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A semi-empirical modeling approach for predicting the deformational capacity of axially-compressed cylindrical shells based on a novel material stress-strain characterization method

机译:基于新型材料应力-应变表征方法的轴向压缩圆柱壳变形能力预测的半经验建模方法

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Adoption of cylindrical shell structures for various load-resistance applications has enjoyed wide-spread acceptance in the field of civil, mechanical and aerospace engineering, mainly due to the exceptional structural efficiency of cylindrical shells to withstand significant longitudinal and circumferential in-plane loading without bending. However, where such in-plane loading conditions are compressive, cylindrical shells are likely to exhibit an unstable response characterized by localized out-of-plane deformation. Computerized numerical simulation is often required for accurate and efficient estimation of the strains and resultant stresses in cylindrical shells under loading, especially where the thickness of the shell is sufficient to evoke an inelastic buckling response in the structure. The buckling behavior of thin-walled cylindrical shells subjected to uniform axial compression has been studied in this paper using the finite element (FE) simulation method to assign respective material, geometric, loading and boundary properties to computer-generated cylindrical shell specimens. Extensive parametric analysis, consisting of approximately 720 FE runs, was then conducted based on a full-factorial empirical design, applying ample variations of the relevant parameters that influence the buckling response of axially-compressed cylindrical-shell structures. Nonlinear multiple regression techniques were then employed to derive the coefficients of nonlinear mathematical expressions, each developed as an arithmetic product of appropriate variable functions related to the respective functional sensitivities of the investigated parameters. Strain-hardening properties were incorporated into the mathematical expressions based on the shape constants of the Ndubuaku stress-strain model; which has proven to be remarkably useful for accurate parameterization of the stress-strain behavior over the full range of strains for a wide range of metallic materials, including materials with a well-defined yield plateau. Excellent predictions of FEA-derived values for the critical limit strain limit were obtained, and a simple statistical approach was presented to increase the conservativeness of the semi-empirical model as required.
机译:在土木,机械和航空航天工程领域中,将圆柱壳结构用于各种抗载荷应用已得到广泛认可,这主要是由于圆柱壳具有出色的结构效率,可承受较大的纵向和圆周面内载荷而不会弯曲。但是,在这种面内载荷条件是压缩的情况下,圆柱壳可能会表现出不稳定的响应,其特征在于局部面外变形。通常需要计算机数值模拟来精确,有效地估计圆柱壳在载荷下的应变和合应力,特别是在壳的厚度足以引起结构中非弹性屈曲响应的情况下。本文利用有限元(FE)模拟方法研究了薄壁圆柱壳在均匀轴向压缩下的屈曲行为,并将其各自的材料,几何,载荷和边界特性分配给计算机生成的圆柱壳样本。然后,基于全因子经验设计,进行了大约720个有限元运行的广泛参数分析,应用了影响轴向压缩圆柱壳结构屈曲响应的相关参数的大量变化。然后,采用非线性多元回归技术来推导非线性数学表达式的系数,每个非线性数学表达式被开发为与所研究参数的各个函数敏感性相关的适当变量函数的算术乘积。基于Ndubuaku应力-应变模型的形状常数,将应变硬化特性纳入数学表达式中。事实证明,这种方法对于精确测量各种金属材料(包括具有确定的屈服平稳期的材料)在整个应变范围内的应力-应变行为非常有用。获得了极限极限应变极限的FEA衍生值的出色预测,并提出了一种简单的统计方法来根据需要提高半经验模型的保守性。

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