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首页> 外文期刊>Journal of vibration and control: JVC >Forced vibration of porous functionally graded nanoplates under uniform dynamic load using general nonlocal stress-strain gradient theory
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Forced vibration of porous functionally graded nanoplates under uniform dynamic load using general nonlocal stress-strain gradient theory

机译:均匀动态载荷在均匀动态载荷下的强制振动使用一般非局部应力 - 应变梯度理论

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摘要

Forced vibration analysis of porous functionally graded nanoplates under uniform dynamic loads is performed based on generalized nonlocal strain gradient theory. In this model, both stiffness-softening and stiffness-hardening effects are considered for more reliable forced vibration analysis of nanoplates. The present model is based on a vibrating higher order nanoscale plate subjected to transverse uniform dynamic load. Nanopores or nanovoids are incorporated to the model based on a modified rule of mixture. According to t Hamilton's principle, the formulation of dynamically loaded nanoplate is derived. Applying Galerkin's method, the resonance frequencies and dynamic deflections are obtained. It is indicated that the forced vibration characteristics of the nanoplate are significantly influenced by the porosities, excitation frequency, nonlocal parameter, strain gradient parameter, material gradation, elastic foundation and dynamic load location.
机译:基于广义的非局部应变梯度理论,执行在均匀的动态载荷下进行多孔功能梯度纳米层的强制振动分析。 在该模型中,考虑刚度软化和刚度 - 硬化效果,用于纳米板的更可靠的强制振动分析。 本模型基于振动高阶纳米级板经受横向均匀的动态负荷。 基于修饰的混合物规则将纳米孔或纳米拓掺入模型。 根据T Hamilton的原理,推导出动态负载纳米层的配方。 应用Galerkin的方法,获得共振频率和动态偏转。 结果表明,纳米板的强制振动特性受到孔隙率,激发频率,非本地参数,应变梯度参数,材料灰度,弹性基础和动态负载位置的显着影响。

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