Nonlinear Buckling and Postbuckling Response of Porous FGM Shallow Spherical Caps and Circular Plates with Nonlinear Elastic Foundation Effects Using the Ritz Energy Method

IF 1.5 4区 材料科学 Q4 MATERIALS SCIENCE, COMPOSITES Mechanics of Composite Materials Pub Date : 2024-06-26 DOI:10.1007/s11029-024-10200-7
Bui Tien Tu, Dang Thuy Dong, Vu Minh Duc, Vu Hoai Nam
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Abstract

A new analytical study for nonlinear buckling and postbuckling behavior of porous functionally graded material (FGM) circular plates and shallow spherical caps resting on nonlinear elastic foundation was carried put using the nonlinear Reddy’s higher-order shear deformation theory (HSDT). The spherical caps/circular plates under thermo-mechanical loadings were considered, and the nonlinear elastic foundation was used to model the behavior of hardening and softening foundations. The total potential energy expressions of caps/plates were established, and the Ritz energy method was applied. The analytical expressions of load-deflection relationships were obtained. The critical buckling loads and postbuckling behavior of shells/plates were determined and analyzed. The remarkable influences of geometrical parameters, material parameters, and nonlinear foundation stiffnesses on the nonlinear static stability behavior of caps and circular plates were noted.

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使用里兹能量法计算具有非线性弹性地基效应的多孔 FGM 浅球形盖帽和圆形板的非线性屈曲和屈曲后响应
利用非线性雷迪高阶剪切变形理论(HSDT),对多孔功能梯度材料(FGM)圆板和浅球帽在非线性弹性地基上的非线性屈曲和后屈曲行为进行了新的分析研究。考虑了热机械载荷下的球帽/圆板,并使用非线性弹性地基模拟了硬化和软化地基的行为。建立了球帽/圆板的总势能表达式,并应用了 Ritz 能量法。得到了荷载-挠度关系的解析表达式。确定并分析了壳/板的临界屈曲载荷和屈曲后行为。指出了几何参数、材料参数和非线性地基刚度对壳和圆板非线性静力稳定性行为的显著影响。
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来源期刊
Mechanics of Composite Materials
Mechanics of Composite Materials 工程技术-材料科学:复合
CiteScore
2.90
自引率
17.60%
发文量
73
审稿时长
12 months
期刊介绍: Mechanics of Composite Materials is a peer-reviewed international journal that encourages publication of original experimental and theoretical research on the mechanical properties of composite materials and their constituents including, but not limited to: damage, failure, fatigue, and long-term strength; methods of optimum design of materials and structures; prediction of long-term properties and aging problems; nondestructive testing; mechanical aspects of technology; mechanics of nanocomposites; mechanics of biocomposites; composites in aerospace and wind-power engineering; composites in civil engineering and infrastructure and other composites applications.
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