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首页> 外文期刊>International Scholarly Research Notices >Design Optimisation of Lower-Bound Buckling Capacities for FRP-Laminated Cylindrical Shells
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Design Optimisation of Lower-Bound Buckling Capacities for FRP-Laminated Cylindrical Shells

机译:FRP叠合圆柱壳下界屈曲能力的设计优化

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摘要

The imperfection sensitive buckling loads of fibre reinforced polymeric (FRP) composite cylindrical shells under axial compression can be optimised with respect to many material and geometric parameters. Current approaches, using mathematical algorithms to optimise the linearised classical critical loads with respect to many design variables, generally ignore the potential reductions in elastic load carrying capacities that result from the severe sensitivities of buckling loads to the effects of initial imperfections. This paper applies a lower-bound design philosophy called the reduced stiffness method (RSM) to the optimisation design of FRP shell buckling. A physical optimisation in terms of parametric studies is carried out for simply supported, 6-ply symmetric, glass-epoxy circular cylindrical shells under uniform axial load. It is shown that under the guidance of RSM, safe lower-bound buckling loads can be enhanced greatly by choosing appropriate combinations of design parameters. It is demonstrated how this approach encourages the delineation of those components of the shell’s membrane and bending stiffness that are important and those that are unimportant within each of the prospective buckling modes. On this basis, it is argued that the RSM provides not only a safe but also a more rational strategy for better design decision making.
机译:相对于许多材料和几何参数,可以优化纤维增强聚合物(FRP)复合材料圆柱壳在轴向压缩下的非理想敏感性屈曲载荷。当前的方法,使用数学算法针对许多设计变量来优化线性化的经典临界载荷,通常会忽略屈曲载荷对初始缺陷的严重敏感性而导致的弹性载荷承载能力的潜在降低。本文将一种称为“降低刚度法”(RSM)的下限设计理念应用于FRP壳体屈曲的优化设计。在均匀的轴向载荷下,对参数简单的6层对称玻璃环氧圆形圆柱壳进行了物理优化。结果表明,在RSM的指导下,选择合适的设计参数组合可以大大提高安全的下限屈曲载荷。事实证明,这种方法如何鼓励划定壳膜的那些组成部分和弯曲刚度,而在每种预期的屈曲模式中,这些部分很重要,而那些弯曲部分则不重要。在此基础上,有人认为RSM不仅为更好的设计决策提供了一种安全的方法,而且还提供了一种更为合理的策略。

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