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Research Article

Response of thermal-optical-elastic waves of a rotator microstretch semiconductor media during photothermal transport processes

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Received 22 Mar 2021, Accepted 01 Mar 2022, Published online: 21 Mar 2022

References

  • Misra JC, Chattopadhyay NC, Samanta SC. Study of the thermoelastic interactions in an elastic half space subjected to a ramp-type heating—a state-space approach. Int J Eng Sci. 1996;34(5):579–596.
  • Eringen AC. Linear theory of micropolar elasticity. J Math Mech. 1966: 909–923.
  • Eringen AC. Theory of thermo-microstretch elastic solids. Int J Eng Sci. 1990;28(12):1291–1301.
  • Singh B. Reflection and refraction of plane waves at a liquid/thermo-microstretch elastic solid interface. Int J Eng Sci. 2001;39(5):583–598.
  • Othman M, Lotfy K. The influence of gravity on 2-D problem of two temperature generalized thermoelastic medium with thermal relaxation. J Comput Theor Nanosci. 2015;12:2587–2600.
  • De Cicco S, Nappa L. On the theory of thermomicrostretch elastic solids. J Therm Stress. 1999;22(6):565–580.
  • Othman MIA, Lotfy K. On the plane waves of generalized thermo-microstretch elastic half-space under three theories. Int Comm Heat Mass Trans. 2010;37(2):192–200.
  • Lotfy K, Abo-Dahab SM. Two-dimensional problem of two temperature generalized thermoelasticity with normal mode analysis under thermal shock problem. J Comput Theor Nanosci. 2015;12(8):1709–1719.
  • Othman M, Lotfy K. Effect of rotating on plane waves in generalized thermo-microstretch elastic solid with one relaxation time. Multidiscip Model Mater Struct. 2011;7(1):43–62.
  • Ramesh GK, Prasannakumara BC, Gireesha BJ, et al. Casson fluid flow near the stagnation point over a stretching sheet with variable thickness and radiation. J Appl Fluid Mech. 2016;9(3):1115–1022.
  • Ezzat MA, Abd-Elaal MZ. Free convection effects on a viscoelastic boundary layer flow with one relaxation time through a porous medium. J Franklin Inst. 1997;334(4):685–706.
  • Ezzat MA, Abd-Elaal MZ. State space approach to viscoelastic fluid flow of hydromagnetic fluctuating boundary-layer through a porous medium. Z Angew Math Mech. 1997;77:197–207.
  • Ezzat MA. Free convection effects on perfectly conducting fluid. Int J Eng Sci. 2001;39(7):799–819.
  • Carrera E, Valvano S. A variable ESL/LW kinematic plate formulation for free-vibration thermoelastic analysis of laminated structures. J Therm Stresses. 2019;42(4):452–474.
  • Carrera E, Valvano S. A variable kinematic shell formulation applied to thermal stress of laminated structures. J Therm Stresses. 2017;40(7):803–827.
  • Cinefra M, Valvano S, Carrera E. Thermal stress analysis of laminated structures by a variable kinematic MITC9 shell element. J Therm Stresses. 2016;39(2):121–141.
  • Cinefra M, Valvano S, Carrera E. Heat conduction and thermal stress analysis of laminated composites by a variable kinematic MITC9 shell element. Curved Layer Struct. 2015;2:301–320.
  • Tam AC. Ultrasensitive laser spectroscopy. New York: Academic Press; 1983. p. 1–108.
  • Tam AC. Applications of photoacoustic sensing techniques. Rev Mod Phys. 1986;58:381.
  • Tam AC. Photothermal investigations in solids and fluids. Boston (MA): Academic Press; 1989. pp. 1–33.
  • Hobinya A, Abbas I. A GN model on photothermal interactions in a two-dimensions semiconductor half space. Results Phys. 2019;15:102588.
  • Todorovic DM, Nikolic PM, Bojicic AI. Photoacoustic frequency transmission technique: electronic deformation mechanism in semiconductors. J Appl Phys. 1999;85(11):7716–7726.
  • Song Y, Todorovic DM, Cretin B, et al. Study on the generalized thermoelastic vibration of the optically excited semiconducting microcantilevers. Int J Solids Struct. 2010;47(14-15):1871–1875.
  • Lotfy K. The elastic wave motions for a photothermal medium of a dual-phase-lag model with an internal heat source and gravitational field. Can J Phys. 2016;94(4):400–409.
  • Lotfy K. A novel model of photothermal diffusion (PTD) fo polymer nano- composite semiconducting of thin circular plate. Phys B: Condens Matter. 2018;537:320–328.
  • Lotfy K, Kumar R, Hassan W, et al. Thermomagnetic effect with microtemperature in a semiconducting photothermal excitation medium. Appl Math Mech Engl Ed. 2018;39(6):783–796.
  • Lotfy K, Gabr M. Response of a semiconducting infinite medium under two temperature theory with photothermal excitation due to laser pulses. Opt Laser Technol. 2017;97:198–208.
  • Lotfy K. Photothermal waves for two temperature with a semiconducting medium under using a dual-phase-lag model and hydrostatic initial stress. Waves Random Complex Media. 2017;27(3):482–501.
  • Lotfy K. A novel model for photothermal excitation of variable thermal conductivity semiconductor elastic medium subjected to mechanical ramp type with two-temperature theory and magnetic field. Sci Rep. 2019;9:ID 3319. DOI:https://doi.org/10.1038/s41598-019-39955-z
  • Lotfy K. Effect of variable thermal conductivity during the photothermal diffusion process of semiconductor medium. Silicon. 2019;11:1863–1873.
  • Abbas IA, Alzahranib FS, Elaiwb A. A DPL model of photothermal interaction in a semiconductor material. Waves Random Complex Media. 2019;29:328–343.
  • Khamis A, El-Bary A, Lotfy K, et al. Photothermal excitation processes with refined multi dual phase-lags theory for semiconductor elastic medium, alex. Eng J. 2020;59(1):1–9.
  • Lotfy K, El-Bary A, El-Sharif A. Ramp-type heating micro-temperature for a rotator semiconducting material during photo-excited processes with magnetic field. Results Phys. 2020;19:103338.
  • Lotfy K. Effect of variable thermal conductivity and rotation of semiconductor elastic medium through two-temperature photothermal excitation. Waves Random Complex Media. 2019.
  • Lotfy K, Tantawi RS, Anwer N. Response of semiconductor medium of variable thermal conductivity due to laser pulses with two-temperature through photothermal process. Silicon. 2019;11:2719–2730.
  • Yasein M, Mabrouk N, Lotfy K, et al. The influence of variable thermal conductivity of semiconductor elastic medium during photothermal excitation subjected to thermal ramp type. Results Phys. 2019;15:102766.
  • Mondal S, Sur A. Photo-thermo-elastic wave propagation in an orthotropic semiconductor with a spherical cavity and memory responses. Waves Random Complex Media. 2020. DOI:https://doi.org/10.1080/17455030.2019.1705426
  • Ezzat M. Hyperbolic thermal-plasma wave propagation in semiconductor of organic material. Waves Random Complex Media. 2020.
  • Ezzat M. A novel model of fractional thermal and plasma transfer within a non-metallic plate. Smart Struct Syst. 2021;27(1):73–87.
  • Huang X, Zhu Y, Vafaei P, et al. An iterative simulation algorithm for large oscillation of the applicable 2D-electrical system on a complex nonlinear substrate. Eng Comput. 2021. DOI:https://doi.org/10.1007/s00366-021-01320-y
  • Zhao Y, Moradi Z, Davoudi M, et al. Bending and stress responses of the hybrid axisymmetric system via state-space method and 3D-elasticity theory. Eng Comput. 2021. DOI:https://doi.org/10.1007/s00366-020-01242-1
  • Ma L, Liu X, Moradi Z. On the chaotic behavior of graphene-reinforced annular systems under harmonic excitation. Eng Comput. 2021. DOI:https://doi.org/10.1007/s00366-020-01210-9
  • Huang X, Zhang Y, Moradi Z, et al. Computer simulation via a couple of homotopy perturbation methods and the generalized differential quadrature method for nonlinear vibration of functionally graded non-uniform micro-tube. Eng Comput. 2021. DOI:https://doi.org/10.1007/s00366-021-01395-7
  • Jiao J, Ghoreishi S, Moradi Z, et al. Coupled particle swarm optimization method with genetic algorithm for the static–dynamic performance of the magneto-electro-elastic nanosystem. Eng Comput. 2021. DOI:https://doi.org/10.1007/s00366-021-01391-x
  • Moradi Z, Davoudi M, Ebrahimi F, et al. Intelligent wave dispersion control of an inhomogeneous micro-shell using a proportional-derivative smart controller. Waves Random Complex Media. 2021. DOI:https://doi.org/10.1080/17455030.2021.1926572
  • Xu W, Pan G, Moradi Z, et al. Nonlinear forced vibration analysis of functionally graded non-uniform cylindrical microbeams applying the semi-analytical solution. Compos Struct. 2021;275:114395.
  • Liu Y, Wang W, He T, et al. On the modelling of the vibration behaviors via discrete singular convolution method for a high-order sector annular system. Eng Comput. 2021. DOI:https://doi.org/10.1007/s00366-021-01454-z
  • Yu X, Maalla A, Moradi Z. Electroelastic high-order computational continuum strategy for critical voltage and frequency of piezoelectric NEMS via modified multi-physical couple stress theory. Mech Syst Signal Process. 2022;165:108373.
  • Kaur I, Lata P, Singh K. Forced flexural vibrations in a thin nonlocal rectangular plate with Kirchhoff’s thin plate theory. Int J Struct Stab. 2020;20(9):2050107.
  • Kaur I, Lata P, Singh K. Study of transversely isotropic nonlocal thermoelastic thin nano-beam resonators with multi-dual-phase-lag theory. Arch Appl Mech. 2021;91:317–341.
  • Lata P. Thermomechanical interactions in a non local thermoelastic model with two temperature and memory dependent derivatives. Coupled Syst Mech. 2020;9(5):397–410.
  • Kaur I, Lata P, Singh K. Memory-dependent derivative approach on magneto-thermoelastic transversely isotropic medium with two temperatures. Int J Mech Mater Eng. 2020;15(10). DOI:https://doi.org/10.1186/s40712-020-00122-2
  • Kaur I, Lata P, Singh K. Thermomechanical deformation in a transversely isotropic magneto-thermoelastic rotating solids under initial stress. Partial Differ Equ Appl Math. 2021;3:100028. DOI:https://doi.org/10.1016/j.padiff.2021.100028
  • Lata P, Himanshi Y. Orthotropic magneto-thermoelastic solid with multi-dualphase-lag model and Hall current. Coupled Syst Mech. 2021;10(2):103–121.
  • Lata P, Harpreet K. Deformation in a homogeneous isotropic thermoelastic solid with multi-dual-phase-lag heat & two temperature using modified couple stress theory. Sci Eng Compos. 2021;3(2):89–106.
  • Lord HW, Shulman Y. A generalized dynamical theory of thermoelasticity. J Mech Phys Solid. 1967;15:299–309.
  • Kreuzer LB. Ultralow gas concentration infrared absorption spectroscopy. J Appl Phys. 1971;42:2934–2943.
  • Green AE, Lindsay KA. Thermoelasticity. J Elast. 1972;2:1–7.
  • Biot MA. Thermoelasticity and irreversible thermodynamics. J Appl Phys. 1956;27:240–253.
  • Deresiewicz H. Plane waves in a thermoelastic solid. J Acoust Soc Am. 1957;29:204–209.
  • Chadwick P, Sneddon IN. Plane waves in an elastic solid conducting heat. J Mech Phys Solids. 1958;6:223–230.
  • Chadwick P. Thermoelasticity: the dynamic theory. In: Hill R, Sneddon IN, editors. Progress in solid mechanics. Amsterdam: North-Holland; 1960. p. 263–328.
  • Mandelis A, Nestoros M, Christofides C. Thermoelectronic-wave coupling in laser photothermal theory of semiconductors at elevated temperatures. Opt Eng. 1997;36(2):459–468.
  • Lotfy K, Abo-Dahab SM, Tantawi R, et al. Thermomechanical response model of a reflection photo thermal diffusion waves (RPTD) for semiconductor medium. Silicon. 2020;12(1):199–209.
  • Lotfy K, Hassan W, El-Bary AA, et al. Response of electromagnetic and thomson effect of semiconductor mediu due to laser pulses and thermal memories during photothermal excitation. Results Phys. 2020;16:102877.
  • Gordon JP, Leite RCC, Moore RS, et al. Long-transient effects in lasers with inserted liquid samples. Bull Am Phys Soc. 1964;119:501–510.

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