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Size-dependent forced vibration of non-uniform bi-directional functionally graded beams embedded in variable elastic environment carrying a moving harmonic mass

机译:嵌入具有可变谐波质量的可变弹性环境中的非均匀双向功能梯度梁的尺寸相关强迫振动

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In this study, general non-uniform material-varying micro-beam models under a moving harmonic load/mass are investigated. Material variation is modeled by combining axial and thickness material grading models using exponential, linear, parabolic and sigmoidal functions. Beam is assumed to be resting on an elastic foundation and in this linear foundation model, foundation modulus is assumed to vary axially with respect to space variable in a non-linear manner ignoring the effect of mass density of foundation on the behavior of micro-beam. Cross-section variation through the length is formulated for both thickness and width variation. Governing equations for such comprehensive beam model is achieved using Hamilton's principle in conjunction with modified couple stress theory to add the scale-effects and solved by discussing explicit and implicit finite element methods with using various-steps and Wilson-theta method. Current methodology is verified using previous studies on simplified problems. A comprehensive parametric study is presented in order to indicate the influence of each design, material and fundamental terms on the forced vibration behavior of such structures under a moving harmonic/constant load/mass. It is shown that by appropriately choosing the material variation in bidirectional functionally graded beams dynamic vibration behavior of such structures could change significantly. Moreover, it is shown that varying cross-section, elastic foundation and type of harmonic moving mass can change the dynamic reaction of the general micro-beam model. From the influence of modified couple stress term on mechanical behavior of such structures it is concluded that this term has crucial effect in varying the dynamic deflections and it is important to acknowledge it in analyzing such structures. (C) 2019 Elsevier Inc. All rights reserved.
机译:在这项研究中,研究了在移动谐波载荷/质量下一般非均匀材料变化的微束模型。通过使用指数函数,线性函数,抛物线函数和S形函数组合轴向和厚度材料分级模型,可以对材料变化进行建模。假定梁位于弹性基础上,并且在此线性基础模型中,假定基础模量相对于空间变量以非线性方式轴向变化,而忽略了基础质量密度对微梁性能的影响。 。针对厚度和宽度变化制定了整个长度的横截面变化。这种综合梁模型的控制方程是使用汉密尔顿原理结合改进的耦合应力理论来添加比例效应的,并通过使用各种步骤和Wilson-theta方法讨论显式和隐式有限元方法来求解。使用以前关于简化问题的研究验证了当前的方法。为了表明每种设计,材料和基本术语对这种结构在移动谐波/恒定载荷/质量下的强迫振动行为的影响,进行了全面的参数研究。结果表明,通过适当选择双向功能梯度梁中的材料变化,此类结构的动态振动行为可能会发生显着变化。此外,结果表明,改变横截面,弹性基础和谐波移动质量的类型可以改变一般微梁模型的动力反应。从修改的耦合应力项对此类结构的力学行为的影响可以得出结论,该项对改变动态挠度具有至关重要的作用,因此在分析此类结构时认识到这一点很重要。 (C)2019 Elsevier Inc.保留所有权利。

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