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Vibration characteristics of plates and shells with functionally graded pores imperfections using an enhanced finite shell element

机译:用增强的有限壳体元件具有功能梯度孔隙缺陷的板和壳体的振动特性

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The novelty of the current study is the development of an enhanced finite shell model using the first order shear deformation theory (FSDT) to study the vibration characteristics of imperfect functionally graded (FGM) plates and shells including porosities. Unlike standard (FSDT) theory, the proposed model presents an improvement of the FSDT via the introduction of a quadratic shear function allowing the exact representation of the parabolic distribution of the shear strains and avoiding the utilization of shear correction factors which are computationally costs. The finite element method is used for the discretization of the equations of motion and the assumed natural transverse shear strain (ANS) method is employed to avoid shear locking problems. The effect of porosity parameter and its distributions, namely even and uneven forms, is investigated through different numerical illustrative examples. The present finite shell element model provides better agreement with exact solutions in comparison by other theories. Finally, effects of different factors on vibrational behavior of imperfect FGM porous plates and shells are examined in detail.
机译:目前研究的新颖性是使用第一订单剪切变形理论(FSDT)进行增强的有限壳模型来研究缺乏功能梯度(FGM)板和壳体的振动特性。与标准(FSDT)理论不同,所提出的模型通过引入二次剪切函数来提高FSDT,允许剪切株的抛物线分布的精确表示并避免使用计算成本的剪切校正因子。有限元方法用于离散的运动方程和假设的自然横向剪切应变(ANS)方法以避免剪切锁定问题。通过不同的数值说明性实施例研究了孔隙率参数及其分布,即偶数和不均匀形式的影响。目前的有限壳元件模型与其他理论相比,与精确的解决方案提供了更好的协议。最后,详细研究了不同因素对不完美FGM多孔板和壳振动行为的影响。

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