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Research on the dynamic buckling of functionally graded material plates under conditions of one edge fixed and three edges simply supported

机译:一边固定三边简支条件下功能梯度材料板的动态屈曲研究。

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Based on the strain assumption and linear mixing rate of Vogit, the physical property parameter expression of functionally graded material plates is obtained. According to the theory of small deformation and Hamilton principle, the dynamic buckling governing equation of functionally graded material plates under longitudinal load is obtained. Using the method of trial function, the analytical expression of critical load and the buckling solution of the functionally graded material plate under conditions of one edge fixed and three edges simply supported is obtained. The analytical expression of critical load is numerically calculated by METLAB. The influence of geometric size, gradient index, modal order and material composition on critical load is discussed. The results show that the critical buckling load decreases exponentially with the increase of critical length, decreases with the increase of gradient index k, increases with the increase of modal order, and the elastic modulus of constituent materials has significant effect on the critical load. The higher-order buckling modes of functionally graded material plates are prone to occur under the condition of high longitudinal load.
机译:基于Vogit的应变假设和线性混合速率,获得功能梯度材料板的物理性能参数表达式。根据小变形理论和汉密尔顿原理,得到了功能梯度材料板在纵向载荷作用下的动态屈曲控制方程。利用试验函数法,得到了功能梯度材料板在一个边固定,三个边简单支撑的条件下的临界载荷和屈曲解的解析表达式。临界载荷的解析表达式由METLAB数值计算。讨论了几何尺寸,梯度指数,模态阶数和材料组成对临界载荷的影响。结果表明,临界屈曲载荷随临界长度的增加而呈指数下降,随梯度指数k的增加而减小,随模态阶数的增加而增大,且组成材料的弹性模量对临界载荷有显着影响。功能梯度材料板的高阶屈曲模式易于在高纵向载荷条件下发生。

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