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The effects of multi-directional functionally graded materials on the natural frequency of the doubly-curved nanoshells

机译:多向功能梯度材料对双弧形纳米型的自然频率的影响

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摘要

Up to now, no studies have been yet reported to study the mechanical behaviors of three dimensionally functionally graded (FG) shell structures. In this paper, the free vibration of three dimensionally FG nanoplates and nanoshells are investigated for the first time. All of the mechanical properties expect passion's ratio are assumed to be changed along the length, width and thickness directions, which can vary according to an arbitrary function. The small scale effect due to nanostructures is considered based on nonlocal Eringen's theory where Hamilton's principle is adopted to derive the equations of motion. Galerkin solution method is adopted to obtain the natural frequencies of the FG nanostructures. Dynamic results are reported for nanoplates, spherical nanoshells, and cylindrical nanoshells for simply supported boundary conditions. The influences of several parameters, such as nonlocal parameter and functionally graded indexes are investigated on the natural frequency of the nanostructures. The results of the presented study can be served as benchmarks for future mechanical analysis of three-dimensionally FG shell structures.
机译:到目前为止,尚未讨论任何研究来研究三维功能梯度(FG)壳体结构的机械行为。本文首次研究了三维FG纳米板和纳米液的自由振动。所有机械性能预期激情的比率被假定沿着长度,宽度和厚度方向改变,这可以根据任意函数而变化。基于非本体eringen的理论认为汉密尔顿原则被采用哈密尔顿的原则来衍生动议方程,由于纳米结构引起的小规模效应。采用Galerkin解方法来获得FG纳米结构的固有频率。报告了用于简单地支持边界条件的纳米板,球形纳米型和圆柱形纳米孔的动态结果。在纳米结构的固有频率上研究了几种参数的影响,例如非局部参数和功能梯度指标。所提出的研究的结果可以用作三维FG壳结构的未来机械分析的基准。

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