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Finite Element Modelling and Multi-Objective Optimization of Composite Submarine Pressure Hull Subjected to Hydrostatic Pressure

机译:静水压力作用下复合潜艇耐压壳的有限元建模与多目标优化

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摘要

Excellent mechanical behavior and low density of composite materials make them candidates to replace metals for many underwater applications. This paper presents a comprehensive study about the multi-objective optimization of composite pressure hull subjected to hydrostatic pressure to minimize the weight of the pressure hull and maximize the buckling load capacity according to the design requirements. Two models were constructed, one model constructed from Carbon/Epoxy composite (USN-150), the other model is metallic pressure hull constructed from HY100. The analysis and the optimization process were completely performed using ANSYS Parametric Design Language (APDL). Tsai-Wu failure criterion was incorporated in the optimization process. The results obtained emphasize that, the submarine constructed from Carbon/Epoxy composite (USN-150) is better than the submarine constructed from HY100. Finally, an optimized model with an optimum pattern of fiber orientations was presented. Hopefully, the results may provide a valuable insight for the future of designing composite underwater vehicles.
机译:优异的机械性能和低密度的复合材料使其成为许多水下应用中替代金属的候选材料。本文针对静水压力下复合耐压船体的多目标优化进行了全面研究,以根据设计要求最小化耐压船体的重量并最大化屈曲承载能力。构建了两个模型,一个模型是由碳/环氧复合材料(USN-150)构建的,另一个模型是由HY100构成的金属耐压船体。使用ANSYS参数化设计语言(APDL)完全执行了分析和优化过程。蔡武失效准则被纳入优化过程。得到的结果强调,由碳/环氧复合材料(USN-150)建造的潜艇比由HY100建造的潜艇更好。最后,提出了具有最佳纤维取向图案的优化模型。希望这些结果可能为设计复合水下航行器的未来提供有价值的见解。

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