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STRUCTURAL ANALYSIS OF VARIABLE STIFFNESS LAMINATED PLATES USING FIRST-ORDER SHEAR DEFORMATION THEORY

机译:一种使用一阶剪切变形理论的可变刚度层压板的结构分析

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Constant and variable stiffness strategies have been developed to design a composite laminate. With the former, each layer is designed with straight fibers that have the highest stiffness and strength in the fiber direction. With the latter, on the other hand, the stiffness can change within each layer by placing the fibers along a curvilinear fiber path. A variable stiffness design results in improved structural performance, as well as opens up opportunities to search for trade-off among structural properties. During the manufacture of a variable stiffness design with Automated Fiber Placement, certain defects in the form of gaps and overlaps could appear within the laminate and affect the laminate performance. In this study, we use the first-order shear deformation theory to assess the effect of transverse shear stresses on the critical buckling load, free and forced vibration of a variable stiffness laminate with embedded defects, an issue so far rarely examined in literature. The governing differential equations for the static analysis are first derived. A semi-analytic solution is then obtained using the hybrid Fourier-Galerkin method and the numeric time integration technique. The eigenvalue analysis is also conducted to determine the fundamental frequency and critical buckling load of the plate. It is found that the behavior of a variable stiffness plate is much more affected by the shear stresses than a constant stiffness plate. Ignoring the effect of transverse shear stresses results in 34% error in the predicted buckling load of a variable stiffness laminate with overlaps and a length-to-thickness ratio of 10.
机译:已经开发出恒定和可变刚度策略来设计复合层压板。与前者一起,每层都设计有具有直纤维的直纤维,纤维方向具有最高的刚度和强度。另一方面,随着后者,通过将纤维沿着曲线纤维路径放置纤维,刚度可以在每个层内变化。可变刚度设计导致结构性性能提高,并开辟了在结构性特性中寻找权衡的机会。在通过自动纤维放置的可变刚度设计的制造过程中,间隙形式和重叠形式的某些缺陷可以出现在层压板内,并影响层压性能。在这项研究中,我们使用一阶剪切变形理论来评估横向剪切应力对具有嵌入缺陷的可变刚度层压材料的横向剪切损伤的影响,这是迄今为止在文献中进行的问题。首先衍生出用于静态分析的控制微分方程。然后使用混合傅里叶 - Galerkin方法和数值时间集成技术获得半分析解决方案。还进行了特征值分析以确定板的基本频率和关键屈曲负荷。发现可变刚度板的行为比恒定刚度板的剪切应力更大。忽略横向剪切应力的效果导致可变刚度层压材料的预测屈曲负载中的34%误差,其具有重叠和长度为10的长度。

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