基于现场数据的高压电力电缆金属护套电流估算方法

IF 3.6 3区 计算机科学 Q2 COMPUTER SCIENCE, INFORMATION SYSTEMS
Junping Cao;Yanqing Xuan;Yuntu Jiang;Yangchun Cheng;Bowen Wang;Xubo Zhang;Haoliang Ye;Zijian Huang
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引用次数: 0

摘要

高压单芯屏蔽电力电缆金属护套接地系统中,护套电流是故障诊断的重要指标。在实际工程中,由于缺乏精确的电缆电气和结构参数及布局细节,很难用理论公式准确计算出无缺陷护套电流值,可能导致误判。本文提出了一种数据驱动的功能方法来估计正常的护套电流。该方法利用参考电缆段现场测量的护套电流数据,根据两段电缆的相似性以及护套电流与关键因素之间的关系,估算出目标电缆段的正常护套电流。利用多导体传输线理论和双端口电网理论建立了护套电流计算模型,分析了护套电流的影响因素。通过对三叶草、平面和直角三种布置形式的仿真,推导出护套电流与接地电阻、长度不平衡率、平均小段长度、负载电流等关键因素之间的拟合函数。在这些拟合函数的基础上,提出了考虑目标断面与参考断面影响因素差异的估计公式。这种方法可以在不事先知道电感、感应电位或电力电缆的其他电气参数的情况下测定正常护套电流。从而提高了电缆护套系统缺陷诊断的准确性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Estimation Method of Metallic Sheath Current of High-Voltage Power Cables Based on Field Data
Sheath current is a critical indicator for defect diagnosis in the metallic sheath grounding system of high-voltage single-core shielded power cables. In practical engineering, the absence of precise cable electric and structural parameters and layout details makes it difficult to accurately calculate defect-free sheath current values using theoretical formulas, potentially leading to misjudgment. This paper proposes a data-driven functional methodology for estimating the normal sheath current. The approach estimates the normal sheath current of a target cable section using field-measured sheath current data from a reference cable section, based on the similarity between the two sections and the relationship between sheath current and key factors. A sheath current calculation model is established using multi-conductor transmission line theory and two-port electrical network theory to analyze the influence factors on sheath current. Through simulations under trefoil, flat, and right-angle layout formation, fitting functions are derived to describe the relationship between sheath current and key factors, including ground resistance, length unbalance rate, average minor section length, and load current. Based on these fitting functions, an estimation formula is proposed to account for differences between the target and reference sections in terms of influencing factors. This method enables the determination of normal sheath current without prior knowledge of inductance, induced potential, or other electrical parameters of the power cable. As a result, it improves the accuracy of defect diagnosis in cable sheath systems.
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来源期刊
IEEE Access
IEEE Access COMPUTER SCIENCE, INFORMATION SYSTEMSENGIN-ENGINEERING, ELECTRICAL & ELECTRONIC
CiteScore
9.80
自引率
7.70%
发文量
6673
审稿时长
6 weeks
期刊介绍: IEEE Access® is a multidisciplinary, open access (OA), applications-oriented, all-electronic archival journal that continuously presents the results of original research or development across all of IEEE''s fields of interest. IEEE Access will publish articles that are of high interest to readers, original, technically correct, and clearly presented. Supported by author publication charges (APC), its hallmarks are a rapid peer review and publication process with open access to all readers. Unlike IEEE''s traditional Transactions or Journals, reviews are "binary", in that reviewers will either Accept or Reject an article in the form it is submitted in order to achieve rapid turnaround. Especially encouraged are submissions on: Multidisciplinary topics, or applications-oriented articles and negative results that do not fit within the scope of IEEE''s traditional journals. Practical articles discussing new experiments or measurement techniques, interesting solutions to engineering. Development of new or improved fabrication or manufacturing techniques. Reviews or survey articles of new or evolving fields oriented to assist others in understanding the new area.
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