基于连续破坏理论的输电塔关键区域非线性故障分析

IF 1.9 4区 工程技术 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC International Transactions on Electrical Energy Systems Pub Date : 2024-09-22 DOI:10.1155/2024/3543891
Nailong Zhang, Jie Chen, Chao Gao, Xiao Tan, Hongze Li
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引用次数: 0

摘要

输电塔是输电系统中至关重要的安全支柱,其损坏可能导致严重后果。铁塔的结构失效要经历从局部损伤开始到整体失效的过程,这就强调了进行详细的局部安全研究的重要性。本文介绍了一种基于连续损伤理论的非线性损伤分析方法,专门针对输电塔的关键部位而设计。使用商业软件开发了弹塑性损伤构成方程的材料子程序,并通过全面验证确保了子程序和算法的准确性。然后将所提出的算法应用于分析铁塔关键区域的损伤,模拟输电塔倒塌过程中主支腿的塑性-损伤耦合演变。关于局部模型中螺栓连接的处理,结果表明接触模型和刚接模型的结果差异较小。考虑到计算效率,建议采用刚接模型模拟损坏的演变过程。本示例说明了在弯曲和扭转的共同作用下,主支腿外侧发生的损坏,最终导致横向损坏。这项研究为研究极端天气条件下输电塔的破坏机制提供了一种新方法,并提出了精确的加固策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Nonlinear Failure Analysis of Critical Area of Transmission Towers Based on the Continuum Damage Theory

Transmission towers serve as crucial safety pillars within the power transmission system, and their damage can lead to severe consequences. The structural failure of a tower undergoes a process from the initiation of local damage to overall failure, emphasizing the importance of conducting detailed local safety research. This paper introduces a nonlinear damage analysis method rooted in the continuous damage theory, specifically designed for critical areas of transmission towers. A material subroutine for elastic-plastic-damage constitutive equations is developed using commercial software, and thorough verification ensures the accuracy of both the subroutine and the algorithm. The proposed algorithm is then applied to analyze the damage in critical areas of a tower, simulating the plasticity-damage coupling evolution of the main leg during the collapse of the transmission tower. Regarding the treatment of bolt connections in the local model, it indicates that there is a small difference between the contact model and the rigid-joint model results. Taking computational efficiency into consideration, it is recommended to employ rigid-joint model to simulate the evolution of damage. The presented example illustrates damage occurring on the outer side of the main leg, ultimately leading to lateral damage under the combined influence of bending and torsion. This research offers a novel method for investigating the failure mechanisms of transmission towers under extreme weather conditions and proposes precise reinforcement strategies.

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来源期刊
International Transactions on Electrical Energy Systems
International Transactions on Electrical Energy Systems ENGINEERING, ELECTRICAL & ELECTRONIC-
CiteScore
6.70
自引率
8.70%
发文量
342
期刊介绍: International Transactions on Electrical Energy Systems publishes original research results on key advances in the generation, transmission, and distribution of electrical energy systems. Of particular interest are submissions concerning the modeling, analysis, optimization and control of advanced electric power systems. Manuscripts on topics of economics, finance, policies, insulation materials, low-voltage power electronics, plasmas, and magnetics will generally not be considered for review.
期刊最新文献
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