用空中线路配置的梯度控制导体和河马优化算法来缓解埋藏管道上的感应合效应
Kelthoum Hachani1, Bentouati Bachir1, Djekidel Rabah2
1Renewable Energies and Energy Management Laboratory (LMSEERGE), Engineering Materials, Energy Systems, University of Laghouat, Laghouat, Algeria.
Scientific reports
|March 3, 2026
概括
超高压 (EHV) 输电线路在附近的管道上引发危险的电压,危及安全和完整性. 缓解策略,包括导体梯度控制和使用河马优化 (HO) 算法的优化安排,有效地降低了这些风险.
科学领域:
- 电气工程 电气工程
- 电磁学 电磁学 电磁学 电磁学
- 管道的完整性 管道的完整性
背景情况:
- 超高压 (EHV) 空中输电线路产生电磁场,在附近的金属管道中诱导电压和电流.
- 这些诱导电压对管道结构完整性和运行和维护期间人员安全构成重大风险.
研究的目的:
- 提出一种准静态建模方法,用于评估EHV线路附近的埋藏管道上的电磁干扰 (EMI).
- 评估诱导的电压水平及其潜在的危害.
- 提出和评估缓解策略,以确保安全和符合NACE标准.
主要方法:
- 利用准静态建模和电网分析来模拟EMI效应.
- 根据NACE标准评估的诱导电压水平.
- 采用河马优化 (HO) 算法来控制导体梯度和优化几何排列.
主要成果:
- 模拟证实,埋藏管道的诱导交流电压明显超过NACE标准限制.
- 确定了包括人员电击和加速金属腐蚀在内的风险.
- 拟议的缓解技术成功地在允许的安全限度内降低了诱导电压.
结论:
- 来自EHV线路的电磁干扰对埋藏的管道和人员构成极大风险.
- 由HO算法指导的导体梯度控制和优化的几何排列是有效的缓解策略.
- 实施这些方法可以确保遵守安全标准,并消除潜在的危险.
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