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Optimization of Spatially Varying Fiber Paths for a Symmetric Laminate with a Circular Cutout under Remote Uniaxial Tension

机译:在远程单轴张力下具有圆形切口的对称层压板的空间变化光纤路径的优化

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Minimizing the stress concentrations around cutouts in a plate is often a design problem, especially in the Aerospace industry. A problem of optimizing spatially varying fiber paths in a symmetric, linear orthotropic composite laminate with a cutout, so as to achieve minimum stress concentration under remote unidirectional tensile loading is of interest in this study. A finite element (FE) model is developed to this extent, which constraints the fiber angles while optimizing the fiber paths, proving essential in manufacturing processes. The idea to be presented could be used to derive fiber paths that would drastically reduce the Stress Concentration Factor (SCF) in a symmetric laminate by using spatially varying fibers in place of unidirectional fibers. The model is proposed for a four layer symmetric laminate, and can be easily reproduced for any number of layers. The FE model suggested would also let us use a reduced number of optimization variables, for in this case of a four layer symmetric laminate, only six optimization variables need to be defined to obtain the optimum fiber distribution to attain minimum SCF around the circular cutout. By ensuring continuity in the FE model, discrete fiber angles within each element in a single layer can be easily smoothed out to obtain the optimal fiber path.
机译:尽量减少切口周围的应力集中在板往往是一个设计问题,尤其是在航空航天工业。优化空间中的对称变化的纤维路径,线性有切口正交各向异性的复合层压材料的一个问题,从而达到下远程单向拉伸载荷最小的应力集中在该研究的兴趣。有限元(FE)模型被显影到这种程度,同时优化了光纤路径,在制造过程中必需证明哪些约束纤维角。要呈现的想法可被用于导出纤维路径,将通过急剧代替单向纤维的使用空间变化的纤维减少以对称的层压板的应力集中系数(SCF)。该模型提出了一个四层层压对称,并且可以容易地再现为任意数量的层。建议也让我们在这种情况下,一个四层对称层叠体的使用优化变量的数量的减少,对有限元模型,只有六个优化变量需要被定义,以获得最佳的纤维分布达到围绕圆形切口最小SCF。通过确保在有限元模型的连续性,离散的纤维角度内以单层的每个元素可以容易地平滑以获得最佳纤维路径。

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