Simulation of Cyclic Loading on Pipe Elbows Using Advanced Plane-Stress Elastoplasticity Models1

子程序 结构工程 有限元法 冯·米塞斯屈服准则 可塑性 硬化(计算) 本构方程 应变硬化指数 安定 材料科学 粘塑性 机械 计算机科学 工程类 复合材料 物理 图层(电子) 操作系统
作者
Konstantinos Chatziioannou,Yuner Huang,Spyros A. Karamanos
出处
期刊:Journal of Pressure Vessel Technology-transactions of The Asme [ASM International]
卷期号:143 (2) 被引量:8
标识
DOI:10.1115/1.4047876
摘要

Abstract This work investigates the response of industrial steel pipe elbows subjected to severe cyclic loading (e.g., seismic or shutdown/startup conditions), associated with the development of significant inelastic strain amplitudes of alternate sign, which may lead to low-cycle fatigue. To model this response, three cyclic-plasticity hardening models are employed for the numerical analysis of large-scale experiments on elbows reported elsewhere. The constitutive relations of the material model follow the context of von Mises cyclic elasto-plasticity, and the hardening models are implemented in a user subroutine, developed by the authors, which employs a robust numerical integration scheme, and is inserted in a general-purpose finite element software. The three hardening models are evaluated in terms of their ability to predict the strain range at critical locations, and in particular, strain accumulation over the load cycles, a phenomenon called “ratcheting.” The overall good comparison between numerical and experimental results demonstrates that the proposed numerical methodology can be used for simulating accurately the mechanical response of pipe elbows under severe inelastic repeated loading. Finally, this paper highlights some limitations of conventional hardening rules in simulating multi-axial material ratcheting.
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