ISSN 2466-4677; e-ISSN 2466-4847
SCImago Journal Rank
2024: SJR=0.300
CWTS Journal Indicators
2024: SNIP=0.77
INVESTIGATIONS ON THE MECHANICAL PROPERTIES OF THE NANO SiO2 EPOXY NANOCOMPOSITE
Authors:
Halil Burak Kaybal1
, Hasan Ulus1, Okan Demir1, Ahmet Caner Tatar1, Ahmet Avcı1
Received: 18.10.2017.
Accepted: 21.11.2017.
Available: 15.12.2017.
Abstract:
In this study, dispersion of nano SiO2, and its effect on mechanical properties were studied by preparing epoxy nanocomposites. Ultrasonic and mechanical mixes were used to disperse the SiO2, nanoparticles in to the epoxy resin. Having been produced with five different weight percentage ratios of SiO2, nanocomposites fracture surfaces were characterized by Scanning Electron Microscopy, optical microscope on tensile tests and bending tests. The results of experimental tests showed that the optimum values of strength for both test were acquired for (2 wt. %) of nano SiO2, epoxy nanocomposites. Scanning Electron Microscopy and optical microscopy analysis techniques were used to understand the toughening mechanisms of the nanocomposites.
Keywords:
References:
[1] B. Ellis, Chemistry and technology of epoxy of resins, New York, NY: Blackie Academic & Professional, 1993.
[2] C. Chen, R.S. Justice, D.W. Schaefer, J.W. Baur, Highly dispersed nanosilica-epoxy resin with enhanced mechanical properties, Polymer, 49 (17), 2008: pp.3805-3815. https://doi.org/10.1016/j.polymer.2008.06.023
[3] B. Wetzel, P. Rosso, F. Haupert, K. Friedrich, Epoxy nanocomposites – fracture and toughening mechanisms, Engineering Fracture Mechanics, Engineering Fracture Mechanics, 73 (16), 2006: pp.2375-2398. https://doi.org/10.1016/j.engfracmech.2006.05.018
[4] S. Halder, P.K. Ghosh, M.S. Goyat, S. Ray, Ultrasonic dual mode mixing and its effect on tensile properties of SiO2 epoxy nanocomposite, Journal of Adhesion, 27 (2), 2013: pp.111-124.
https://doi.org/10.1080/01694243.2012.701510
[5] F.H. Gojny, M.H.G. Wichmann, B. Fiedler, K. Schulte, Influence of different carbon nanotubes on the mechanical properties of epoxy matrix composites – A comparative study, Composite Science and Tech., 65 (15-16), 2005: pp.2300-2313. https://doi.org/10.1016/j.compscitech.2005.04.021
[6] C.B. Ng, L.S. Schadler, R.W. Siegel, Synthesis and mechanical properties of TiO2 epoxy nanocomposites, Nanostructured Materials, 12 (1-4), 1999: pp.507-510. https://doi.org/10.1016/S0965-9773(99)00170-1
[7] R. Sarathi, R.K. Sahu, P. Rajeshkumar, Understanding the thermal, mechanical and electrical properties of epoxy nanocomposites, Materials Science and Eng., 445-446 (-), 2007: pp.567-568.
https://doi.org/10.1016/j.msea.2006.09.077
[8] K. Wang, L. Chen, J. Wu, M.L. Toh, C. He, A.F. Yee, Epoxy Nanocomposites with Highly Exfoliated Clay: Mechanical Properties and Fracture Mechanisms, Macromolecules, 38 (3), 2005: pp.788-800. https://doi.org/10.1021/ma048465n
[9] H. Ulus, O.S. Sahin, A. Avci, Enhancement of flexural and shear properties of carbon fiber/epoxy hybrid nanocomposites by boron nitride nano particles and carbon nano tube modification, Fiber Polymer, 16 (12), 2015: pp.2627-2635. https://doi.org/10.1007/s12221-015-5603-4
[10] L. Wang, K. Wang, L. Chen, Y. Zhang, C. He, Preparation, morphology and thermal / mechanical properties of epoxy/nanoclay composite, Composites Part A: Applied Science and Manufacturing, 37 (11), 2006: pp.1890-1896. https://doi.org/10.1016/j.compositesa.2005.12.020
[11] Y.L. Liu, C.Y. Hsu, W.L. Wei, R.J. Jeng, Preparation and thermal properties of epoxy-silica nanocomposites from nanoscale colloidal silica, Polymer, 44 (18), 2003: pp.5159-5167.
https://doi.org/10.1016/S0032-3861(03)00519-6
[12] M.A. Rafiee, J. Rafiee, I. Srivastava, Z. Wang, H. Song, Z.Z. Yu, N. Koratkar, Fracture and Fatigue in Graphene Nanocomposites, Nano Small Micro, 6 (2), 2010: pp.179-183.
https://doi.org/10.1002/smll.200901480
This work is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License (CC BY-NC 4.0)
How to Cite
H.B. Kaybal, H. Ulus, O. Demir, A.C. Tatar, A. Avcı, Investigations on the Mechanical Properties of the Nano SiO2 Epoxy Nanocomposite. Applied Engineering Letters, 2(4), 2017: 121-124.
More Citation Formats
Kaybal, H.B., Ulus, H., Demir, O., Tatar, A.C., & Avcı, A. (2017). Investigations on the Mechanical Properties of the Nano SiO2 Epoxy Nanocomposite. Applied Engineering Letters, 2(4), 121-124.
Kaybal, Halil Burak, et al. “Investigations on the Mechanical Properties of the Nano SiO2 Epoxy Nanocomposite.“ Applied Engineering Letters, vol. 2,no. 4, 2017, pp. 121-124.
Kaybal, Halil Burak, Hasan Ulus, Okan Demir, Ahmet Caner Tatar, and Ahmet Avcı. 2017. “Investigations on the Mechanical Properties of the Nano SiO2 Epoxy Nanocomposite.“ Applied Engineering Letters, 2 (4): 121-124.
Kaybal, H.B., Ulus, H., Demir, O., Tatar, A.C., and Avcı, A. (2017). Investigations on the Mechanical Properties of the Nano SiO2 Epoxy Nanocomposite. Applied Engineering Letters, 2(4), pp.121-124.
SCImago Journal Rank
2024: SJR=0.300
CWTS Journal Indicators
2024: SNIP=0.77
INVESTIGATIONS ON THE MECHANICAL PROPERTIES OF THE NANO SiO2 EPOXY NANOCOMPOSITE
Authors:
Halil Burak Kaybal1
, Hasan Ulus1, Okan Demir1, Ahmet Caner Tatar1, Ahmet Avcı1
Received: 18.10.2017.
Accepted: 21.11.2017.
Available: 15.12.2017.
Abstract:
In this study, dispersion of nano SiO2, and its effect on mechanical properties were studied by preparing epoxy nanocomposites. Ultrasonic and mechanical mixes were used to disperse the SiO2, nanoparticles in to the epoxy resin. Having been produced with five different weight percentage ratios of SiO2, nanocomposites fracture surfaces were characterized by Scanning Electron Microscopy, optical microscope on tensile tests and bending tests. The results of experimental tests showed that the optimum values of strength for both test were acquired for (2 wt. %) of nano SiO2, epoxy nanocomposites. Scanning Electron Microscopy and optical microscopy analysis techniques were used to understand the toughening mechanisms of the nanocomposites.
Keywords:
This work is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License (CC BY-NC 4.0)