Full Text:   <2800>

Summary:  <1949>

CLC number: TB33; O343

On-line Access: 2015-07-03

Received: 2015-01-17

Revision Accepted: 2015-05-26

Crosschecked: 2015-06-12

Cited: 2

Clicked: 4940

Citations:  Bibtex RefMan EndNote GB/T7714

 ORCID:

Xu Liang

http://orcid.org/0000-0002-1268-7036

Hai-lei Kou

http://orcid.org/0000-0003-2545-1652

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Journal of Zhejiang University SCIENCE A 2015 Vol.16 No.7 P.525-540

http://doi.org/10.1631/jzus.A1500016


A semi-analytical state-space approach for 3D transient analysis of functionally graded material cylindrical shells


Author(s):  Xu Liang, Hai-lei Kou, Guo-hua Liu, Li-zhong Wang, Zhen-yu Wang, Zhi-jun Wu

Affiliation(s):  College of Civil Engineering and Architecture, Zhejiang University, Hangzhou 310058, China; more

Corresponding email(s):   liangxu@zju.edu.cn, kou123321@126.com

Key Words:  State space method, Numerical inversion of Laplace transform, Differential quadrature method, Functionally graded material (FGM), Cylindrical shells


Xu Liang, Hai-lei Kou, Guo-hua Liu, Li-zhong Wang, Zhen-yu Wang, Zhi-jun Wu. A semi-analytical state-space approach for 3D transient analysis of functionally graded material cylindrical shells[J]. Journal of Zhejiang University Science A, 2015, 16(7): 525-540.

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author="Xu Liang, Hai-lei Kou, Guo-hua Liu, Li-zhong Wang, Zhen-yu Wang, Zhi-jun Wu",
journal="Journal of Zhejiang University Science A",
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pages="525-540",
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publisher="Zhejiang University Press & Springer",
doi="10.1631/jzus.A1500016"
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%T A semi-analytical state-space approach for 3D transient analysis of functionally graded material cylindrical shells
%A Xu Liang
%A Hai-lei Kou
%A Guo-hua Liu
%A Li-zhong Wang
%A Zhen-yu Wang
%A Zhi-jun Wu
%J Journal of Zhejiang University SCIENCE A
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%D 2015
%I Zhejiang University Press & Springer
%DOI 10.1631/jzus.A1500016

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T1 - A semi-analytical state-space approach for 3D transient analysis of functionally graded material cylindrical shells
A1 - Xu Liang
A1 - Hai-lei Kou
A1 - Guo-hua Liu
A1 - Li-zhong Wang
A1 - Zhen-yu Wang
A1 - Zhi-jun Wu
J0 - Journal of Zhejiang University Science A
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SP - 525
EP - 540
%@ 1673-565X
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PB - Zhejiang University Press & Springer
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DOI - 10.1631/jzus.A1500016


Abstract: 
A good understanding of the mechanical behavior of functionally graded material (FGM) cylindrical shells is necessary for designers and researchers. However, the 3D transient response of FGM cylindrical shells under various boundary conditions has not yet been analyzed. In this paper, the problem is addressed by proposing an approach integrating the state space method, differential quadrature method, and Durbin’s numerical inversion method of Laplace transform. The laminate model is used to obtain the transient solution in the radial direction. At the edges, four kinds of boundary conditions are considered: Clamped-Clamped, Clamped-Simply supported, Clamped-Free, and Simply supported-Simply supported. The results of the proposed method and finite element (FE) method agree with each other excellently. Convergence studies show that the proposed method has a fast convergence rate. The natural frequencies obtained by the proposed method, experiment, and other theoretical methods are in close agreement with each other. The effects of the load frequency and duration, length/outer radius ratio, and the (outer radius−inner radius)/outer radius ratio on the transient response of FGM shells are investigated. Two laws of variation of material properties along the radial direction are considered: the first has material properties varying according to an exponential law along the radial direction, while the second has material properties varying according to a power law. The effect of a functionally graded index on the transient response of FGM shells is investigated in both cases. The results obtained in this paper can serve as benchmark data for further research.

The paper addresses the semi-analytical state-space approach for 3D transient analysis of functionally graded material cylindrical shells. Generally, the paper is well written and the technical content is acceptable (although the paper does not show strong originality and innovative idea). The subject matter is interesting because the manuscript gives access to the results of the particular FGM problem.

功能梯度圆柱壳瞬态动力响应的三维半解析状态空间求解方法

目的:研究任意边界条件下功能梯度圆柱壳瞬态动力响应的解析求解方法,并研究荷载、几何以及材料参数对结构瞬态动力响应的影响。
创新点:提出一种功能梯度圆柱壳的瞬态动力响应半解析求解方法,并可以考虑任意边界条件。本文考虑四种边界条件:固支-固支、固支-简支、固支-自由和简支-简支。
方法:1.提出任意边界条件下功能梯度圆柱壳的瞬态动力响应半解析求解方法;2.采用有限元方法计算成果,验证本方法的正确性;3.将本方法与其他理论方法计算得到的结构固有频率以及文献中试验得到的结构固有频率进行比较;4.研究荷载频率、长径比、内外径比以及功能梯度参数对于结构瞬态动力响应的影响。
结论:1.提出一种功能梯度圆柱壳的瞬态动力响应半解析求解方法;2.与其他方法计算成果对比,验证了本方法的正确性;3.收敛性分析表明,随着长度方向采样点数和径向分层数的增加,计算结果迅速收敛。

关键词:状态空间法;数值Laplace逆变换方法;微分求积法;功能梯度材料;圆柱壳

Darkslateblue:Affiliate; Royal Blue:Author; Turquoise:Article

Reference

[1]Abbasnejad, B., Rezazadeh, G., Shabani, R., 2013. Stability analysis of a capacitive FGM micro-beam using modified couple stress theory. Acta Mechanica Solida Sinica, 26(4):427-440.

[2]Akbari Alashti, R., Khorsand, M., 2012. Three-dimensional dynamo-thermo-elastic analysis of a functionally graded cylindrical shell with piezoelectric layers by DQ-FD coupled. International Journal of Pressure Vessels and Piping, 96-97:49-67.

[3]Alibeigloo, A., Shakeri, M., 2009. Elasticity solution for static analysis of laminated cylindrical panel using differential quadrature method. Engineering Structures, 31(1):260-267.

[4]Alibeigloo, A., Liew, K.M., 2014. Free vibration analysis of sandwich cylindrical panel with functionally graded core using three-dimensional theory of elasticity. Composite Structures, 113:23-30.

[5]Bellman, R., Casti, J., 1971. Differential quadrature and long-term integration. Journal of Mathematical Analysis and Applications, 34(2):235-238.

[6]Bert, C.W., Malik, M., 1996. Differential quadrature method in computational mechanics: a review. Applied Mechanics Reviews, 49(1):1-28.

[7]Carrera, E., Soave, M., 2011. Use of functionally graded material layers in a two-layered pressure vessel. Journal of Pressure Vessel Technology, 133(5):051202.

[8]Chen, W.Q., Lv, C.F., Bian, Z.G., 2003. Elasticity solution for free vibration of laminated beams. Composite Structures, 62(1):75-82.

[9]Chen, W.Q., Bian, Z.G., Lv, C.F., et al., 2004. 3D free vibration analysis of a functionally graded piezoelectric hollow cylinder filled with compressible fluid. International Journal of Solids and Structures, 41(3-4):947-964.

[10]Cohen, A.M., 2007. Numerical Methods for Laplace Transform Inversion. Springer Science & Business Media.

[11]Durbin, F., 1974. Numerical inversion of Laplace transforms: an efficient improvement to Dubner and Abate’s method. The Computer Journal, 17(4):371-376.

[12]Hasheminejad, S.M., Rajabi, M., 2008. Scattering and active acoustic control from a submerged piezoelectric-coupled orthotropic hollow cylinder. Journal of Sound and Vibration, 318(1-2):50-73.

[13]Hasheminejad, S.M., Gheshlaghi, B., 2012. Three-dimensional elastodynamic solution for an arbitrary thick FGM rectangular plate resting on a two parameter viscoelastic foundation. Composite Structures, 94(9):2746-2755.

[14]Hosseini-Hashemi, S., Ilkhani, M.R., Fadaee, M., 2012. Identification of the validity range of Donnell and sanders shell theories using an exact vibration analysis of functionally graded thick cylindrical shell panel. Acta Mechanica, 223(5):1101-1118.

[15]Hosseini-Hashemi, S., Ilkhani, M.R., Fadaee, M., 2013. Accurate natural frequencies and critical speeds of a rotating functionally graded moderately thick cylindrical shell. International Journal of Mechanical Sciences, 76:9-20.

[16]Jing, H.S., Tzeng, K.G., 1993. Approximate elasticity solution for laminated anisotropic finite cylinders. AIAA Journal, 31(11):2121-2129.

[17]Khdeir, A.A., Aldraihem, O.J., 2011. Exact analysis for static response of cross ply laminated smart shells. Composite Structures, 94(1):92-101.

[18]Leissa, A.W., 1973. Vibration of shells. Scientific and Technical Information Office, National Aeronautics and Space Administration, Washington.

[19]Liang, X., Wang, Z., Wang, L., et al., 2014. Semi-analytical solution for three-dimensional transient response of functionally graded annular plate on a two parameter viscoelastic foundation. Journal of Sound and Vibration, 333(12):2649-2663.

[20]Liang, X., Wang, Z., Wang, L., et al., 2015a. A semi-analytical method to evaluate the dynamic response of functionally graded plates subjected to underwater shock. Journal of Sound and Vibration, 336:257-274.

[21]Liang, X., Wu, Z., Wang, L., et al., 2015b. Semianalytical three-dimensional solutions for the transient response of functionally graded material rectangular plates. Journal of Engineering Mechanics, 04015027.

[22]Liew, K.M., Zhao, X., Lee, Y.Y., 2012. Postbuckling responses of functionally graded cylindrical shells under axial compression and thermal loads. Composites Part B: Engineering, 43(3):1621-1630.

[23]Lü, C.F., Lim, C.W., Xu, F., 2007. Stress analysis of anisotropic thick laminates in cylindrical bending using a semi-analytical approach. Journal of Zhejiang University-SCIENCE A, 8(11):1740-1745.

[24]Miyamoto, Y., Kaysser, W.A., Rabin, B.H., et al., 1999. Functionally Graded Materials: Design, Processing and Applications. Kluwer Academic Publishers, Boston.

[25]Neves, M.A., Ferreira, J.M., Carrera, E., et al., 2013. Free vibration analysis of functionally graded shells by a higher-order shear deformation theory and radial basis functions collocation, accounting for through-the-thickness deformations. European Journal of Mechanics -A/Solids, 37:24-34.

[26]Ng, C.W.W., 2014. The state-of-the-art centrifuge modelling of geotechnical problems at HKUST. Journal of Zhejiang University-SCIENCE A (Applied Physics & Engineering), 15(1):1-21.

[27]Santos, H., Mota Soares, C.M., Mota Soares, C.A., et al., 2009. A semi-analytical finite element model for the analysis of cylindrical shells made of functionally graded materials. Composite Structures, 91(4):427-432.

[28]Shadmehri, F., Hoa, S., Hojjati, M., 2014. The effect of displacement field on bending, buckling, and vibration of cross-ply circular cylindrical shells. Mechanics of Advanced Materials and Structures, 21(1):14-22.

[29]Sharma, C.B., 1984. Free vibrations of clamped-free circular cylinders. Thin-Walled Structures, 2(2):175-193.

[30]Shen, H.S., Wang, H., 2013. Thermal postbuckling of functionally graded fiber reinforced composite cylindrical shells surrounded by an elastic medium. Composite Structures, 102:250-260.

[31]Soong, T.V., 1970. A sub divisional method for linear system. Proceedings of the 11th AIAA/ASME Structures, Structural Dynamics and Material Conferences, New York, p.211-223.

[32]Tarn, J.Q., Tseng, W.D., Chang, H.H., 2009. A circular elastic cylinder under its own weight. International Journal of Solids and Structures, 46(14-15):2886-2896.

[33]Torki, M.E., Kazemi, M.T., Reddy, J.N., et al., 2014. Dynamic stability of functionally graded cantilever cylindrical shells under distributed axial follower forces. Journal of Sound and Vibration, 333(3):801-817.

[34]Wang, H.M., 2013. An effective approach for transient thermal analysis in a functionally graded hollow cylinder. International Journal of Heat and Mass Transfer, 67:499-505.

[35]Wang, H.M., Ding, H.J., Ge, W., 2007. Transient responses in a two-layered elasto-piezoelectric composite hollow cylinder. Composite Structures, 79(2):192-201.

[36]Wang, Z., Liang, X., Liu, G., 2013a. An analytical method for evaluating the dynamic response of plates subjected to underwater shock employing Mindlin plate theory and Laplace transforms. Mathematical Problems in Engineering, 2013:803609.

[37]Wang, Z., Liang, X., Fallah, A.S., et al., 2013b. A novel efficient method to evaluate the dynamic response of laminated plates subjected to underwater shock. Journal of Sound and Vibration, 332(21):5618-5634.

[38]Wen, P.H., Sladek, J., Sladek, V., 2011. Three-dimensional analysis of functionally graded plates. International Journal for Numerical Methods in Engineering, 87(10):923-942.

[39]Ying, J., Wang, H.M., 2009. Magnetoelectroelastic fields in rotating multiferroic composite cylindrical structures. Journal of Zhejiang University-SCIENCE A, 10(3):319-326.

[40]Ying, J., Lu, C.F., Lim, C.W., 2009. 3D thermoelasticity solutions for functionally graded thick plates. Journal of Zhejiang University-SCIENCE A, 10(3):327-336.

[41]Zhou, F., Li, S., Lai, Y., 2011. Three-dimensional analysis for transient coupled thermoelastic response of a functionally graded rectangular plate. Journal of Sound and Vibration, 330(16):3990-4001.

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