wiegand N, Mäder E. Commingled yarn spinning for thermoplastic/glass fiber composites. Fibers. 2017; 5(3): 26-41. https://doi.org/10.3390/fib5030026
  • [12] Baeurle SA, Hotta A, Gusev AA. On the glassy state of multiphase and pure polymermaterials. Polymer. 2006; 47 (17): 6243-6253. https://doi.org/10.1016/j.polymer.2006.05.076
  • [13] Massey LK. Permeability properties of plastics and elastomers: a guide to packaging and barrier materials. Publisher: William Andrew. 2003; 1-601. https://doi.org/10.1016/B978-188420797-6.50095-4
  • [14] Escala A, Stein RS. Crystallization studies of blends of polyethylene terephthalate and polybutylene terephthalate. Advances in Chemistry. 1979; 176 (24): 455-487. https://doi.org/10.1021/ba-1979-0176.ch024
  • [15] Rajak, D. K., Wagh, P. H., & Linul, E. A Review on Synthetic Fibers for Polymer Matrix Composites: Performance, Failure Modes and Applications. Materials, 2022 15(14), 4790. https://doi.org/10.3390/ma15144790
  • [16] Matthews, F. L., Davies, G. A. O., Hitchings, D., & Soutis, C. Finite element modelling of composite materials and structures. Elsevier. 2000. https://doi.org/10.1201/9781439822807
  • [17] Awais H, Nawab Y, Amjad A, Anjang A., Akil HM, Abidin MSZ. Effect of comingling techniques on mechanical properties of natural fibre reinforced cross-ply thermoplastic composites. Composites Part B. 2019; 177: 107279. https://doi.org/10.1016/j.compositesb.2019.107279
  • [18] Gojny FH, Wichmann MHG, Fiedler B, Schulte K. Influence of different carbon nanotubes on the mechanical properties of epoxy matrix composites - a comparative study. Composites Science and Technology. 2005; 65: 2300-2313. https://doi.org/10.1016/j.compscitech.2005.04.021
  • [19] Shazed MA, Suraya AR, Rahmanian S, Salleh MAM. Effect of fiber coating and geometry on the tensile properties of hybrid carbon nanotube coated carbon fiber reinforced composite. Materials and Design. 2014; 54: 660-669. https://doi.org/10.1016/j.matdes.2013.08.063
  • [20] Liu W, Li L, Zhang, S, Yang, F & Wang R. Mechanical properties of carbon nanotube/carbon fiber reinforced thermoplastic polymer composite. Polymer Composites. 2017; 38(9): 2001-2008. https://doi.org/10.1002/pc.23771
  • [21] Hao L, Hu Y, Zhang Y, Wei W, Hou X, Guo Y, Jiang D. Enhancing the mechanical performance of poly (ether ether ketone)/zinc oxide nanocomposites to provide promising biomaterials for trauma and orthopedic implants. RSC advances. 2018; 8(48): 27304-27317. https://doi.org/10.1039/C8RA01736K
  • [22] Rahmat M, Jakubinek MB., Ashrafi B, Martinez-Rubi Y, Simard B, Glass fiber−epoxy composites with boron nitride nanotubes for enhancing interlaminar properties in structures. ACS Omega. 2022; 7: 10674−10686. https://doi.org/10.1021/acsomega.2c00365
  • [23] Demircan O, Al-darkazali A, Inanç I, Eskizeybek V. Investigation of the effect of CNTs on the mechanical properties of LPET/glass fiber thermoplastic composites. Journal of Thermoplastic Composite Materials. 2019; 33 (12): 1652-1673. https://doi.org/10.1177/0892705719833105
  • [24] Eskizeybek V, Avcı A, Gulce A. The Mode I interlaminar fracture toughness of chemically carbon nanotube grafted glass fabric/epoxy multi-scale composite structures. Composites Part A: Applied Science and Manufacturing. 2014; 63: 94-102. https://doi.org/10.1016/j.compositesa.2014.04.013
  • [25] Qui NV, Scholz P, Krech T, Keller TF, Pollok K, Ondruschka B. Multiwalled carbon nanotubes oxidized by UV/H2O2 as catalyst for oxidative dehydrogenation of ethylbenzene.Catalysis Communications.2011; 12: 464-469. https://doi.org/10.1016/j.catcom.2010.11.007
  • [26] Scheibe B, Palen EB, Kalenczuk RJ. Oxidation and reduction of multiwalled carbon nanotubes-preparation and characterization. Materials Characterization. 2010; 61 (2): 185-191. https://doi.org/10.1016/j.matchar.2009.11.008
  • [27] Strain IN, Wu Q, Pourrahimi AM, Hedenqvist MS, Olsson RT, Andersson RL. Electrospinning of recycled PET to generate tough mesomorphic fibre membranes for smoke filtration. Journal of Materials Chemistry A. 2015; 3: 1632-1640. https://doi.org/10.1039/C4TA06191H [28] Eskizeybek V, Avcı A, Gülce A. Preparation and mechanical properties of carbon
  • nanotube grafted glass fabric/epoxy multi-scale composites. Advanced Composite Materials. 2017; 26 (2): 169-180.
  • [29] Demircan O, Kosui T, Ashibe S, Nakai A. Effect of stitch and biaxial yarn types on tensile, bending, and impact properties of biaxial weft-knitted composites. Advanced Composite Materials. 2013; 23 (3): 239-260. https://doi.org/10.1080/09243046.2013.851062
APA demircan ö, MOHAMMED S, AHMED A (2023). Tensile and charpy impact properties of CNTs integrated PET/ Glass Fiber thermoplastic composites with commingled yarn. , 53 - 65. 10.17515/resm2022.442ma0606
Chicago demircan özgür,MOHAMMED SARAH SUFYAN,AHMED Ahmed Mohamed Basem Tensile and charpy impact properties of CNTs integrated PET/ Glass Fiber thermoplastic composites with commingled yarn. (2023): 53 - 65. 10.17515/resm2022.442ma0606
MLA demircan özgür,MOHAMMED SARAH SUFYAN,AHMED Ahmed Mohamed Basem Tensile and charpy impact properties of CNTs integrated PET/ Glass Fiber thermoplastic composites with commingled yarn. , 2023, ss.53 - 65. 10.17515/resm2022.442ma0606
AMA demircan ö,MOHAMMED S,AHMED A Tensile and charpy impact properties of CNTs integrated PET/ Glass Fiber thermoplastic composites with commingled yarn. . 2023; 53 - 65. 10.17515/resm2022.442ma0606
Vancouver demircan ö,MOHAMMED S,AHMED A Tensile and charpy impact properties of CNTs integrated PET/ Glass Fiber thermoplastic composites with commingled yarn. . 2023; 53 - 65. 10.17515/resm2022.442ma0606
IEEE demircan ö,MOHAMMED S,AHMED A "Tensile and charpy impact properties of CNTs integrated PET/ Glass Fiber thermoplastic composites with commingled yarn." , ss.53 - 65, 2023. 10.17515/resm2022.442ma0606
ISNAD demircan, özgür vd. "Tensile and charpy impact properties of CNTs integrated PET/ Glass Fiber thermoplastic composites with commingled yarn". (2023), 53-65. https://doi.org/10.17515/resm2022.442ma0606
APA demircan ö, MOHAMMED S, AHMED A (2023). Tensile and charpy impact properties of CNTs integrated PET/ Glass Fiber thermoplastic composites with commingled yarn. Research on Engineering Structures and Materials, 9(1), 53 - 65. 10.17515/resm2022.442ma0606
Chicago demircan özgür,MOHAMMED SARAH SUFYAN,AHMED Ahmed Mohamed Basem Tensile and charpy impact properties of CNTs integrated PET/ Glass Fiber thermoplastic composites with commingled yarn. Research on Engineering Structures and Materials 9, no.1 (2023): 53 - 65. 10.17515/resm2022.442ma0606
MLA demircan özgür,MOHAMMED SARAH SUFYAN,AHMED Ahmed Mohamed Basem Tensile and charpy impact properties of CNTs integrated PET/ Glass Fiber thermoplastic composites with commingled yarn. Research on Engineering Structures and Materials, vol.9, no.1, 2023, ss.53 - 65. 10.17515/resm2022.442ma0606
AMA demircan ö,MOHAMMED S,AHMED A Tensile and charpy impact properties of CNTs integrated PET/ Glass Fiber thermoplastic composites with commingled yarn. Research on Engineering Structures and Materials. 2023; 9(1): 53 - 65. 10.17515/resm2022.442ma0606
Vancouver demircan ö,MOHAMMED S,AHMED A Tensile and charpy impact properties of CNTs integrated PET/ Glass Fiber thermoplastic composites with commingled yarn. Research on Engineering Structures and Materials. 2023; 9(1): 53 - 65. 10.17515/resm2022.442ma0606
IEEE demircan ö,MOHAMMED S,AHMED A "Tensile and charpy impact properties of CNTs integrated PET/ Glass Fiber thermoplastic composites with commingled yarn." Research on Engineering Structures and Materials, 9, ss.53 - 65, 2023. 10.17515/resm2022.442ma0606
ISNAD demircan, özgür vd. "Tensile and charpy impact properties of CNTs integrated PET/ Glass Fiber thermoplastic composites with commingled yarn". Research on Engineering Structures and Materials 9/1 (2023), 53-65. https://doi.org/10.17515/resm2022.442ma0606