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基于累积和事件段识别与改进谱聚类的锂离子电池储能系统内短路故障检测方法

肖先勇 陈智凡 汪颖 何涛 张逢蓉

电网技术2024,Vol.48Issue(2):658-667,中插44-中插46,13.
电网技术2024,Vol.48Issue(2):658-667,中插44-中插46,13.DOI:10.13335/j.1000-3673.pst.2023.0171

基于累积和事件段识别与改进谱聚类的锂离子电池储能系统内短路故障检测方法

Internal Short Circuit Fault Detection in Li-ion Battery Storage System Based on CUSUM Event Segment Identification and Improved Spectral Clustering Algorithm

肖先勇 1陈智凡 1汪颖 1何涛 2张逢蓉2

作者信息

  • 1. 四川大学电气工程学院,四川省 成都市 610065
  • 2. 新疆油田公司,新疆维吾尔自治区 克拉玛依市 834000
  • 折叠

摘要

Abstract

The detection of the internal short circuit(ISC)faults in a li-ion battery energy storage system is restricted by the real-time performance of the online detection and the availability of the monitoring data.This is an urgent problem to be solved in the safe operation of the li-ion battery energy storage system.This paper proposes an detection method of the ISC faults in a li-ion battery energy storage system based on the CUSUM event segment identification and the improved spectral clustering algorithm(SCA).Firstly,considering the voltage/temperature characteristics of the ISC fault,the suspected ISC fault event segment is identified based on the CUSUM transient event detection algorithm.Secondly,the 3D fault features are constructed to characterize the feature attributes of the short-circuit faults in the detection object.Then,the characteristic distance matrix of the ISC fault based on the Wasserstein measure is constructed to detect the sparsity characteristics of the points in the three-dimensional space,and objectively delineate the fault clustering in order to achieve the detection of the ISC fault.The experiment platform of the li-ion battery is built,and the electric-thermal coupling simulation model of the li-ion battery is established based on the measured data.The results show that the proposed method is able to accurately identify the suspected ISC fault event segment,and realize the fault detection among different series,parallel forms and fault types,which proves the correctness and feasibility of the proposed method.

关键词

内短路故障检测/事件段检测/故障特征/Wasserstein距离/改进谱聚类算法

Key words

internal short circuit fault detection/event segment identification/fault features/Wasserstein distance/improved spectral clustering algorithm(SCA)clustering

分类

信息技术与安全科学

引用本文复制引用

肖先勇,陈智凡,汪颖,何涛,张逢蓉..基于累积和事件段识别与改进谱聚类的锂离子电池储能系统内短路故障检测方法[J].电网技术,2024,48(2):658-667,中插44-中插46,13.

基金项目

四川省科技计划资助项目(2022YFQ0063).Project Supported by Sichuan Science and Technology Program(2022YFQ0063). (2022YFQ0063)

电网技术

OA北大核心CSTPCD

1000-3673

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