高强度钢丝腐蚀诱导断裂失效机理的多尺度分析

IF 2.2 Q2 ENGINEERING, MULTIDISCIPLINARY Applications in engineering science Pub Date : 2023-12-12 DOI:10.1016/j.apples.2023.100172
Songling Xue, Teng Su, Xiaoqing Zhao, Zhongling Zong
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引用次数: 0

摘要

目前,对腐蚀钢丝力学性能的研究主要是通过腐蚀试验进行的,缺乏对腐蚀机理的深入理论研究。针对这一研究空白,本研究采用分子动力学(MD)和有限元理论探讨了腐蚀钢丝的腐蚀过程、微观和宏观力学性能以及腐蚀后的断裂机制。该研究实现了微观和宏观尺度分析的耦合。首先,基于高强钢丝的化学成分建立了分子动力学模型,利用量子力学推导出的混合势函数分析了腐蚀钢丝的断裂机理;其次,在实验测量的基础上,利用Python在Abaqus中建立了钢丝随机腐蚀坑的简化模型。最后,基于分子动力学模拟结果,分析了腐蚀钢丝的宏观断裂过程和断裂强度。然后将这些结果与实验数据进行比较,以验证理论分析的准确性。
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Multi-scale analysis of corrosion-induced fracture failure mechanisms of high-strength steel wire

Currently, research on the mechanical properties of corroded steel wire is primarily conducted through corrosion testing, with a lack of in-depth theoretical investigations into the underlying mechanisms. Addressing this research gap, this study employs molecular dynamics (MD) and finite element theory to explore the corrosion process, micro- and macro-mechanical properties of corroded steel wire, and the fracture mechanisms after corrosion. The study achieves a coupling of micro- and macro-scale analyses. Firstly, a molecular dynamics model is established based on the chemical composition of high-strength steel wire, and a novel mixed potential function derived from quantum mechanics is employed to analyze the fracture mechanisms of corroded steel wire. Secondly, a simplified model of randomly corroded pits in steel wire is developed using Python in Abaqus, based on experimental measurements. Finally, the macroscopic fracture process and fracture strength of corroded steel wire are analyzed based on the results from molecular dynamics simulations. These results are then compared to experimental data to validate the accuracy of the theoretical analysis.

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来源期刊
Applications in engineering science
Applications in engineering science Mechanical Engineering
CiteScore
3.60
自引率
0.00%
发文量
0
审稿时长
68 days
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