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      KCI등재 SCIE SCOPUS

      Thermoelastic interaction in functionally graded nanobeams subjected to time-dependent heat flux

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      https://www.riss.kr/link?id=A104818081

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      다국어 초록 (Multilingual Abstract)

      This paper investigates the vibration phenomenon of a nanobeam subjected to a time-dependent heat flux. Material properties of the nanobeam are assumed to be graded in the thickness direction according to a novel exponential distribution law in terms of the volume fractions of the metal and ceramic constituents. The upper surface of the functionally graded (FG) nanobeam is pure ceramic whereas the lower surface is pure metal. A nonlocal generalized thermoelasticity theory with dual-phase-lag (DPL) model is used to solve this problem. The theories of coupled thermoelasticity, generalized thermoelasticity with one relaxation time, and without energy dissipation can extracted as limited and special cases of the present model. An analytical technique based on Laplace transform is used to calculate the variation of deflection and temperature. The inverse of Laplace transforms are computed numerically using Fourier expansion techniques. The effects of the phase-lags (PLs), nonlocal parameter and the angular frequency of oscillation of the heat flux on the lateral vibration, the temperature, and the axial displacement of the nanobeam are studied.
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      This paper investigates the vibration phenomenon of a nanobeam subjected to a time-dependent heat flux. Material properties of the nanobeam are assumed to be graded in the thickness direction according to a novel exponential distribution law in terms ...

      This paper investigates the vibration phenomenon of a nanobeam subjected to a time-dependent heat flux. Material properties of the nanobeam are assumed to be graded in the thickness direction according to a novel exponential distribution law in terms of the volume fractions of the metal and ceramic constituents. The upper surface of the functionally graded (FG) nanobeam is pure ceramic whereas the lower surface is pure metal. A nonlocal generalized thermoelasticity theory with dual-phase-lag (DPL) model is used to solve this problem. The theories of coupled thermoelasticity, generalized thermoelasticity with one relaxation time, and without energy dissipation can extracted as limited and special cases of the present model. An analytical technique based on Laplace transform is used to calculate the variation of deflection and temperature. The inverse of Laplace transforms are computed numerically using Fourier expansion techniques. The effects of the phase-lags (PLs), nonlocal parameter and the angular frequency of oscillation of the heat flux on the lateral vibration, the temperature, and the axial displacement of the nanobeam are studied.

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      참고문헌 (Reference)

      1 Zenkour, A.M., "Vibration of FG nanobeams induced by sinusoidal pulse heating via a nonlocal thermoelastic model" 225 (225): 3409-3421, 2014

      2 Ching, H.K., "Transient thermoelastic deformations of 2-D functionally graded beams under nonuniformly convective heat supply" 73 (73): 381-393, 2006

      3 Green, A.E., "Thermoelasticity without energy dissipation" 31 (31): 189-209, 1993

      4 Biot, M., "Thermoelasticity and irreversible thermodynamics" 27 : 240-253, 1956

      5 Green, A.E., "Thermoelasticity" 2 (2): 1-7, 1972

      6 Ashraf M. Zenkour, "The effect of two temperatures on a FG nanobeam induced by a sinusoidal pulse heating" 국제구조공학회 51 (51): 199-214, 2014

      7 Wang, Q., "The constitutive relation and small scale parameter of nonlocal continuum mechanics for modelling carbon nanotubes" 18 (18): 075702-, 2007

      8 Müller, I., "The coldness, a universal function in thermo-elastic solids" 41 (41): 319-332, 1971

      9 Zenkour, A. M., "Steady-state thermoelastic analysis of a functionally graded rotating annular disk" 6 (6): 1-16, 2006

      10 Prasad, R., "Propagation of harmonic plane waves under thermoelasticity with dual-phase-lags" 48 (48): 2028-2043, 2010

      1 Zenkour, A.M., "Vibration of FG nanobeams induced by sinusoidal pulse heating via a nonlocal thermoelastic model" 225 (225): 3409-3421, 2014

      2 Ching, H.K., "Transient thermoelastic deformations of 2-D functionally graded beams under nonuniformly convective heat supply" 73 (73): 381-393, 2006

      3 Green, A.E., "Thermoelasticity without energy dissipation" 31 (31): 189-209, 1993

      4 Biot, M., "Thermoelasticity and irreversible thermodynamics" 27 : 240-253, 1956

      5 Green, A.E., "Thermoelasticity" 2 (2): 1-7, 1972

      6 Ashraf M. Zenkour, "The effect of two temperatures on a FG nanobeam induced by a sinusoidal pulse heating" 국제구조공학회 51 (51): 199-214, 2014

      7 Wang, Q., "The constitutive relation and small scale parameter of nonlocal continuum mechanics for modelling carbon nanotubes" 18 (18): 075702-, 2007

      8 Müller, I., "The coldness, a universal function in thermo-elastic solids" 41 (41): 319-332, 1971

      9 Zenkour, A. M., "Steady-state thermoelastic analysis of a functionally graded rotating annular disk" 6 (6): 1-16, 2006

      10 Prasad, R., "Propagation of harmonic plane waves under thermoelasticity with dual-phase-lags" 48 (48): 2028-2043, 2010

      11 Mukhopadhyay, S., "On the theory of two-temperature thermoelasticity with two phase-lags" 34 (34): 352-365, 2011

      12 Zenkour, A. M., "On the magneto-thermo-elastic responses of FG annular sandwich disks" 75 : 54-66, 2014

      13 Green, A., "On the entropy production inequality" 45 (45): 47-53, 1972

      14 Eringen, A.C., "On nonlocal elasticity" 10 (10): 233-248, 1972

      15 Eringen, A. C., "On differential equations of nonlocal elasticity and solutions of screw dislocation and surface waves" 54 (54): 4703-4710, 1983

      16 Eringen, A. C., "Nonlocal polar elastic continua" 10 (10): 1-16, 1972

      17 Abbas, I.A., "LS model on electro-magneto-thermo-elastic response of an infinite functionally graded cylinder" 96 : 89-96, 2013

      18 Tzou, D. Y., "Experimental support for the Lagging behavior in heat propagation" 9 (9): 686-693, 1995

      19 Prasad, R., "Effects of phase lags on wave propagation in an infinite solid due to a continuous line heat source" 217 (217): 243-256, 2011

      20 Zenkour, A.M., "Effect of harmonically varying heat on FG nanobeams in the context of a nonlocal two-temperature thermoelasticity theory" 23 (23): 1-14, 2014

      21 Malekzadeh, P., "Dynamic response of functionally graded beams under moving heat source" 20 (20): 803-814, 2014

      22 Al-Huniti, N. S., "Dynamic response of a rod due to a moving heat source under the hyperbolic heat conduction model" 242 (242): 629-640, 2001

      23 Kidawa-Kukla, J., "Application of the Green functions to the problem of the thermally induced vibration of a beam" 262 (262): 865-876, 2003

      24 Fang, D. N., "Analysis of frequency spectrum of laser-induced vibration of microbeam resonators" 23 : 1554-1557, 2006

      25 Mareishi, S., "An analytical study on thermally induced vibration analysis of FG beams using different HSDTs" 249-250 : 784-791, 2013

      26 Tzou, D. Y., "A unified field approach for heat conduction from macro- to micro-scales" 117 (117): 8-16, 1995

      27 Lord, H.W., "A generalized dynamical theory of thermoelasticity" 15 (15): 299-309, 1967

      28 Tzou, D. Y., "-to-Microscale Heat Transfer: The Lagging Behavior" Taylor & Francis 1996

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