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| # | Type | Title | Author | Publisher | Pub. Year | Subjects | Call Number |
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| 1 | مقاله | Non-polynomial framework for bending responses of the multi-scale hybrid laminated nanocomposite reinforced circular/annular plate | He, X. | Elsevier Ltd, | 2021 |
Bending (forming)
Boundary conditions. Carbon nanotubes. Differentiation (calculus) Elasticity. Epoxy resins. Laminated composites. Laminating. Plates (structural components) Polynomials. Reinforcement. Yarn. 3d-elasticity theory. Bending. Bending response. Circular/Annular plate. Multi-scale hybrid laminated nanocomposite reinforced circular/annular plate. Multi-scales. Non-polynomial framework. Singular points. Three phase. Three phasis. Nanocomposites. |
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| 2 | مقاله | On the nonlinear dynamics of a multi-scale hybrid nanocomposite disk | Safarpour, M. | Springer, | 2020 |
Multi-scale hybrid nanocomposites.
Nonlinear frequency characteristics. Nonlinear temperature gradient. Perturbation method. Uncertainty analysis. Von Karman-type geometry nonlinearity. Axial loads. Carbon nanotubes. Differentiation (calculus) Dynamic response. Equations of motion. Nanocomposites. Plates (structural components) Reinforced plastics. Reinforcement. Shear deformation. Thermal gradients. Hybrid nanocomposites. Nonlinear frequency. Von Karman. Perturbation techniques. |
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| 3 | مقاله | On the nonlinear dynamics of a multi-scale hybrid nanocomposite disk | Safarpour, M. | Springer Science and Business Media Deutschland GmbH, | 2021 |
Axial loads.
Carbon nanotubes. Differentiation (calculus) Dynamic response. Equations of motion. Nanocomposites. Plates (structural components) Reinforced plastics. Reinforcement. Shear deformation. Thermal gradients. Uncertainty analysis. Hybrid nanocomposites. Nonlinear frequency. Nonlinear temperature gradient. Perturbation method. Von Karman. Perturbation techniques. |
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| 4 | مقاله | Buckling and frequency responses of a graphene nanoplatelet reinforced composite microdisk | Moayedi, H. | World Scientific Publishing Co. Pte Ltd, | 2019 |
Buckling.
Frequency characteristics. GDQM. GPLRC. Microdisk. Elasticity. Frequency response. Graphene. Numerical methods. Scales (weighing instruments) Structural design. Thermal expansion. Vibration analysis. Frequency characteristic. Microdisks. NSGT. Graphene Nanoplatelets. |
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| 5 | مقاله | Frequency characteristics of FG-GPLRC viscoelastic thick annular plate with the aid of GDQM | Safarpour, M. | Elsevier Ltd, | 2020 |
FG-GPLRC.
Frequency characteristics. Non-linear temperature gradient. Viscoelastic materials. Differentiation (calculus) Frequency response. Numerical methods. Runge Kutta methods. Shear deformation. Thermal gradients. Uncertainty analysis. Vibration analysis. Viscoelasticity. Frequency characteristic. Generalized differential quadrature methods. Higher order shear deformation theory. Non linear. Nonlinear temperature gradient. Visco-elastic material. Plates (structural components) |
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| 6 | مقاله | Extremely large oscillation and nonlinear frequency of a multi-scale hybrid disk resting on nonlinear elastic foundation | Shariati, A. | Elsevier Ltd, | 2020 |
Multi-sized hybrid nano-composites.
Nonlinear free and forced vibration. Perturbation approach. Von karman nonlinearity. Carbon nanotubes. Differentiation (calculus) Equations of motion. Nanocomposites. Shear deformation. Generalized differential quadrature methods. Hybrid nanocomposites. Non-linear vibrations. Non-linearity parameter. Nonlinear elastic foundation. Third-order shear deformation theory. Vibrations (mechanical) |
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| 7 | مقاله | On modeling of wave propagation in a thermally affected GNP-reinforced imperfect nanocomposite shell | Ebrahimi, F. | Springer London, | 2019 |
GNPRC.
Porosity. Wave propagation. Angular distribution. Continuum mechanics. Nanoshells. Nanostructured materials. Phase velocity. Reinforcement. Velocity. Cylindrical nanoshell. Engineering applications. NSGT. Porosity distributions. Strain gradient theory. Thermal characteristics. Thermal environment. Laminated composites. |
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| 8 | مقاله | Correction to: Wave propagation characteristics of the electrically GNP-reinforced nanocomposite cylindrical shell (Journal of the Brazilian Society of Mechanical Sciences and Engineering, (2019), 41, 5, (221), 10.1007/s40430-019-1715-x) | Habibi, M. | Springer Verlag, | 2019 |
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| 9 | مقاله | Wave propagation characteristics of the electrically GNP-reinforced nanocomposite cylindrical shell | Habibi, M. | Springer Verlag, | 2019 |
Applied voltage.
Graphene nanoplatelet. Maxwell equation. NSGT. Piezoelectric actuator. Wave propagation. Continuum mechanics. Cylinders (shapes) Graphene. Maxwell equations. Nanocomposites. Nanoshells. Phase velocity. Piezoelectricity. Reinforcement. Shells (structures) Structural health monitoring. Ultrasonic testing. Applied voltages. Nanoplatelet. Reinforced nanocomposite. Strain gradient theory. Ultrasonic inspections. Viscoelastic foundation. Wave propagation characteristics. Piezoelectric actuators. |
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| 10 | مقاله | Influence of spring-mass systems on frequency behavior and critical voltage of a high-speed rotating cantilever cylindrical three-dimensional shell coupled with piezoelectric actuator | Safarpour, H. | SAGE Publications Inc, | 2019 |
Cantilever cylindrical thick shell.
Piezoelectric layer. Spinning. Spring-mass systems. Various thermal loading. Angular velocity. Boundary conditions. Differentiation (calculus) Equations of motion. Metal spinning. Nanocantilevers. Natural frequencies. Piezoelectric actuators. Piezoelectricity. Potential energy. Critical angular speed. Electromechanical systems. Generalized differential quadrature methods. Minimum total potential energies. Piezoelectric layers. Spring-mass system. Thermal loadings. Thick shells. Shells (structures) |
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| 11 | مقاله | A size-dependent exact theory for thermal buckling, free and forced vibration analysis of temperature dependent FG multilayer GPLRC composite nanostructures restring on elastic foundation | Safarpour, H. | 2018 |
Graphene nanoplatelet.
Modified couple stress parameter. Multilayer cylindrical nanoshell. Graphene. Multilayers. Nanoshells. Nanostructured materials. Natural frequencies. Reinforcement. Analytical method. Elastic foundation. Forced vibration. Modified couple stress. Nanoplatelet. Thermal buckling. Vibration analysis. |
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| 12 | مقاله | A size-dependent exact theory for thermal buckling, free and forced vibration analysis of temperature dependent FG multilayer GPLRC composite nanostructures restring on elastic foundation | Safarpour, H. | Springer Netherlands, | 2019 |
Analytical method.
Elastic foundation. Forced vibration. Graphene nanoplatelet. Modified couple stress parameter. Multilayer cylindrical nanoshell. Thermal buckling. Graphene. Multilayers. Nanoshells. Nanostructured materials. Natural frequencies. Reinforcement. Analytical method. Modified couple stress. Nanoplatelet. Vibration analysis. |
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| 13 | مقاله | Application of exact continuum size-dependent theory for stability and frequency analysis of a curved cantilevered microtubule by considering viscoelastic properties | Shariati, A. | Springer, | 2020 |
Cantilevered curved microtubule.
GDQM. MAP tau protein. Modified couple stress theory. Differentiation (calculus) Frequency response. Comparison with experiments. Elastic medium. Frequency Analysis. Generalized differential quadrature methods. Modified couple stress theories. Stability analysis. Time dependent viscoelastic. Viscoelastic properties. Viscoelasticity. |
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| 14 | مقاله | Application of exact continuum size-dependent theory for stability and frequency analysis of a curved cantilevered microtubule by considering viscoelastic properties | Shariati, A. | Springer Science and Business Media Deutschland GmbH, | 2021 |
Cytology.
Differentiation (calculus) Frequency response. Comparison with experiments. Elastic medium. Frequency Analysis. Generalized differential quadrature methods. Modified couple stress theories. Stability analysis. Time dependent viscoelastic. Viscoelastic properties. Viscoelasticity. |
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| 15 | مقاله | Buckling and frequency analysis of the nonlocal strain–stress gradient shell reinforced with graphene nanoplatelets | Mohammadgholiha, M. | SAGE Publications Inc, | 2019 |
Generalized differential quadrature method.
Natural frequency. Nonlocal stress–strain gradient theory. Boundary conditions. Differentiation (calculus) Graphene. Nanoshells. Nanostructured materials. Natural frequencies. Reinforcement. Scales (weighing instruments) Distribution patterns. Generalized differential quadrature methods. Graphene nanoplatelets. Length scale parameter. Reinforced composites. Strain gradient theory. Thickness direction. Various boundary conditions. Buckling. |
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| 16 | مقاله | Thermal buckling and forced vibration characteristics of a porous GNP reinforced nanocomposite cylindrical shell | Ebrahimi, F. | Springer, | 2020 |
MEMS.
Nanoshells. Nanostructured materials. Natural frequencies. NEMS. Porosity. Reinforcement. Vibration analysis. Graphene nanoplatelets. Micro electro mechanical system. Modified couple stress. Modified couple stress theories. Nano electromechanical systems. Reinforced nanocomposite. Resonance frequencies. Size-dependent effect. Buckling. |
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| 17 | مقاله | Effect of porosity on buckling and vibrational characteristics of the imperfect GPLRC composite nanoshell | Habibi, M. | Bellwether Publishing, Ltd, | 2021 |
Buckling.
Composite materials. Differentiation (calculus) Graphene. Nanoshells. Natural frequencies. Porosity. Reinforcement. Scales (weighing instruments) Temperature. Critical loading. Critical temperatures. Distribution patterns. Generalized differential quadrature methods. Graphene platelets. Length scale parameter. Manufacturing process. Reinforced composites. Nanostructured materials. |
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| 18 | مقاله | Flutter analysis of multi-directional functionally graded sector poroelastic disks | Tang, J. | Elsevier Masson s.r.l, | 2023 |
Flutter phenomenon.
MD-FG. Poroelastic system. Sector disk. Supersonic airflow. |
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| 19 | مقاله | Buckling and vibration characteristics of a carbon nanotube-reinforced spinning cantilever cylindrical 3D shell conveying viscous fluid flow and carrying spring-mass systems under various temperature distributions | Ebrahimi, F. | SAGE Publications Ltd, | 2019 |
Cantilever cylindrical thick shell.
Carbon nanotube reinforcement. Nonlinear thermal loading. Spinning. Spring–mass systems. Metal spinning. Nanocantilevers. Reinforcement. Shells (structures) Temperature distribution. Viscosity. Viscous flow. Yarn. Carbon nanotube reinforcements. Mass systems. Thermal loadings. Thick shells. Viscous fluid flow. Carbon nanotubes. |
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| 20 | مقاله | Buckling and vibration analysis of FG-CNTRC plate subjected to thermo-mechanical load based on higher order shear deformation theory | Cheshmeh, E. | Taylor and Francis Inc, | 2020 |
Buckling.
Carbon nanotube. Differential quadrature method. Free vibration. Aspect ratio. Boundary conditions. Equations of motion. Plates (structural components) Shear deformation. Volume fraction. Higher order shear deformation theory. Non-dimensional fundamental frequency. Numerical results. Parametric -analysis. Rectangular plates. Sinusoidal temperature. Thermo mechanical loads. Vibrational behavior. Vibration analysis. |
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