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Optimal laminations of thin underwater composite cylindrical vessels

机译:水下复合圆柱薄容器的最佳叠片

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摘要

This paper deals with the optimal design of deep submarine exploration housings and autonomous underwater vehicles. The structures under investigation are thin-walled laminated composite unstiffened vessels. Structural buckling failure due to the high external hydrostatic pressure is the dominant risk factor at exploitation conditions. The search of fiber orientations of the composite cylinders that maximize the stability limits is investigated. A genetic algorithm procedure coupled with an analytical model of shell buckling has been developed to determine numerically optimized stacking sequences. Characteristic lamination patterns have been obtained. FEM analyses have confirmed the corresponding significant increases of buckling pressures with respect to initial design solutions. Experiments on thin glass/epoxy and carbon/epoxy cylinders have been performed. The measured buckling pressures appear to be in good agreement with numerical results and demonstrate the gains due to the optimized laminations.
机译:本文探讨了深海潜艇勘探外壳和自动水下航行器的优化设计。所研究的结构是薄壁层压复合材料未加劲的容器。高外部静水压力导致的结构屈曲破坏是开采条件下的主要危险因素。研究了使稳定性极限最大化的复合材料圆柱体的纤维取向。已经开发了遗传算法程序以及壳体屈曲分析模型,以确定数值优化的堆叠顺序。已经获得了特征性的层压图案。有限元分析已经确认,相对于初始设计解决方案,屈曲压力会相应增加。已经在薄玻璃/环氧树脂和碳/环氧树脂气瓶上进行了实验。测得的屈曲压力似乎与数值结果非常吻合,并显示出由于优化的叠片而获得的屈曲压力。

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