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http://dx.doi.org/10.12989/sem.2022.82.6.691

A numerical study on vibration behavior of fiber-reinforced composite panels in thermal environments  

Al-Toki, Mouayed H.Z. (Technical College, Middle Technical University)
Ali, Hayder A.K. (Engineering Collage, Al-Mustansiriah University)
Ahmed, Ridha A. (Engineering Collage, Al-Mustansiriah University)
Faleh, Nadhim M. (Engineering Collage, Al-Mustansiriah University)
Fenjan, Raad M. (Engineering Collage, Al-Mustansiriah University)
Publication Information
Structural Engineering and Mechanics / v.82, no.6, 2022 , pp. 691-699 More about this Journal
Abstract
This paper is devoted to the presentation of a numerical study on vibration behavior of composite panels reinforced by glass fibres and carbon nanotubes (CNTs) subjected to thermal environments. The effect of temperature variation has been included as thermal load acting on in-plane direction of the panel. To model the composite material, a micromechanical model which contains random dispersion of nanotubes and single-direction fibers has been selected. The geometry of the panel has been considered to have a single curveture along its width. Based on the above assumptions, the governing equations have been derived by using thin shell theory capturing the panel curveture and also nonlinear deflections. Finally, the panel dependence on various factors such as the curveture, nanotube amount, fiber volume, fiber direction and temperature variation has been researched.
Keywords
fibre-reiforced composite; numerical method; shell theory; thermal load; vibrations;
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Times Cited By KSCI : 10  (Citation Analysis)
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1 Shen, H.S., Xiang, Y., Lin, F. and Hui, D. (2017), "Buckling and postbuckling of functionally graded graphene-reinforced composite laminated plates in thermal environments", Compos. Part B: Eng., 119, 67-78. https://doi.org/10.1016/j.compositesb.2017.03.020.   DOI
2 Song, M., Kitipornchai, S. and Yang, J. (2017), "Free and forced vibrations of functionally graded polymer composite plates reinforced with graphene nanoplatelets", Compos. Struct., 159, 579-588. https://doi.org/10.1016/j.compstruct.2016.09.070.   DOI
3 Wang, J., Zhu, P., He, B., Deng, G., Zhang, C. and Huang, X. (2021a), "An adaptive neural sliding mode control with ESO for uncertain nonlinear systems", Int. J. Control, Autom. Syst., 19(2), 687-697. https://doi.org/10.1007/s12555-019-0972-x.   DOI
4 Wang, X., Handschuh-Wang, S., Xu, Y., Xiang, L., Zhou, Z., Wang, T. and Tang, Y. (2021b), "Hierarchical micro/nanostructured diamond gradient surface for controlled water transport and fog collection", Adv. Mater. Interf., 8(12), 2100196. https://doi.org/10.1002/admi.202100196.   DOI
5 Wattanasakulpong, N. and Chaikittiratana, A. (2015), "Exact solutions for static and dynamic analyses of carbon nanotube-reinforced composite plates with Pasternak elastic foundation", Appl. Math. Model., 39(18), 5459-5472. https://doi.org/10.1016/j.apm.2014.12.058.   DOI
6 Yang, B., Yang, J. and Kitipornchai, S. (2017), "Thermoelastic analysis of functionally graded graphene reinforced rectangular plates based on 3D elasticity", Meccanica, 52(10), 2275-2292. https://doi.org/10.1007/s11012-016-0579-8.   DOI
7 Zhang, C., Jin, Q., Song, Y., Wang, J., Sun, L., Liu, H. and Guo, S. (2021), "Vibration analysis of a sandwich cylindrical shell in hygrothermal environment", Nanotech. Rev., 10(1), 414-430. https://doi.org/10.1515/ntrev-2021-0026.   DOI
8 Kitipornchai, S., Chen, D. and Yang, J. (2017), "Free vibration and elastic buckling of functionally graded porous beams reinforced by graphene platelets", Mater. Des., 116, 656-665. https://doi.org/10.1016/j.matdes.2016.12.061.   DOI
9 Gojny, F.H., Wichmann, M.H.G., Kopke, U., Fiedler, B and Schulte, K. (2004), "Carbon nanotube-reinforced epoxy-composites: enhanced stiffness and fracture toughness at low nanotube content", Compos. Sci. Technol., 64(15), 2363-2371. https://doi.org/10.1016/j.compscitech.2004.04.002.   DOI
10 King, J.A., Klimek, D.R., Miskioglu, I. and Odegard, G.M. (2013), "Mechanical properties of graphene nanoplatelet/epoxy composites", J. Appl. Polym. Sci., 128(6), 4217-4223. https://doi.org/10.1002/app.38645.   DOI
11 Fang, M., Wang, K., Lu, H., Yang, Y. and Nutt, S. (2009), "Covalent polymer functionalization of graphene nanosheets and mechanical properties of composites", J. Mater. Chem., 19(38), 7098-7105. https://doi.org/10.1039/B908220D.   DOI
12 Kunbar, L.A.H., Hamad, L.B., Ahmed, R.A. and Faleh, N.M. (2020), "Nonlinear vibration of smart nonlocal magneto-electro-elastic beams resting on nonlinear elastic substrate with geometrical imperfection and various piezoelectric effects", Smart Struct. Syst., 25(5), 619-630. https://doi.org/10.12989/sss.2020.25.5.619.   DOI
13 Lal, A. and Markad, K. (2018), "Deflection and stress behaviour of multi-walled carbon nanotube reinforced laminated composite beams", Comput. Concrete, 22(6), 501-514. https://doi.org/10.12989/cac.2018.22.6.501.   DOI
14 Nieto, A., Bisht, A., Lahiri, D., Zhang, C and Agarwal, A. (2017), "Graphene reinforced metal and ceramic matrix composites: a review", Int. Mater. Rev., 62(5), 241-302. https://doi.org/10.1080/09506608.2016.1219481.   DOI
15 Rafiee, M.A., Rafiee, J., Wang, Z., Song, H., Yu, Z.Z. and Koratkar, N. (2009), "Enhanced mechanical properties of nanocomposites at low graphene content", ACS Nano, 3(12), 3884-3890. https://doi.org/10.1021/nn9010472.   DOI
16 Rezaiee-Pajand, M., Masoodi, A.R. and Mokhtari, M. (2018), "Static analysis of functionally graded non-prismatic sandwich beams", Adv. Comput. Des., 3(2), 165-190. https://doi.org/10.12989/acd.2018.3.2.165.   DOI
17 Fenjan, R.M., Ahmed, R.A., Hamad, L.B. and Faleh, N.M. (2020a), "A review of numerical approach for dynamic response of strain gradient metal foam shells under constant velocity moving loads", Adv. Comput. Des., 5(4), 349-362. https://doi.org/10.12989/acd.2020.5.4.349.   DOI
18 Lin, F., Yang, C., Zeng, Q.H and Xiang, Y. (2018), "Morphological and mechanical properties of graphene-reinforced PMMA nanocomposites using a multiscale analysis", Comput. Mater. Sci., 150, 107-120.   DOI
19 Al-Maliki, A.F., Faleh, N.M. and Alasadi, A.A. (2019), "Finite element formulation and vibration of nonlocal refined metal foam beams with symmetric and non-symmetric porosities", Struct. Monit. Mainten., 6(2), 147-159. https://doi.org/10.12989/smm.2019.6.2.147.   DOI
20 Esawi, A.M.K., Morsi, K., Sayed, A., Taher, M and Lanka, S. (2011), "The influence of carbon nanotube (CNT) morphology and diameter on the processing and properties of CNT-reinforced aluminium composites", Compos. Part A: Appl. Sci. Manuf., 42(3), 234-243. https://doi.org/10.1016/j.compositesa.2010.11.008.   DOI
21 Feng, C., Kitipornchai, S. and Yang, J. (2017), "Nonlinear free vibration of functionally graded polymer composite beams reinforced with graphene nanoplatelets (GPLs)", Eng. Struct., 140, 110-119. https://doi.org/10.1016/j.engstruct.2017.02.052.   DOI
22 Feng, S., Zuo, C., Zhang, L., Tao, T., Hu, Y., Yin, W. and Chen, Q. (2021a), "Calibration of fringe projection profilometry: A comparative review", Optic. Laser. Eng., 143, 106622. https://doi.org/10.1016/j.optlaseng.2021.106622.   DOI
23 Feng, S., Zuo, C., Zhang, L., Yin, W. and Chen, Q. (2021b), "Generalized framework for non-sinusoidal fringe analysis using deep learning", Photon. Res., 9(6), 1084-1098. https://doi.org/10.1364/PRJ.420944.   DOI
24 Fenjan, R.M., Faleh, N.M. and Ridha, A.A. (2020b), "Strain gradient based static stability analysis of composite crystalline shell structures having porosities", Steel Compos. Struct., 36(6), 631-642. https://doi.org/10.12989/scs.2020.36.6.631.   DOI
25 Cheng, H., Li, T., Li, X., Feng, J., Tang, T. and Qin, D. (2021), "Facile synthesis of Co9S8 nanocages as an electrochemical sensor for luteolin detection", J. Electrochem. Soc., 168(8), 087504. https://doi.org/10.1149/1945-7111/ac1813.   DOI
26 Ahmed, R.A., Al-Maliki, A.F. and Faleh, N.M. (2020b), "Dynamic characteristics of multi-phase crystalline porous shells with using strain gradient elasticity", Adv. Nano Res., 8(2), 157. https://doi.org/10.12989/anr.2020.8.2.157.   DOI
27 Forsat, M., Badnava, S., Mirjavadi, S.S., Barati, M.R. and Hamouda, A.M.S. (2020), "Small scale effects on transient vibrations of porous FG cylindrical nanoshells based on nonlocal strain gradient theory", Eur. Phys. J. Plus, 135(1), 1-19. https://doi.org/10.1140/epjp/s13360-019-00042-x.   DOI
28 Muhammad, A.K., Hamad, L.B., Fenjan, R.M. and Faleh, N.M. (2019), "Analyzing large-amplitude vibration of nonlocal beams made of different piezo-electric materials in thermal environment", Adv. Mater. Res., 8(3), 237-257. https://doi.org/10.12989/amr.2019.8.3.237.   DOI
29 Abdulrazzaq, M.A., Muhammad, A.K., Kadhim, Z.D. and Faleh, N.M. (2020), "Vibration analysis of nonlocal strain gradient porous FG composite plates coupled by visco-elastic foundation based on DQM", Couple. Syst. Mech., 9(3), 201-217. https://doi.org/10.12989/csm.2020.9.3.201.   DOI
30 Ahankari, S.S and Kar, K.K. (2010), "Hysteresis measurements and dynamic mechanical characterization of functionally graded natural rubber-carbon black composites", Polym. Eng. Sci., 50(5), 871-877. https://doi.org/10.1002/pen.21601.   DOI
31 Ahmed, R.A., Fenjan, R.M., Hamad, L.B. and Faleh, N.M. (2020a), "A review of effects of partial dynamic loading on dynamic response of nonlocal functionally graded material beams", Adv. Mater. Res., 9(1), 33-48. https://doi.org/10.12989/amr.2020.9.1.033.   DOI
32 Zhang, M., Zhang, L., Tian, S., Zhang, X., Guo, J., Guan, X. and Xu, P. (2020), "Effects of graphite particles/Fe3+ on the properties of anoxic activated sludge", Chemosph., 253, 126638. https://doi.org/10.1016/j.chemosphere.2020.126638.   DOI