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General micromechanical modeling of smart composite shells with application to smart honeycomb sandwich structures

机译:智能复合材料壳的通用微力学建模及其在智能蜂窝夹层结构中的应用

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Analytical solutions for the static deformations of piezoelectric composite shells with a periodic structure are developed and effective elastic and piezoelectric coefficients are determined. The derived model also allows the determination of the displacement, strain and stress fields. The underlying mathematical framework is that of asymptotic homogenization. It is shown that the original boundary value problem decouples into a set of four simpler problems called local or unit cell problems. It is precisely these unit cell problems that determine the effective elastic and piezoelectric coefficients. These coefficients are universal in nature and can be used to study a wide variety of boundary value problems. The model is applied to the practically important case of a hexagonal honeycomb-type sandwich structure composed of an isotropic core and orthotropic carrier faces that also exhibit piezoelectric behavior.
机译:提出了具有周期结构的压电复合材料壳体静变形的解析解,并确定了有效的弹性系数和压电系数。导出的模型还可以确定位移,应变和应力场。基本的数学框架是渐近均质化的框架。结果表明,原始的边值问题解耦为一组四个更简单的问题,称为局部或单位像元问题。正是这些晶胞问题决定了有效的弹性系数和压电系数。这些系数本质上是通用的,可用于研究各种各样的边值问题。该模型适用于由各向同性的芯和正交各向异性的载体面组成的六角形蜂窝型夹心结构的重要实例,压电结构也表现出压电特性。

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