Nonlinear finite element vibration analysis of double-walled carbon nanotubes based on Timoshenko beam theory

被引:9
作者
Ansari, Reza [1 ]
Hemmatnezhad, Milad [2 ]
机构
[1] Univ Guilan, Dept Mech Engn, Rasht, Iran
[2] Islamic Azad Univ, Takestan Branch, Fac Mech Engn, Takestan, Iran
关键词
Boundary conditions; carbon nanotubes; finite element method; large amplitude vibration; Timoshenko beam theory; WAVE-PROPAGATION; COMPOSITE BEAMS; STIFFNESS; MECHANICS; STRENGTH;
D O I
10.1177/1077546311429838
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
The large-amplitude free vibration analysis of double-walled carbon nanotubes embedded in an elastic medium is investigated by means of a finite element formulation. A double-beam model is utilized in which the governing equations of layers are coupled with each other via the van der Waals interlayer forces. The Von Karman type nonlinear strain-displacement relationships are employed where the ends of the nanotube are constrained to move axially. The effects of the transverse shear deformation and rotary inertia are included based upon the Timoshenko beam theory. A superconvergent beam element which devoid the shear locking effect with displacement fields based on the first order shear deformation theory is used to study the geometric nonlinear effects on the vibrational characteristics of these beam-modeled nanotubes. In this kind of beam element, the interpolating functions are obtained using the exact solution of the static analysis of the beam. The finite element method is employed to discretize the nonlinear governing equations, which are then solved by the direct numerical integration technique to obtain the nonlinear vibration frequencies of double-walled carbon nanotubes with different boundary conditions. The effects of material constant of the surrounding elastic medium and the geometric parameters on the vibrational behavior are investigated. For a double-walled carbon nanotube with different boundary conditions between inner and outer tubes, the nonlinear frequencies are obtained apparently for the first time. The present numerical results are validated by comparing the linear and nonlinear frequencies of double-walled carbon nanotubes with those available in the literature where possible. This comparison illustrates that the present scheme yields very accurate results in predicting the nonlinear frequencies.
引用
收藏
页码:75 / 85
页数:11
相关论文
共 43 条
[1]   Application of HPM to the Nonlinear Vibrations of Multiwalled Carbon Nanotubes [J].
Ansari, R. ;
Hemmatnezhad, M. ;
Ramezannezhad, H. .
NUMERICAL METHODS FOR PARTIAL DIFFERENTIAL EQUATIONS, 2010, 26 (02) :490-500
[2]  
Ansari R, 2011, NONLINEAR DYNAM, V00, P1
[3]   Evaluation of nonlocal parameter in the vibrations of single-walled carbon nanotubes with initial strain [J].
Arash, B. ;
Ansari, R. .
PHYSICA E-LOW-DIMENSIONAL SYSTEMS & NANOSTRUCTURES, 2010, 42 (08) :2058-2064
[4]   Carbon nanotube electronics [J].
Avouris, P ;
Appenzeller, J ;
Martel, R ;
Wind, SJ .
PROCEEDINGS OF THE IEEE, 2003, 91 (11) :1772-1784
[5]   Carbon nanotube actuators [J].
Baughman, RH ;
Cui, CX ;
Zakhidov, AA ;
Iqbal, Z ;
Barisci, JN ;
Spinks, GM ;
Wallace, GG ;
Mazzoldi, A ;
De Rossi, D ;
Rinzler, AG ;
Jaschinski, O ;
Roth, S ;
Kertesz, M .
SCIENCE, 1999, 284 (5418) :1340-1344
[6]   Carbon nanotubes - the route toward applications [J].
Baughman, RH ;
Zakhidov, AA ;
de Heer, WA .
SCIENCE, 2002, 297 (5582) :787-792
[7]   SOME OBSERVATIONS ON THE MODELING OF LAMINATED COMPOSITE BEAMS WITH GENERAL LAY-UPS [J].
BHIMARADDI, A ;
CHANDRASHEKHARA, K .
COMPOSITE STRUCTURES, 1991, 19 (04) :371-380
[8]   Poisson's contraction effects in a deep laminated composite beam [J].
Chakraborty, A ;
Gopalakrishnan, S .
MECHANICS OF ADVANCED MATERIALS AND STRUCTURES, 2003, 10 (03) :205-225
[9]   Finite element analysis of free vibration and wave propagation in asymmetric composite beams with structural discontinuities [J].
Chakraborty, A ;
Mahapatra, DR ;
Gopalakrishnan, S .
COMPOSITE STRUCTURES, 2002, 55 (01) :23-36
[10]   Aligned carbon nanotubes for nanoelectronics [J].
Choi, WB ;
Bae, E ;
Kang, D ;
Chae, S ;
Cheong, BH ;
Ko, JH ;
Lee, EM ;
Park, W .
NANOTECHNOLOGY, 2004, 15 (10) :S512-S516