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Numerical Simulation of the Layer-Bylayer Destruction of Cylindrical Shells Under Explosive Loading

机译:爆炸载荷作用下圆柱壳层-双层破坏的数值模拟

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摘要

A technique of numerical analysis of the influence of reinforcement structure on the nature of the dynamic response and the process of layer-by-layer destruction of layered fiberglass cylindrical shells under an axisymmetric internal explosive loading is elaborated. The kinematic model of deformation of the laminate package is based on a nonclassical theory of shells. The geometric dependences are based on simple quadratic relations of the nonlinear theory of elasticity. The relationship between the stress and strain tensors are established by using Hooke's law for orthotropic bodies with account of degradation of stiffness characteristics of the multilayer composite due to the local destruction of some its elementary layers. An energetically consistent system of dynamic equations for composite cylindrical shells is obtained by minimizing the functional of total energy of the shell as a three-dimensional body. The numerical method for solving the formulated initial boundary-value problem is based on an explicit variational-difference scheme. Results confirming the reliability of the method used to analyze the influence of reinforcement structure on the character of destruction and the bearing capacity of pulse-loaded cylindrical shells are presented.
机译:阐述了一种增强结构对轴对称内部爆炸载荷作用下的层状玻璃纤维圆柱壳动力响应特性及逐层破坏过程的数值分析技术。层压包装变形的运动学模型基于壳的非经典理论。几何相关性基于非线性弹性理论的简单二次关系。通过使用正交异性体的胡克定律建立应力张量之间的关系,考虑到多层复合材料由于其某些基本层的局部破坏而导致的刚度特性下降。通过最小化作为三维物体的壳的总能量的函数,可以获得用于复合圆柱壳的动力学方程的能量上一致的系统。解决制定的初始边值问题的数值方法是基于显式的变分方案。结果证实了用于分析钢筋结构对破坏特性和脉冲载荷圆柱壳的承载能力的方法的可靠性。

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