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Published in: Acta Mechanica 2/2024

01-12-2023 | Original Paper

Nonlinear vibration of geometrically imperfect CNT-reinforced composite cylindrical panels exposed to thermal environments with elastically restrained edges

Authors: Nguyen Van Thinh, Hoang Van Tung

Published in: Acta Mechanica | Issue 2/2024

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Abstract

This paper deals with the nonlinear free vibration of carbon nanotube (CNT)-reinforced composite cylindrical panels exposed to thermal environments. All boundary edges are assumed to be simply supported and tangentially restrained. CNTs are reinforced into isotropic matrix in such a way that their volume is uniform or varied across the thickness direction according to functional rules. In order to capture size effects, the effective properties of CNT-reinforced composite are estimated using an extended version of linear rule of mixture. Motion and compatibility equations are established within the framework of classical shell theory including von Kármán–Donnell nonlinearity, initial geometric imperfection and interactive pressure from elastic foundations. Analytical solutions are assumed, and Galerkin procedure is applied to derive a time differential equation containing quadratic and cubic nonlinear terms. Fourth-order Runge–Kutta integration scheme is employed to determine the frequencies of nonlinear vibration of the panels. Through a parametric study, numerous influences of CNT distribution, size of imperfection, degree of in-plane edge constraint, foundation stiffness and elevated temperature on the natural frequencies and nonlinear-to-linear frequency ratio are analyzed.
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Literature
1.
go back to reference Thostenson, E.T., Ren, Z., Chou, T.W.: Advances in the science and technology of carbon nanotubes and their composites: a review. Compos. Sci. Technol. 61, 1899–1912 (2001) Thostenson, E.T., Ren, Z., Chou, T.W.: Advances in the science and technology of carbon nanotubes and their composites: a review. Compos. Sci. Technol. 61, 1899–1912 (2001)
2.
go back to reference Coleman, J.N., Khan, U., Blau, W.J., Gun’ko, Y.K.: Small but strong: a review of the mechanical properties of carbon nanotube-polymer composites. Carbon 44, 1624–1652 (2006) Coleman, J.N., Khan, U., Blau, W.J., Gun’ko, Y.K.: Small but strong: a review of the mechanical properties of carbon nanotube-polymer composites. Carbon 44, 1624–1652 (2006)
3.
go back to reference Shen, H.S.: Nonlinear bending of functionally graded carbon nanotube-reinforced composite plates in thermal environments. Compos. Struct. 91, 9–19 (2009) Shen, H.S.: Nonlinear bending of functionally graded carbon nanotube-reinforced composite plates in thermal environments. Compos. Struct. 91, 9–19 (2009)
4.
go back to reference Zghal, S., Frikha, A., Dammak, F.: Static analysis of functionally graded carbon nanotube-reinforced plate and shell structures. Compos. Struct. 176, 1107–1123 (2017) Zghal, S., Frikha, A., Dammak, F.: Static analysis of functionally graded carbon nanotube-reinforced plate and shell structures. Compos. Struct. 176, 1107–1123 (2017)
5.
go back to reference Frikha, A., Zghal, S., Dammak, F.: Finite rotation three and four nodes shell elements for functionally graded carbon nanotubes-reinforced thin composite shell analysis. Comput. Methods Appl. Mech. Eng. 329, 289–311 (2018)ADSMathSciNet Frikha, A., Zghal, S., Dammak, F.: Finite rotation three and four nodes shell elements for functionally graded carbon nanotubes-reinforced thin composite shell analysis. Comput. Methods Appl. Mech. Eng. 329, 289–311 (2018)ADSMathSciNet
6.
go back to reference Zghal, S., Frikha, A., Dammak, F.: Nonlinear bending analysis of nanocomposites reinforced by graphene-nanotubes with finite shell element and membrane enhancement. Eng. Struct. 158, 95–109 (2018) Zghal, S., Frikha, A., Dammak, F.: Nonlinear bending analysis of nanocomposites reinforced by graphene-nanotubes with finite shell element and membrane enhancement. Eng. Struct. 158, 95–109 (2018)
7.
go back to reference Zghal, S., Frikha, A., Dammak, F.: Large deflection response-based geometrical nonlinearity of nanocomposite structures reinforced with carbon nanotubes. Appl. Math. Mech. 41, 1227–1250 (2020)MathSciNet Zghal, S., Frikha, A., Dammak, F.: Large deflection response-based geometrical nonlinearity of nanocomposite structures reinforced with carbon nanotubes. Appl. Math. Mech. 41, 1227–1250 (2020)MathSciNet
8.
go back to reference Kiani, Y.: Thermal postbuckling of temperature-dependent sandwich beams with carbon nanotube-reinforced face sheets. J. Therm. Stresses 39(9), 1098–1110 (2016) Kiani, Y.: Thermal postbuckling of temperature-dependent sandwich beams with carbon nanotube-reinforced face sheets. J. Therm. Stresses 39(9), 1098–1110 (2016)
9.
go back to reference Khosravi, S., Arvin, H., Kiani, Y.: Interactive thermal and inertial buckling of rotating temperature-dependent FG-CNT reinforced composite beams. Compos. B 175, 107178 (2019) Khosravi, S., Arvin, H., Kiani, Y.: Interactive thermal and inertial buckling of rotating temperature-dependent FG-CNT reinforced composite beams. Compos. B 175, 107178 (2019)
10.
go back to reference Lei, Z.X., Liew, K.M., Yu, J.L.: Buckling analysis of functionally graded carbon nanotube-reinforced composite plates using the element-free kp-Ritz method. Compos. Struct. 98, 160–168 (2013) Lei, Z.X., Liew, K.M., Yu, J.L.: Buckling analysis of functionally graded carbon nanotube-reinforced composite plates using the element-free kp-Ritz method. Compos. Struct. 98, 160–168 (2013)
11.
go back to reference Mirzaei, M., Kiani, Y.: Thermal buckling of temperature dependent FG-CNT reinforced composite plates. Meccanica 51, 2185–2201 (2016)MathSciNet Mirzaei, M., Kiani, Y.: Thermal buckling of temperature dependent FG-CNT reinforced composite plates. Meccanica 51, 2185–2201 (2016)MathSciNet
12.
go back to reference Wang, M., Li, Z.M., Qiao, P.: Semi-analytical solutions to buckling and free vibration analysis of carbon nanotube-reinforced composite thin plates. Compos. Struct. 144, 33–43 (2016) Wang, M., Li, Z.M., Qiao, P.: Semi-analytical solutions to buckling and free vibration analysis of carbon nanotube-reinforced composite thin plates. Compos. Struct. 144, 33–43 (2016)
13.
go back to reference Karami, B., Shahsavari, D., Janghorban, M.: A comprehensive analytical study on functionally graded carbon nanotube-reinforced composite plates. Aerosp. Sci. Technol. 82–83, 499–512 (2018) Karami, B., Shahsavari, D., Janghorban, M.: A comprehensive analytical study on functionally graded carbon nanotube-reinforced composite plates. Aerosp. Sci. Technol. 82–83, 499–512 (2018)
14.
go back to reference Haghighi, S.M., Alibeigloo, A.: Thermal buckling and vibrational analysis of carbon nanotube reinforced rectangular composite plates based on third-order shear deformation theory. J. Eng. Mech. 149(6), 04023026 (2023) Haghighi, S.M., Alibeigloo, A.: Thermal buckling and vibrational analysis of carbon nanotube reinforced rectangular composite plates based on third-order shear deformation theory. J. Eng. Mech. 149(6), 04023026 (2023)
15.
go back to reference Zghal, S., Frikha, A., Dammak, F.: Mechanical buckling analysis of functionally graded power-based and carbon nanotubes-reinforced composite plates and curved panels. Compos. B 150, 165–183 (2018) Zghal, S., Frikha, A., Dammak, F.: Mechanical buckling analysis of functionally graded power-based and carbon nanotubes-reinforced composite plates and curved panels. Compos. B 150, 165–183 (2018)
16.
go back to reference Trabelsi, S., Frikha, A., Zghal, S., Dammak, F.: A modified FSDT-based four nodes finite shell element for thermal buckling analysis of functionally graded plates and cylindrical shells. Eng. Struct. 178, 444–459 (2019) Trabelsi, S., Frikha, A., Zghal, S., Dammak, F.: A modified FSDT-based four nodes finite shell element for thermal buckling analysis of functionally graded plates and cylindrical shells. Eng. Struct. 178, 444–459 (2019)
17.
go back to reference Tung, H.V.: Thermal buckling and postbuckling behavior of functionally graded carbon nanotube-reinforced composite plates resting on elastic foundations with tangential edge restraints. J. Therm. Stresses 40(5), 641–663 (2017) Tung, H.V.: Thermal buckling and postbuckling behavior of functionally graded carbon nanotube-reinforced composite plates resting on elastic foundations with tangential edge restraints. J. Therm. Stresses 40(5), 641–663 (2017)
18.
go back to reference Trang, L.T.N., Tung, H.V.: Thermally induced postbuckling of thin CNT-reinforced composite plates under nonuniform in-plane temperature distributions. J. Thermoplast. Compos. Mater. 35(12), 2331–2353 (2022) Trang, L.T.N., Tung, H.V.: Thermally induced postbuckling of thin CNT-reinforced composite plates under nonuniform in-plane temperature distributions. J. Thermoplast. Compos. Mater. 35(12), 2331–2353 (2022)
19.
go back to reference Trang, L.T.N., Tung, H.V.: Tangential edge constraint sensitivity of nonlinear stability of CNT-reinforced composite plates under compressive and thermomechanical loadings. J. Eng. Mech. 144(7), 04018056 (2018) Trang, L.T.N., Tung, H.V.: Tangential edge constraint sensitivity of nonlinear stability of CNT-reinforced composite plates under compressive and thermomechanical loadings. J. Eng. Mech. 144(7), 04018056 (2018)
20.
go back to reference Kiani, Y.: Thermal post-buckling of FG-CNT reinforced composite plates. Compos. Struct. 159, 299–306 (2017) Kiani, Y.: Thermal post-buckling of FG-CNT reinforced composite plates. Compos. Struct. 159, 299–306 (2017)
21.
go back to reference Tung, H.V., Trang, L.T.N.: Thermal postbuckling of shear deformable CNT-reinforced composite plates with tangentially restrained edges and temperature-dependent properties. J. Thermoplast. Compos. Mater. 33(1), 97–124 (2020) Tung, H.V., Trang, L.T.N.: Thermal postbuckling of shear deformable CNT-reinforced composite plates with tangentially restrained edges and temperature-dependent properties. J. Thermoplast. Compos. Mater. 33(1), 97–124 (2020)
22.
go back to reference Long, V.T., Tung, H.V.: Thermal postbuckling behavior of CNT-reinforced composite sandwich plate models resting on elastic foundations with tangentially restrained edges and temperature-dependent properties. J. Thermoplast. Compos. Mater. 33(10), 1396–1428 (2020) Long, V.T., Tung, H.V.: Thermal postbuckling behavior of CNT-reinforced composite sandwich plate models resting on elastic foundations with tangentially restrained edges and temperature-dependent properties. J. Thermoplast. Compos. Mater. 33(10), 1396–1428 (2020)
23.
go back to reference Long, V.T., Tung, H.V.: Thermomechanical postbuckling behavior of CNT-reinforced composite sandwich plate models resting on elastic foundations with elastically restrained unloaded edges. J. Therm. Stresses 42(5), 658–680 (2019) Long, V.T., Tung, H.V.: Thermomechanical postbuckling behavior of CNT-reinforced composite sandwich plate models resting on elastic foundations with elastically restrained unloaded edges. J. Therm. Stresses 42(5), 658–680 (2019)
24.
go back to reference Shen, H.S., Zhang, C.L.: Thermal buckling and postbuckling behavior of functionally graded carbon nanotube-reinforced composite plates. Mater. Des. 31(7), 3403–3411 (2010) Shen, H.S., Zhang, C.L.: Thermal buckling and postbuckling behavior of functionally graded carbon nanotube-reinforced composite plates. Mater. Des. 31(7), 3403–3411 (2010)
25.
go back to reference Trang, L.T.N., Tung, H.V.: Thermomechanical postbuckling of higher order shear deformable CNT-reinforced composite plates with elastically restrained unloaded edges. Polym. Polym. Compos. 29(9S), S857–S875 (2021) Trang, L.T.N., Tung, H.V.: Thermomechanical postbuckling of higher order shear deformable CNT-reinforced composite plates with elastically restrained unloaded edges. Polym. Polym. Compos. 29(9S), S857–S875 (2021)
26.
go back to reference Tung, H.V., Trang, L.T.N.: Imperfection and tangential edge constraint sensitivities of thermomechanical nonlinear response of pressure-loaded carbon nanotube-reinforced composite cylindrical panels. Acta Mech. 229(5), 1949–1969 (2018)MathSciNet Tung, H.V., Trang, L.T.N.: Imperfection and tangential edge constraint sensitivities of thermomechanical nonlinear response of pressure-loaded carbon nanotube-reinforced composite cylindrical panels. Acta Mech. 229(5), 1949–1969 (2018)MathSciNet
27.
go back to reference Trang, L.T.N., Tung, H.V.: Thermomechanical nonlinear analysis of axially compressed carbon nanotube-reinforced composite cylindrical panels resting on elastic foundations with tangentially restrained edges. J. Therm. Stresses 41(4), 418–438 (2018) Trang, L.T.N., Tung, H.V.: Thermomechanical nonlinear analysis of axially compressed carbon nanotube-reinforced composite cylindrical panels resting on elastic foundations with tangentially restrained edges. J. Therm. Stresses 41(4), 418–438 (2018)
28.
go back to reference Trang, L.T.N., Tung, H.V.: Thermoelastic stability of thin CNT-reinforced composite cylindrical panels with elastically restrained edges under nonuniform in-plane temperature distribution. J. Thermoplast. Compos. Mater. 36(2), 768–793 (2023) Trang, L.T.N., Tung, H.V.: Thermoelastic stability of thin CNT-reinforced composite cylindrical panels with elastically restrained edges under nonuniform in-plane temperature distribution. J. Thermoplast. Compos. Mater. 36(2), 768–793 (2023)
29.
go back to reference Trang, L.T.N., Tung, H.V.: Nonlinear stability of CNT-reinforced composite cylindrical panels with elastically restrained straight edges under combined thermomechanical loading conditions. J. Thermoplast. Compos. Mater. 33(2), 153–179 (2020) Trang, L.T.N., Tung, H.V.: Nonlinear stability of CNT-reinforced composite cylindrical panels with elastically restrained straight edges under combined thermomechanical loading conditions. J. Thermoplast. Compos. Mater. 33(2), 153–179 (2020)
30.
go back to reference Trang, L.T.N., Tung, H.V.: Thermally induced postbuckling of higher order shear deformable CNT-reinforced composite flat and cylindrical panels resting on elastic foundations with elastically restrained edges. Mech. Based Des. Struct. Mach. 50(8), 2812–2835 (2022) Trang, L.T.N., Tung, H.V.: Thermally induced postbuckling of higher order shear deformable CNT-reinforced composite flat and cylindrical panels resting on elastic foundations with elastically restrained edges. Mech. Based Des. Struct. Mach. 50(8), 2812–2835 (2022)
31.
go back to reference Shen, H.S.: Postbuckling of nanotube-reinforced composite cylindrical panels resting on elastic foundations subjected to lateral pressure in thermal environments. Eng. Struct. 122, 174–183 (2016)ADS Shen, H.S.: Postbuckling of nanotube-reinforced composite cylindrical panels resting on elastic foundations subjected to lateral pressure in thermal environments. Eng. Struct. 122, 174–183 (2016)ADS
32.
go back to reference Shen, H.S., Xiang, Y.: Postbuckling of axially compressed nanotube-reinforced composite cylindrical panels resting on elastic foundations in thermal environments. Compos. B Eng. 67, 50–61 (2014) Shen, H.S., Xiang, Y.: Postbuckling of axially compressed nanotube-reinforced composite cylindrical panels resting on elastic foundations in thermal environments. Compos. B Eng. 67, 50–61 (2014)
33.
go back to reference Shen, H.S., Xiang, Y.: Thermal postbuckling of nanotube-reinforced composite cylindrical panels resting on elastic foundations. Compos. Struct. 123, 383–392 (2015) Shen, H.S., Xiang, Y.: Thermal postbuckling of nanotube-reinforced composite cylindrical panels resting on elastic foundations. Compos. Struct. 123, 383–392 (2015)
34.
go back to reference Zghal, S., Trabelsi, S., Dammak, F.: Post-buckling behavior of functionally graded and carbon nanotubes based structures with different mechanical loadings. Mech. Based Des. Struct. Mach. 50(9), 2997–3039 (2022) Zghal, S., Trabelsi, S., Dammak, F.: Post-buckling behavior of functionally graded and carbon nanotubes based structures with different mechanical loadings. Mech. Based Des. Struct. Mach. 50(9), 2997–3039 (2022)
35.
go back to reference Zhu, P., Lei, Z.X., Liew, K.M.: Static and free vibration analyses of carbon nanotube-reinforced composite plates using finite element method with first order shear deformable plate theory. Compos. Struct. 94, 1450–1460 (2012) Zhu, P., Lei, Z.X., Liew, K.M.: Static and free vibration analyses of carbon nanotube-reinforced composite plates using finite element method with first order shear deformable plate theory. Compos. Struct. 94, 1450–1460 (2012)
36.
go back to reference Lei, Z.X., Liew, K.M., Yu, J.L.: Free vibration analysis of functionally graded carbon nanotube-reinforced composite plates using the element-free kp-Ritz method in thermal environment. Compos. Struct. 106, 128–138 (2013)ADS Lei, Z.X., Liew, K.M., Yu, J.L.: Free vibration analysis of functionally graded carbon nanotube-reinforced composite plates using the element-free kp-Ritz method in thermal environment. Compos. Struct. 106, 128–138 (2013)ADS
37.
go back to reference Selim, B.A., Zhang, L.W., Liew, K.M.: Vibration analysis of CNT-reinforced functionally graded composite plates in thermal environment based on Reddy’s higher-order shear deformation theory. Compos. Struct. 156, 276–290 (2016) Selim, B.A., Zhang, L.W., Liew, K.M.: Vibration analysis of CNT-reinforced functionally graded composite plates in thermal environment based on Reddy’s higher-order shear deformation theory. Compos. Struct. 156, 276–290 (2016)
38.
go back to reference Kiani, Y.: Free vibration of functionally graded carbon nanotube reinforced composite plates integrated with piezoelectric layers. Comput. Math. Appl. 72(9), 2433–2449 (2016)MathSciNet Kiani, Y.: Free vibration of functionally graded carbon nanotube reinforced composite plates integrated with piezoelectric layers. Comput. Math. Appl. 72(9), 2433–2449 (2016)MathSciNet
39.
go back to reference Kiani, Y.: Free vibration of FG-CNT reinforced composite skew plates. Aerosp. Sci. Technol. 58, 178–188 (2016) Kiani, Y.: Free vibration of FG-CNT reinforced composite skew plates. Aerosp. Sci. Technol. 58, 178–188 (2016)
40.
go back to reference Fantuzzi, N., Tornabene, F., Bacciocchi, M., Dimitri, R.: Free vibration analysis of arbitrarily shaped functionally graded carbon nanotube-reinforced plates. Compos. B Eng. 115, 384–408 (2017) Fantuzzi, N., Tornabene, F., Bacciocchi, M., Dimitri, R.: Free vibration analysis of arbitrarily shaped functionally graded carbon nanotube-reinforced plates. Compos. B Eng. 115, 384–408 (2017)
41.
go back to reference Mehar, K., Panda, S.K., Dehengia, A., Kar, V.R.: Vibration analysis of functionally graded carbon nanotube reinforced composite plate in thermal environment. J. Sandwich Struct. Mater. 18(2), 151–173 (2016) Mehar, K., Panda, S.K., Dehengia, A., Kar, V.R.: Vibration analysis of functionally graded carbon nanotube reinforced composite plate in thermal environment. J. Sandwich Struct. Mater. 18(2), 151–173 (2016)
42.
go back to reference Shi, P.: Three-dimensional isogeometric analysis of functionally graded carbon nanotube-reinforced composite plates. Arch. Appl. Mech. 92, 3033–3063 (2022)ADS Shi, P.: Three-dimensional isogeometric analysis of functionally graded carbon nanotube-reinforced composite plates. Arch. Appl. Mech. 92, 3033–3063 (2022)ADS
43.
go back to reference Zhang, L.W., Lei, Z.X., Liew, K.M., Yu, J.L.: Static and dynamic of carbon nanotube reinforced functionally graded cylindrical panels. Compos. Struct. 111, 205–212 (2014) Zhang, L.W., Lei, Z.X., Liew, K.M., Yu, J.L.: Static and dynamic of carbon nanotube reinforced functionally graded cylindrical panels. Compos. Struct. 111, 205–212 (2014)
44.
go back to reference Mirzaei, M., Kiani, Y.: Free vibration of functionally graded carbon nanotube-reinforced composite cylindrical panels. Compos. Struct. 142, 45–56 (2016) Mirzaei, M., Kiani, Y.: Free vibration of functionally graded carbon nanotube-reinforced composite cylindrical panels. Compos. Struct. 142, 45–56 (2016)
45.
go back to reference Baltacioglu, A.K., Civalek, O.: Vibration analysis of circular cylindrical panels with CNT reinforced and FGM composites. Compos. Struct. 202, 374–388 (2018) Baltacioglu, A.K., Civalek, O.: Vibration analysis of circular cylindrical panels with CNT reinforced and FGM composites. Compos. Struct. 202, 374–388 (2018)
46.
go back to reference Zghal, S., Frikha, A., Dammak, F.: Free vibration analysis of carbon nanotube-reinforced functionally graded composite shell structures. Appl. Math. Model. 53, 132–155 (2018)MathSciNet Zghal, S., Frikha, A., Dammak, F.: Free vibration analysis of carbon nanotube-reinforced functionally graded composite shell structures. Appl. Math. Model. 53, 132–155 (2018)MathSciNet
47.
go back to reference Khosravi, S., Arvin, H., Kiani, Y.: Vibration analysis of rotating composite beams reinforced with carbon nanotubes in thermal environment. Int. J. Mech. Sci. 164, 105187 (2019) Khosravi, S., Arvin, H., Kiani, Y.: Vibration analysis of rotating composite beams reinforced with carbon nanotubes in thermal environment. Int. J. Mech. Sci. 164, 105187 (2019)
48.
go back to reference Frikha, A., Zghal, S., Dammak, F.: Dynamic analysis of functionally graded carbon nanotubes-reinforced plate and shell structures using a double directors finite shell element. Aerosp. Sci. Technol. 78, 438–451 (2018) Frikha, A., Zghal, S., Dammak, F.: Dynamic analysis of functionally graded carbon nanotubes-reinforced plate and shell structures using a double directors finite shell element. Aerosp. Sci. Technol. 78, 438–451 (2018)
49.
go back to reference Wang, Z.X., Shen, H.S.: Nonlinear vibration of nanotube-reinforced composite plates in thermal environments. Comput. Mater. Sci. 50, 2319–2330 (2011) Wang, Z.X., Shen, H.S.: Nonlinear vibration of nanotube-reinforced composite plates in thermal environments. Comput. Mater. Sci. 50, 2319–2330 (2011)
50.
go back to reference Tang, H., Dai, H.L.: Nonlinear vibration behavior of CNTRC plate with different distribution of CNTs under hygrothermal effects. Aerosp. Sci. Technol. 115, 106767 (2021) Tang, H., Dai, H.L.: Nonlinear vibration behavior of CNTRC plate with different distribution of CNTs under hygrothermal effects. Aerosp. Sci. Technol. 115, 106767 (2021)
51.
go back to reference Cho, J.R.: Nonlinear free vibration of functionally graded CNT-reinforced composite plates. Compos. Struct. 281, 115101 (2022) Cho, J.R.: Nonlinear free vibration of functionally graded CNT-reinforced composite plates. Compos. Struct. 281, 115101 (2022)
52.
go back to reference Shen, H.S., Xiang, Y.: Nonlinear vibration of nanotube-reinforced composite cylindrical panels resting on elastic foundations in thermal environments. Compos. Struct. 111, 291–300 (2014) Shen, H.S., Xiang, Y.: Nonlinear vibration of nanotube-reinforced composite cylindrical panels resting on elastic foundations in thermal environments. Compos. Struct. 111, 291–300 (2014)
53.
go back to reference Librescu, L., Lin, W.: Vibration of thermomechanically loaded flat and curved panels taking into account geometric imperfections and tangential edge restraints. Int. J. Solids Struct. 34, 2161–2181 (1997) Librescu, L., Lin, W.: Vibration of thermomechanically loaded flat and curved panels taking into account geometric imperfections and tangential edge restraints. Int. J. Solids Struct. 34, 2161–2181 (1997)
54.
go back to reference Tung, H.V.: Postbuckling behavior of functionally graded cylindrical panels with tangential edge constraints and resting on elastic foundations. Compos. Struct. 100, 532–541 (2013) Tung, H.V.: Postbuckling behavior of functionally graded cylindrical panels with tangential edge constraints and resting on elastic foundations. Compos. Struct. 100, 532–541 (2013)
55.
go back to reference Hieu, P.T., Tung, H.V.: Thermomechanical postbuckling of pressure-loaded CNT-reinforced composite cylindrical shells under tangential edge constraints and various temperature conditions. Polym. Compos. 41, 244–257 (2020) Hieu, P.T., Tung, H.V.: Thermomechanical postbuckling of pressure-loaded CNT-reinforced composite cylindrical shells under tangential edge constraints and various temperature conditions. Polym. Compos. 41, 244–257 (2020)
56.
go back to reference Trang, L.T.N., Tung, H.V.: Thermo-torsional postbuckling of CNT-reinforced composite toroidal shell segments with surrounding elastic media and tangentially restrained edges. J. Thermoplast. Compos. Mater. 36(8), 3137–3167 (2023) Trang, L.T.N., Tung, H.V.: Thermo-torsional postbuckling of CNT-reinforced composite toroidal shell segments with surrounding elastic media and tangentially restrained edges. J. Thermoplast. Compos. Mater. 36(8), 3137–3167 (2023)
Metadata
Title
Nonlinear vibration of geometrically imperfect CNT-reinforced composite cylindrical panels exposed to thermal environments with elastically restrained edges
Authors
Nguyen Van Thinh
Hoang Van Tung
Publication date
01-12-2023
Publisher
Springer Vienna
Published in
Acta Mechanica / Issue 2/2024
Print ISSN: 0001-5970
Electronic ISSN: 1619-6937
DOI
https://doi.org/10.1007/s00707-023-03791-0

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