An intelligent computer method for vibration responses of the spinning multi-layer symmetric nanosystem using multi-physics modeling

被引:0
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作者
Jianli Guo
Abdolrahim Baharvand
Diana Tazeddinova
Mostafa Habibi
Hamed Safarpour
Angel Roco-Videla
Abdellatif Selmi
机构
[1] Huawei School of Technology,Shandong Provincial University Laboratory for Protected Horticulture
[2] Weifang University of Science and Technology,Department of Physics
[3] Weifang University of Science and Technology,Institute of Research and Development
[4] Lorestan University,Faculty of Electrical–Electronic Engineering
[5] South Ural State University,Center of Excellence in Design, Robotics, and Automation, Department of Mechanical Engineering
[6] Zhangir Khan West Kazakhstan Agrarian Technical University,Faculty of Engineering, Department of Mechanics
[7] Duy Tan University,Facultad de Ciencias de la Salud
[8] Duy Tan University,Departamento de Ingeniería Civil, Facultad de Ingeniería
[9] Sharif University of Technology,Department of Civil Engineering, College of Engineering
[10] Imam Khomeini International University,Civil Engineering Laboratory
[11] Programa Magister en Ciencias Químico-Biológicas,undefined
[12] Universidad Bernardo O’Higgins,undefined
[13] Universidad Católica de la Santísima Concepción,undefined
[14] Prince Sattam Bin Abdulaziz University,undefined
[15] Ecole Nationale d’Ingénieurs deTunis (ENIT),undefined
来源
关键词
Adaptive learning-rate optimization; Deep-learning; Laminated cantilevered nanodisk; Viscoelastic foundation; Rotation; Dynamic stability;
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摘要
This article is the first attempt to employ deep learning to estimate the frequency performance of the rotating multi-layer nanodisks. The optimum values of the parameters involved in the mechanism of the fully connected neural network are determined through the momentum-based optimizer. The strength of the method applied in this survey comes from the high accuracy besides lower epochs needed to train the multi-layered network. It should be mentioned that the current nanostructure is modeled as a nanodisk on the viscoelastic substrate. Due to rotation, the centrifugal and Coriolis effects are considered. Hamilton’s principle and generalized differential quadrature method (GDQM) are presented for obtaining and solving the governing equations of the high-speed rotating nanodisk on a viscoelastic substrate. The outcomes show that the number of layers viscoelastic foundation, angular velocity speed, angle of ply, nonlocal, and length-scale parameters have a considerable impact on the amplitude and vibration behavior of a laminated rotating cantilevered nanodisk. As an applicable result in related industries, in the initial value of radius ratio, damping of the foundation does not have any effect on the dynamics of the system, but when the outer radius is bigger enough, the effect of damping parameter on the frequency of the laminated nanostructure will be bold sharply.
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页码:4217 / 4238
页数:21
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