模拟高强度钢循环行为的数值模型

E. Cho, Sang Whan Han
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引用次数: 0

摘要

高强度钢(HSS)可以有效、经济地设计结构构件,使其能够承受地震等极端事件引起的巨大力。要利用非线性有限元(FE)分析评估高强度钢构件和结构的抗震性能,必须使用精确的材料模型,该模型可模拟高强度钢的非弹性循环行为。模型中需要考虑到高速钢的特殊材料行为。本研究采用组合硬化模型来构建材料模型。确定了模型的配置和组成模型的参数值,以精确模拟高速钢的低循环疲劳(LCF)行为。利用高效的粒子群优化(PSO)算法,通过 54 个单独的高速钢试样的 LCF 测试数据来确定参数值。此外,为了仅利用单调拉伸试验数据而不是进行昂贵的 LCT 试验来方便地确定模型参数值,还提出了经验方程。结果表明,使用所构建的材料模型和所提出的方程可以准确模拟高速钢的 LCF 曲线。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A numerical model simulating cyclic behavior of high-strength steel
High-strength steel (HSS) can effectively and economically design structural members that withstand large forces induced by extreme events such as earthquakes. To evaluate the seismic performance of HSS members and structures using nonlinear finite element (FE) analyses, using an accurate material model is important, which can simulate the inelastic cyclic behavior of the HSS. The peculiar material behavior of HSS needs to be considered in the model. This study used a combined hardening model to construct the material model. The configuration of the model and the constituent model parameter values are determined to precisely simulate the low-cycle fatigue (LCF) behavior of HSS. An efficient particle swarm optimization (PSO) algorithm is used to determine parameter values with LCF test data of 54 individual HSS coupons. In additions, to conveniently determine the model parameter values with only monotonic tensile test data instead of conducting expensive LCT tests, empirical equations are proposed. It is shown that the LCF curves of HSS can be accurately simulated using the constructed material model with the proposed equations.
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