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Optimal design of cylindrical shells for enhanced buckling stability: Application to supercavitating underwater vehicles

机译:圆柱壳的优化设计以增强屈曲稳定性:在超空化水下航行器中的应用

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摘要

The static and dynamic stability of supercavitating vehicles is investigated. The vehicles are modeled as thick shells, using nine-node isoparametric shell elements. The model allows the prediction of the behavior of shells of non-uniform thickness, and it is formulated to account for the presence of circumferential stiffeners. The considered buckling loads include compressive forces corresponding to propulsion and drag at the nose of the vehicle, and a concentrated axial force corresponding to the drag experienced by the vehicle on its afterbody. The latter is modeled as a time-dependent force, varying harmonically in time. The stability performance of plain shells is compared to those of tapered and stiffened shells. The tapered and stiffened configurations are then optimized to enhance the overall stability characteristics of the vehicle, while minimizing the required added weight. The considered stability study highlights operating limits for the considered class of vehicles and suggests simple design solutions for their extension.
机译:研究了超空化车辆的静态和动态稳定性。使用九节点等参壳单元将车辆建模为厚壳。该模型可以预测厚度不均匀的壳体的行为,并且该模型可以考虑周向加劲肋的存在。所考虑的屈曲载荷包括对应于车辆前部的推进力和阻力的压缩力,以及对应于车辆在其后车身上经受的阻力的集中轴向力。后者被建模为随时间变化的力,随时间而变化。将平壳与锥形壳和加劲壳的稳定性进行了比较。然后优化锥形和加强结构,以增强车辆的整体稳定性,同时将所需的附加重量降至最低。被考虑的稳定性研究突出了所考虑的车辆类别的操作限制,并提出了针对其扩展的简单设计解决方案。

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