Buckling analysis and dynamic response of FGM sandwich cylindrical panels in thermal environments using nonlocal strain gradient theory

被引:0
|
作者
Do Quang Chan
Tran Quoc Quan
Bui Gia Phi
Dang Van Hieu
Nguyen Dinh Duc
机构
[1] Phenikaa University,Faculty of Mechanical Engineering and Mechatronics
[2] A&A Green Phoenix Group JSC,PHENIKAA Research and Technology Institute (PRATI)
[3] No. 167 Hoang Ngan,Phenikaa Institute for Advanced Study (PIAS)
[4] Trung Hoa,Departemnt of Engineering and Technology in Constructions and Transportation
[5] Cau Giay,undefined
[6] Phenikaa University,undefined
[7] University of Transport Technology,undefined
[8] Thainguyen University of Technology,undefined
[9] VNU Hanoi - University of Engineering and Technology,undefined
来源
Acta Mechanica | 2022年 / 233卷
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摘要
The present paper provides an analysis to obtain the critical buckling load and vibration frequencies of the sandwich cylindrical panel with functionally graded (FG) face sheets and FG porous core resting on an elastic foundation, subjected to mechanical load and in thermal environments. The panel is formulated within the framework of the nonlocal strain gradient theory for shell model and classical shell theory. Based on Hamilton’s principle and Galerkin’s method, the effects of nonlocal and strain gradient parameters, materials and geometrical characteristics, porosity, temperature and elastic foundation on buckling load, fundamental frequencies, and dynamic response of the panel are considered.
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页码:2213 / 2235
页数:22
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