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      Buckling and Vibration Analysis of Tapered Circular Nano Plate

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          Abstract

          In this paper, buckling and free vibration analysis of a circular tapered nanoplate subjected to in-plane forces were studied. The linear variation of the plate thickness was considered in radial direction. Nonlocal elasticity theory was employed to capture size-dependent effects. The Raleigh-Ritz method and differential transform method were utilized to obtain the frequency equations for simply supported and clamped boundary conditions. To verify the accuracy of the Ritz method, the differential transform method (DTM) was also used to drive the size-dependent natural frequencies of circular nanoplates. Both methods reported good results. The validity of solutions was performed by comparing the present results with those of the literature for both classical plate and nanoplate. The effects of nonlocal parameter, mode number, and taper parameter on the natural frequency were investigated. The results showed that increasing the taper parameter causes increasing of buckling load and natural frequencies, and its effects on the clamped boundary condition is more than the simply support.

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          Author and article information

          Journal
          Journal of Applied and Computational Mechanics
          Shahid Chamran University of Ahvaz
          01 January 2018
          : 4
          : 1
          : 40-54
          Affiliations
          [1 ] Tarbiat Modares University
          [2 ] Department of Mechanical Engineering, Khatam Al Anbia Air Defense University, Tehran, Iran
          Article
          d3b7164b5e3c4a779a57f4d6fb22572d
          10.22055/jacm.2017.22176.1127
          d3aea4ab-75da-413c-a24a-d2b78180255e

          This work is licensed under a Creative Commons Attribution Non Commercial 4.0 Unported License. To view a copy of this license, visit http://creativecommons.org/licenses/by-nc/4.0/legalcode

          History
          Categories
          Mechanics of engineering. Applied mechanics
          TA349-359

          Chaos, fractals & dynamical systems,Engineering,Nanotechnology,Sensor materials,Mechanical engineering,Renewable energy
          nonlocal theory,axisymmetric vibration analysis,Differential transform method,variable thickness plate,Ritz method

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