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      KCI등재후보 SCIE SCOPUS

      Large amplitude free torsional vibration analysis of size-dependent circular nanobars using elliptic functions

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      https://www.riss.kr/link?id=A107281787

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      다국어 초록 (Multilingual Abstract)

      This paper concerns with free torsional vibration analysis of size dependent circular nanobars with von kármán type nonlinearity. Although review of the literature suggests several studies employing nonlocal elasticity theory to investigate linear t...

      This paper concerns with free torsional vibration analysis of size dependent circular nanobars with von kármán type nonlinearity. Although review of the literature suggests several studies employing nonlocal elasticity theory to investigate linear torsional behavior, linear/nonlinear transverse vibration and buckling of the nanoscale structures, so far, no study on the nonlinear torsional behavior of the nanobars, considering the size effect, has been reported. This study employs nonlocal elasticity theory along with a variational approach to derive nonlinear equation of motion of the nanobar. Then, the nonlinear equation is solved using the elliptic functions to extract the natural frequencies of the structure under fixed-fixed and fixed-free end conditions. Finally, the natural frequencies of the nanobar under different nanobar lengths, diameters, nonlocal parameters, and amplitudes of vibration are reported to illustrate the effect of these parameters on the vibration characteristics of the nanobars. In addition, the phase plane diagrams of the nanobar for various cases are reported.

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      참고문헌 (Reference)

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      1 Dong, L., "Towards linear nano servomotors with integrated position sensing" 2005

      2 Arda, M., "Torsional wave propagation in multiwalled carbon nanotubes using nonlocal elasticity" 122 (122): 219-, 2016

      3 Islam, Z., "Torsional wave propagation and vibration of circular nanostructures based on nonlocal elasticity theory" 6 (6): 1450011-, 2014

      4 Yayli, M. Ö., "Torsional vibrations of restrained nanotubes using modified couple stress theory" 24 : 3425-3435, 2018

      5 El-Borgi, S., "Torsional vibration of size-dependent viscoelastic rods using nonlocal strain and velocity gradient theory" 186 : 274-292, 2018

      6 Rahmani, O., "Torsional vibration of cracked nanobeam based on nonlocal stress theory with various boundary conditions : an analytical study" 7 (7): 1550036-, 2015

      7 Murmu, T., "Torsional vibration of carbon nanotube-buckyball systems based on nonlocal elasticity theory" 43 (43): 1276-1280, 2011

      8 Yayli, M. Ö., "Torsional vibration analysis of nanorods with elastic torsional restraints using non-local elasticity theory" 13 (13): 595-599, 2018

      9 Aydogdu, M., "Torsional vibration analysis of double walled carbon nanotubes using nonlocal elasticity" 12 (12): 71-84, 2016

      10 Williams, P., "Torsional response and stiffening of individual multiwalled carbon nanotubes" 89 (89): 255502-, 2002

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      23 Nazemnezhad, R., "Nonlocal nonlinear free vibration of functionally graded nanobeams" 110 : 192-199, 2014

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      27 Süleyman M. Bağdatlı, "Non-linear transverse vibrations of tensioned nanobeams using nonlocal beam theory" 국제구조공학회 55 (55): 281-298, 2015

      28 Qiao, C., "Molecular dynamics simulation studies on the plastic behaviors of an iron nanowire under torsion" 6 (6): 28792-28800, 2016

      29 Setoodeh, A., "Linear and nonlinear torsional free vibration of functionally graded micro/nano-tubes based on modified couple stress theory" 37 (37): 725-740, 2016

      30 Thanh, C. L., "Isogeometric analysis of functionally graded carbon nanotube reinforced composite nanoplates using modified couple stress theory" 184 : 633-649, 2018

      31 Thanh, C. L., "Isogeometric analysis for size-dependent nonlinear thermal stability of porous FG microplates" 221 : 110838-, 2019

      32 Lim, C. W., "Free torsional vibration of nanotubes based on nonlocal stress theory" 331 (331): 2798-2808, 2012

      33 Nazemnezhad, R., "Free torsional vibration of cracked nanobeams incorporating surface energy effects" 38 (38): 217-230, 2017

      34 Reza Nazemnezhad, "Free axial vibration analysis of axially functionally graded thick nanorods using nonlocal Bishop's theory" 국제구조공학회 28 (28): 749-758, 2018

      35 Han, T., "Fabrication of graphene nanoplates modified with nickel nanoparticles for reinforcing copper matrix composites" 33 : 643-648, 2020

      36 Xu, B. X., "Fabrication and mechanism of α-FeSi2 nanobars on (001) silicon wafer" 59 (59): 833-837, 2005

      37 H.M. Berrabah, "Comparison of various refined nonlocal beam theories for bending, vibration and buckling analysis of nanobeams" 국제구조공학회 48 (48): 351-365, 2013

      38 S. C. Pradhan, "Analyses of tapered fgm beams with nonlocal theory" 국제구조공학회 32 (32): 811-833, 2009

      39 Azrar, L., "A semi-analytical approach to the non-linear dynamic response problem of beams at large vibration amplitudes, Part II : Multimode approach to the steady state forced periodic response" 255 (255): 1-41, 2002

      40 Thanh, C. L., "A refined size-dependent couple stress theory for laminated composite micro-plates using isogeometric analysis" 145 : 106427-, 2019

      41 Nguyen, H. X., "A refined quasi-3D isogeometric analysis for functionally graded microplates based on the modified couple stress theory" 313 : 904-940, 2017

      42 Lim, C., "A nonlocal finite element method for torsional statics and dynamics of circular nanostructures" 94 : 232-243, 2015

      43 Apuzzo, A., "A closed-form model for torsion of nanobeams with an enhanced nonlocal formulation" 108 : 315-324, 2017

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      2016 1.12 0.62 0.94
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
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