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http://dx.doi.org/10.12989/sss.2012.9.5.427

Exact solution of a thick walled functionally graded piezoelectric cylinder under mechanical, thermal and electrical loads in the magnetic field  

Arefi, M. (Department of Mechanical Engineering, Tarbiat Modares University)
Rahimi, G.H. (Department of Mechanical Engineering, Tarbiat Modares University)
Khoshgoftar, M.J. (Department of Mechanical Engineering, Tarbiat Modares University)
Publication Information
Smart Structures and Systems / v.9, no.5, 2012 , pp. 427-439 More about this Journal
Abstract
The present paper deals with the analytical solution of a functionally graded piezoelectric (FGP) cylinder in the magnetic field under mechanical, thermal and electrical loads. All mechanical, thermal and electrical properties except Poisson ratio can be varied continuously and gradually along the thickness direction of the cylinder based on a power function. The cylinder is assumed to be axisymmetric. Steady state heat transfer equation is solved by considering the appropriate boundary conditions. Using Maxwell electro dynamic equation and assumed magnetic field along the axis of the cylinder, Lorentz's force due to magnetic field is evaluated for non homogenous state. This force can be employed as a body force in the equilibrium equation. Equilibrium and Maxwell equations are two fundamental equations for analysis of the problem. Comprehensive solution of Maxwell equation is considered in the present paper for general states of non homogeneity. Solution of governing equations may be obtained using solution of the characteristic equation of the system. Achieved results indicate that with increasing the non homogenous index, different mechanical and electrical components present different behaviors along the thickness direction. FGP can control the distribution of the mechanical and electrical components in various structures with good precision. For intelligent properties of functionally graded piezoelectric materials, these materials can be used as an actuator, sensor or a component of piezo motor in electromechanical systems.
Keywords
functionally graded piezoelectric; magnetic field; cylinder; electric potential; non homogenous;
Citations & Related Records
Times Cited By KSCI : 2  (Citation Analysis)
Times Cited By Web Of Science : 1  (Related Records In Web of Science)
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1 Arefi, M., Rahimi, G.H. and Khoshgoftar, M.J. (2011), "Optimized design of a cylinder under mechanical, magnetic and thermal loads as a sensor or actuator using a functionally graded piezomagnetic material", Int. J. Phy. Sci., 6(27), 6315-6322.
2 Arefi, M. and Rahimi, G.H. (2011), "Non linear analysis of a functionally graded square plate with two smart layers as sensor and actuator under normal pressure", Smart. Struct. Syst., 8(5), 433-448.   DOI
3 Arefi, M. and Rahimi, G.H. (2012), "Studying the nonlinear behavior of the functionally graded annular plates with piezoelectric layers as a sensor and actuator under normal pressure", Smart. Struct. Syst., 9(2), 127-143.   DOI
4 Arefi, M. and Rahimi, G.H. (2012), "Three-dimensional multi-field equations of a functionally graded piezoelectric thick shell with variable thickness, curvature and arbitrary nonhomogeneity", Acta. Mech., 223(1), 63-79.   DOI   ScienceOn
5 Arefi, M. and Rahimi, G.H. (2011), "General formulation for the thermoelastic analysis of an arbitrary structure made of functionally graded piezoelectric materials, based on the energy method", Mech. Eng., 62(c4), 221-236.
6 Babaei, M.H. and Chen, Z.T. (2008), "Exact solutions for radially polarized and magnetized magnetoelectroelastic rotating cylinder", Smart. Mater. Struct., 17(2).
7 Boresi, A. (1993), Advanced mechanics of materials, 5th Ed., John wiley and sons press.
8 Dai, H.L. and Wang, X. (2006), "Magneto-thermo-electro-elastic transient response in a piezoelectric hollow cylinder subjected to complex loadings", Int. J. Solids. Struct., 43, 5628-5646.   DOI   ScienceOn
9 Dai, H.L., Fu, Y.M. and Dong, Z.M. (2006), "Exact solutions for functionally graded pressure vessels in a uniform magnetic field", Int. J. Solids. Struct., 43, 5570-5580.   DOI   ScienceOn
10 Dai, H.L. and Fu, Y.M. (2007), "Magnetothermoelastic interactions in hollow structures of functionally graded material subjected to mechanical loads", Int. J. Pressure. Vessel. Piping., 84(3), 132-138.   DOI   ScienceOn
11 Dai, H.L., Hong, L, Fu, Y.M. and Xiao, X. (2010), "Analytical solution for electro magneto thermo elastic behaviors of a functionally graded piezoelectric hollow cylinder", Appl. Math. Model., 34, 343-357.   DOI   ScienceOn
12 Frank, P.I. (1996), Introduction to heat transfer, John wiley and sons press.
13 Hou, P. and Leung Andrew, Y.T. (2004), "The transient responses of magneto-electro-elastic hollow cylinders", Smart. Mater. Struct., 13(4), 762-776.   DOI   ScienceOn
14 Jabbari, M., Sohrabpour, S. and Eslami, M.R. (2002), "Mechanical and thermal stresses in a functionally graded hollow cylinder due to radially symmetric loads", Int. J. Pressure. Vessel. Piping., 79(7), 493-497.   DOI   ScienceOn
15 Khoshgoftar, M.J., Ghorbanpour, A.A. and Arefi, M. (2009), "Thermoelastic analysis of a thick walled cylinder made of functionally graded piezoelectric material", Smart. Mater. Struct., 18(11).
16 Lim, C.W. and He, L.H. (2001), "Exact solution of a compositionally graded piezoelectric layer under uniform stretch, bending and twisting", Int. J. Mech. Sci., 43(11), 2479-2492.   DOI   ScienceOn
17 Liu, X., Wang, Q. and Quek, S.T. (2002), "Analytical solution for free vibration of piezoelectric coupled moderately thick circular plate", Int. J. Solids. Struct., 39(8), 2129-2151.   DOI   ScienceOn
18 Lai, M., Rubin, D. and Krempl, E. (1999), Introduction to continuum mechanics, 3rd Ed., Buttenvorth-Heinemann press.
19 Pietrzakowski, M. (2008), "Piezoelectric control of composite plate vibration: Effect of electric potential distribution", Compos. Struct., 86(9), 948-954.   DOI   ScienceOn
20 Rahimi, G.H. Arefi, M. and Khoshgoftar, M.J. (2011), "Application and analysis of functionally graded piezoelectrical rotating cylinder as mechanical sensor subjected to pressure and thermal loads", Appl. Math. Mech.-Eng., 32(8), 997-1008.   DOI   ScienceOn