油中纤维素颗粒的运动特性--同步帧间成像和电压观测分析

IF 2.9 3区 工程技术 Q2 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Transactions on Dielectrics and Electrical Insulation Pub Date : 2024-07-19 DOI:10.1109/TDEI.2024.3431442
Yijin Liu;Tao Zhao;Yunpeng Liu;Jiaxue Xu;Yunuo Liu;Chaojie Yang
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引用次数: 0

摘要

纤维素颗粒的运动和聚集降低了变压器的绝缘性能,从而增加了油纸绝缘失效的风险。本研究搭建实验平台,同步记录粒子运动图像和电压,观察交流电压下粒子在电极间的典型运动模式,即前后运动模式。纤维素颗粒的运动和交流电压相位在这种运动模式之间的连接随后被检查,深入到粒子运动的轨迹,这是通过图像处理技术的实现捕获。结果表明,纤维素颗粒并不总是沿着电场线的方向运动。在工频电压波形的一个周期内,粒子呈现两种状态:停留在电极表面和在油隙中移动,每种状态约占一半的时间。此外,在电压循环的第二和第四象限,纤维素颗粒始终在油隙内移动,而在第一和第三象限,它仍然在电极上。随后,进行了一个分析模型来模拟粒子在电极之间移动的轨迹,并计算和分析了速度变化和施加在粒子上的主要力。结果表明,粒子倾向于向电场越集中的区域运动,越靠近球形电极的中心,其运动轨迹越密集。本研究为后续纤维素杂质的绝缘危害评估提供了理论依据。
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Motion Characteristics of Cellulose Particles in Oil—Analysis of the Synchronized Interframe Imaging and Voltage Observations
The movement and aggregation of cellulose particles reduce the insulation performance of the transformer, thereby increasing the risk of oil-paper insulation failure. In this study, an experimental platform is constructed to synchronously record the particle motion images and voltage, allowing for the observation of the typical motion mode of the particle between electrodes, namely, the back-and-forth motion mode, under alternating current (ac) voltage. The connection between the cellulose particle’s movement and the ac voltage phase in this motion mode is subsequently examined, delving into the trajectory of particle motion, which is captured through the implementation of image processing technology. The results indicate that the cellulose particle does not always move in the direction of the electric field lines. Within one cycle of the power frequency voltage waveform, the particle exhibits two states: staying on the electrode surface and moving in the oil gap, with each state occupying approximately half of the time. In addition, the cellulose particle consistently moves within the oil gap during the second and fourth quadrants of the voltage cycle, while it remains on the electrodes during the first and third quadrants. Subsequently, an analysis model is conducted to simulate the particle’s trajectory as it moves between the electrodes, coupled with the calculations and analysis of the variation in the velocity and the primary forces exerted on the particle. The results show that the particle tends to move toward the more concentrated area of the electric field, and the closer it is to the center of the spherical electrode, the denser its motion trajectory is. This study provides a theoretical basis for the subsequent insulation hazard assessment of cellulose impurities.
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来源期刊
IEEE Transactions on Dielectrics and Electrical Insulation
IEEE Transactions on Dielectrics and Electrical Insulation 工程技术-工程:电子与电气
CiteScore
6.00
自引率
22.60%
发文量
309
审稿时长
5.2 months
期刊介绍: Topics that are concerned with dielectric phenomena and measurements, with development and characterization of gaseous, vacuum, liquid and solid electrical insulating materials and systems; and with utilization of these materials in circuits and systems under condition of use.
期刊最新文献
2024 Index IEEE Transactions on Dielectrics and Electrical Insulation Vol. 31 Table of Contents Editorial Condition Monitoring and Diagnostics of Electrical Insulation IEEE Transactions on Dielectrics and Electrical Insulation Information for Authors IEEE Transactions on Dielectrics and Electrical Insulation Publication Information
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