Free vibration analysis and post-critical free vibrations of nanocomposite rotating beams reinforced with graphene platelet

Author:

Eyvazian Arameh12ORCID,Zhang Chunwei1,Musharavati Farayi3,Khan Afrasyab4,Alkhedher Mohammad5

Affiliation:

1. Structural Vibration Control Group, Qingdao University of Technology, Qingdao, China

2. Department of Mechanical Engineering, Politecnico di Milano (Technical University), Milan, Italy

3. Department of Mechanical and Industrial Engineering, College of Engineering, Qatar University, Doha, Qatar

4. Research Institute of Mechanical Engineering, Department of Vibration Testing and Equipment Condition Monitoring, South Ural State University, Chelyabinsk, Russian Federation

5. Mechanical engineering Department, Abu Dhabi University, Abu Dhabi, UAE

Abstract

Treatment of the first natural frequency of a rotating nanocomposite beam reinforced with graphene platelet is discussed here. In regard of the Timoshenko beam theory hypothesis, the motion equations are acquired. The effective elasticity modulus of the rotating nanocomposite beam is specified resorting to the Halpin–Tsai micro mechanical model. The Ritz technique is utilized for the sake of discretization of the nonlinear equations of motion. The first natural frequency of the rotating nanocomposite beam prior to the buckling instability and the associated post-critical natural frequency is computed by means of a powerful iteration scheme in reliance on the Newton–Raphson method alongside the iteration strategy. The impact of adding the graphene platelet to a rotating isotropic beam in thermal ambient is discussed in detail. The impression of support conditions, and the weight fraction and the dispersion type of the graphene platelet on the acquired outcomes are studied. It is elucidated that when a beam has not undergone a temperature increment, by reinforcing the beam with graphene platelet, the natural frequency is enhanced. However, when the beam is in a thermal environment, at low-to-medium range of rotational velocity, adding the graphene platelet diminishes the first natural frequency of a rotating O-GPL nanocomposite beam. Depending on the temperature, the post-critical natural frequency of a rotating X-GPL nanocomposite beam may be enhanced or reduced by the growth of the graphene platelet weight fraction.

Publisher

SAGE Publications

Subject

Mechanical Engineering,Mechanics of Materials,Aerospace Engineering,Automotive Engineering,General Materials Science

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