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An efficient backward Euler time-integration method for nonlinear dynamic analysis of structures

机译:一种有效的后向欧拉时间积分方法,用于结构的非线性动力分析

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摘要

This paper presents an efficient time-integration method for obtaining reliable solutions of the transient nonlinear dynamic problems and of the stiff systems in structural engineering. This method employs the backward Euler formulae for evaluating both displacements and velocities of structures. It is a self-starting, two-step, second-order accurate algorithm with the same computational effort as the trapezoidal rule. The evaluations of the stability and accuracy of the proposed method are also given in this paper. With some numerical damping introduced, the proposed method remains stable in large deformation and long time range solutions even when the trapezoidal rule fails. Meanwhile, the proposed method has the following characteristics: (1) it is applicable to linear as well as general nonlinear analyses; (2) it does not involve additional variables (e.g. Lagrange multipliers) and artificial parameters; (3) it is a single-solver algorithm at the discrete time points with symmetric effective stiffness matrix and effective load vectors; and (4) it is easy to implement in an existing computational software. Some numerical results indicate that the proposed method is a powerful tool with some notable features for practical nonlinear dynamic analyses.
机译:本文提出了一种有效的时间积分方法,用于获得结构工程中瞬态非线性动力问题和刚性系统的可靠解。该方法使用后向欧拉公式来评估结构的位移和速度。它是一种自启动的,两步,二阶精确算法,其计算工作量与梯形规则相同。本文还对所提方法的稳定性和准确性进行了评估。引入一些数值阻尼后,即使梯形法则失效,所提出的方法在大变形和长时间范围内的解决方案中仍保持稳定。同时,该方法具有以下特点:(1)既适用于线性分析,也适用于一般的非线性分析。 (2)它不涉及其他变量(例如拉格朗日乘数)和人工参数; (3)是在离散时间点具有对称有效刚度矩阵和有效载荷矢量的单求解器算法; (4)易于在现有的计算软件中实现。数值结果表明,该方法是一种实用的非线性动力学分析方法,具有重要的功能。

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