首页> 外文期刊>International journal of mechanics and materials in design >Smart control of nonlinear vibrations of doubly curved functionally graded laminated composite shells under a thermal environment using 1-3 piezoelectric composites
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Smart control of nonlinear vibrations of doubly curved functionally graded laminated composite shells under a thermal environment using 1-3 piezoelectric composites

机译:使用1-3压电复合材料在热环境下双曲功能梯度层合复合壳非线性振动的智能控制。

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This paper addresses the active control of geometrically nonlinear vibrations of doubly curved functionally graded (FG) laminated composite shells integrated with a patch of active constrained layer damping (ACLD) treatment under the thermal environment. Vertically/obliquely reinforced 1-3 piezoelectric composite (PZC) and active fiber composite (AFC) are used as the materials of the constraining layer of the ACLD treatment. Each layer of the substrate FG laminated composite shell is made of fiber-reinforced composite material in which the fibers are longitudinally aligned in the plane parallel to the top or bottom surface of the layer and the layer is assumed to be graded in the thickness direction by way of varying the fiber orientation angle across its thickness according to a power law. The novelty of the present work is that, unlike the traditional laminated composite shells, the FG laminated composite shells are constructed in such a way that the continuous variation of material properties and stresses across the thickness of the shell is achieved. The Golla-Hughes-McTavish (GHM) method has been implemented to model the constrained viscoelastic layer of the ACLD treatment in time domain. Based on the first-order shear deformation theory (FSDT), a finite element (FE) model has been developed to model the open-loop and closed-loop nonlinear dynamics of the overall FG laminated composite shell under a thermal environment. Both symmetric and asymmetric FG laminated composite doubly curved shells are considered for presenting the numerical results. The analysis suggests that the ACLD patch significantly improves the damping characteristics of the doubly curved FG laminated composite shells for suppressing their geometrically nonlinear transient vibrations. It is found that the performance of the ACLD patch with its constraining layer being made of the AFC material is significantly higher than that of the ACLD patch with vertically/obliquely reinforced 1-3 PZC constraining layer. The effects of variation of piezoelectric fiber orientation in both the obliquely reinforced 1-3 PZC and the AFC constraining layers on the control authority of the ACLD patch have also been investigated.
机译:本文研究了在热环境下双曲功能梯度(FG)叠层复合壳的几何非线性振动的主动控制,并结合了主动约束层阻尼(ACLD)处理。垂直/倾斜增强的1-3压电复合材料(PZC)和活性纤维复合材料(AFC)被用作ACLD处理的约束层的材料。基板FG层压复合壳的每一层由纤维增强复合材料制成,其中纤维在平行于该层的顶面或底面的平面内纵向对齐,并且假定该层在厚度方向上分级为根据幂定律在整个纤维厚度上改变纤维取向角的方法。本发明的新颖性在于,与传统的层压复合壳不同,FG层压复合壳以这样的方式构造:使得材料特性和应力在壳的整个厚度上连续变化。已经采用Golla-Hughes-McTavish(GHM)方法在时域中对ACLD处理的约束粘弹性层进行建模。基于一阶剪切变形理论(FSDT),开发了一个有限元(FE)模型来模拟整个FG层压复合材料壳在热环境下的开环和闭环非线性动力学。对称和不对称的FG叠层复合材料双曲壳都被考虑来提供数值结果。分析表明,ACLD贴片可显着改善双曲FG叠层复合材料壳的阻尼特性,以抑制其几何非线性瞬态振动。发现其约束层由AFC材料制成的ACLD贴片的性能显着高于具有垂直/倾斜增强的1-3 PZC约束层的ACLD贴片的性能。还研究了倾斜增强的1-3 PZC和AFC约束层中压电纤维取向的变化对ACLD贴片控制权限的影响。

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