{"title":"强风作用下 Y 型绝缘子串的风偏特性研究","authors":"Xianren Wang, Chuiwei Yang, Jiaqian Zhang, Junyu Zhou, Hangzhang Liang, Jing Jiang, Yonghui Cai, Mojia Huang, Zhiwen Lan","doi":"10.1155/2024/5542173","DOIUrl":null,"url":null,"abstract":"Under the action of extreme wind load, the overhead transmission line will generate a wind deflection flashover phenomenon, which seriously affects the normal operation of the transmission system and causes significant losses. Y-type insulator string (hereinafter referred to as Y-string) is an optimized structural form to reduce the wind deflection flashover in windy areas, and the dynamic mechanical characteristics of Y-string under the action of pulsating wind is an important factor that influences the design of the overhead transmission line. The calculation method of pulsating wind load and the static calculation method of wind deflection displacement of Y-string are obtained through theoretical derivation. The mathematical software is used to simulate the time course of pulsating wind speed and convert it into the time course of wind load, establish the finite element model of insulator string, simulate and analyze the wind deflection process of Y-string under the action of pulsating wind by using the finite element method, and calculate the horizontal displacement of Y-string under the excitation of pulsating wind and make a comparative analysis with the results of the static calculations. The results show that the wind deflection displacement of the Y-string under pulsating wind is 1.12–1.28 times that under steady-state wind, which reveals the reason for the wind deflection flashover phenomenon and provides theoretical references for the design and improvement of overhead transmission lines.","PeriodicalId":7242,"journal":{"name":"Advances in Civil Engineering","volume":"5 1","pages":""},"PeriodicalIF":1.5000,"publicationDate":"2024-02-08","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Study on the Wind Deviation Characteristics of Y-Type Insulator String under the Action of Strong Wind\",\"authors\":\"Xianren Wang, Chuiwei Yang, Jiaqian Zhang, Junyu Zhou, Hangzhang Liang, Jing Jiang, Yonghui Cai, Mojia Huang, Zhiwen Lan\",\"doi\":\"10.1155/2024/5542173\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"Under the action of extreme wind load, the overhead transmission line will generate a wind deflection flashover phenomenon, which seriously affects the normal operation of the transmission system and causes significant losses. Y-type insulator string (hereinafter referred to as Y-string) is an optimized structural form to reduce the wind deflection flashover in windy areas, and the dynamic mechanical characteristics of Y-string under the action of pulsating wind is an important factor that influences the design of the overhead transmission line. The calculation method of pulsating wind load and the static calculation method of wind deflection displacement of Y-string are obtained through theoretical derivation. The mathematical software is used to simulate the time course of pulsating wind speed and convert it into the time course of wind load, establish the finite element model of insulator string, simulate and analyze the wind deflection process of Y-string under the action of pulsating wind by using the finite element method, and calculate the horizontal displacement of Y-string under the excitation of pulsating wind and make a comparative analysis with the results of the static calculations. 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引用次数: 0
摘要
在极端风荷载作用下,架空输电线路会产生风偏闪络现象,严重影响输电系统的正常运行,造成重大损失。Y型绝缘子串(以下简称Y串)是减少大风地区风偏闪络的优化结构形式,Y串在脉动风作用下的动态力学特性是影响架空输电线路设计的重要因素。通过理论推导得到了脉动风荷载的计算方法和 Y 型绳风挠度位移的静力计算方法。利用数学软件模拟脉动风速的时间过程并转换为风荷载的时间过程,建立绝缘子串的有限元模型,利用有限元法模拟分析 Y 型绳在脉动风作用下的风偏过程,计算 Y 型绳在脉动风激励下的水平位移,并与静力计算结果进行对比分析。结果表明,脉动风作用下 Y 型绳的风挠位移是稳态风作用下的 1.12-1.28 倍,揭示了风挠闪络现象产生的原因,为架空输电线路的设计和改进提供了理论参考。
Study on the Wind Deviation Characteristics of Y-Type Insulator String under the Action of Strong Wind
Under the action of extreme wind load, the overhead transmission line will generate a wind deflection flashover phenomenon, which seriously affects the normal operation of the transmission system and causes significant losses. Y-type insulator string (hereinafter referred to as Y-string) is an optimized structural form to reduce the wind deflection flashover in windy areas, and the dynamic mechanical characteristics of Y-string under the action of pulsating wind is an important factor that influences the design of the overhead transmission line. The calculation method of pulsating wind load and the static calculation method of wind deflection displacement of Y-string are obtained through theoretical derivation. The mathematical software is used to simulate the time course of pulsating wind speed and convert it into the time course of wind load, establish the finite element model of insulator string, simulate and analyze the wind deflection process of Y-string under the action of pulsating wind by using the finite element method, and calculate the horizontal displacement of Y-string under the excitation of pulsating wind and make a comparative analysis with the results of the static calculations. The results show that the wind deflection displacement of the Y-string under pulsating wind is 1.12–1.28 times that under steady-state wind, which reveals the reason for the wind deflection flashover phenomenon and provides theoretical references for the design and improvement of overhead transmission lines.
期刊介绍:
Advances in Civil Engineering publishes papers in all areas of civil engineering. The journal welcomes submissions across a range of disciplines, and publishes both theoretical and practical studies. Contributions from academia and from industry are equally encouraged.
Subject areas include (but are by no means limited to):
-Structural mechanics and engineering-
Structural design and construction management-
Structural analysis and computational mechanics-
Construction technology and implementation-
Construction materials design and engineering-
Highway and transport engineering-
Bridge and tunnel engineering-
Municipal and urban engineering-
Coastal, harbour and offshore engineering--
Geotechnical and earthquake engineering
Engineering for water, waste, energy, and environmental applications-
Hydraulic engineering and fluid mechanics-
Surveying, monitoring, and control systems in construction-
Health and safety in a civil engineering setting.
Advances in Civil Engineering also publishes focused review articles that examine the state of the art, identify emerging trends, and suggest future directions for developing fields.