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Explicit Fiber Beam-Column Elements for Impact Analysis of Structures

机译:用于结构冲击分析的显式纤维束柱单元

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摘要

The solution of impact problems requires advanced computational techniques to overcome the difficulties associated with large short-duration loads. Such cases typically use the explicit time integration method because it provides a stable solution for problems such as the analysis of structures subjected to shock and impact loads. However, most explicit-based finite elements were developed for continuum models such as membrane and solid elements, which renders the problem computationally expensive. On the other hand, the development of fiber-based beam finite elements allows for the simulation of the global structural behavior with very few degrees of freedom, while accounting for the detailed material nonlinearity along the element length. However, explicit-based fiber beam elements have not been properly formulated, in particular for the case of the emerging force-based beam element. This paper develops two fiber plane beam elements that consider an explicit time integration scheme for the solution of the dynamic equation of motion. The first element uses a displacement-based formulation, whereas the second element uses a force-based formulation. For the latter case, a new algorithm that eliminates the need for iterations at the element level is proposed. The developed elements require the use of a lumped mass matrix and a small time increment to ensure numerical stability. No iterations or convergence checks are required, which renders the problem numerically efficient. The developed explicit fiber beam-column models, particularly the force-based element, represent a simple yet powerful tool for simulating the nonlinear complex effect of impact loads on structures accurately while using very few finite elements. The traditional implicit method of analysis typically fails to provide numerically stable behavior for such short-duration problems. Two correlation studies are presented to highlight the efficiency of the developed elements in modeling impact problems in which the material models consider the strain rate effect. These examples confirm the accuracy and efficiency of the presented elements.
机译:冲击问题的解决方案需要先进的计算技术来克服与短时大载荷相关的困难。这种情况通常使用显式时间积分方法,因为它为诸如震动和冲击载荷的结构分析之类的问题提供了稳定的解决方案。但是,大多数基于显式的有限元都是为连续模型开发的,例如膜和实体元素,这使该问题在计算上变得昂贵。另一方面,基于纤维的梁有限元的发展允许以很少的自由度模拟全局结构行为,同时考虑了沿单元长度的详细材料非线性。但是,特别是对于新兴的基于力的梁单元的情况,基于外显的纤维梁单元尚未适当地制定。本文开发了两种纤维平面梁单元,它们考虑了用于解决运动动力学方程的显式时间积分方案。第一个元素使用基于位移的公式,而第二个元素使用基于力的公式。对于后一种情况,提出了一种新算法,该算法消除了在元素级别进行迭代的需要。开发的元素需要使用集总质量矩阵和较小的时间增量以确保数值稳定性。不需要迭代或收敛性检查,这使问题在数值上有效。已开发的显式纤维梁柱模型,尤其是基于力的单元,代表了一种简单而强大的工具,可在使用很少的有限元的情况下准确地模拟冲击载荷对结构的非线性复杂影响。传统的隐式分析方法通常无法为此类短期问题提供数值上稳定的行为。提出了两个相关性研究,以突出已开发元素在建模材料模型考虑应变率效应的冲击问题方面的效率。这些示例证实了所提出要素的准确性和效率。

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