应用于可控谐振组合断路器快速机械开关的有限元联合仿真模型

IF 4.4 2区 工程技术 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC
High Voltage Pub Date : 2025-04-16 DOI:10.1049/hve2.70012
Puyi Cui, Guoli Li, Zehui Sun, Jiazi Xu, Guoyong Zhang, Zhong Chen, Weiping Guan
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引用次数: 0

摘要

快速机械开关(fms)是直流断路器(dccb)的关键部件,要求在直流断线场景下,开关动作时间在3ms内保持足够的断开距离,同时保证较长的使用寿命。分断机制对dccb的电流中断能力有重要影响。斥力机构的运行,以及电弧的形态及其在灭弧腔内的转变,共同影响了FMSs的破断性能。本文对作为可控谐振组合断路器(crcb)关键部件的FMSs进行了全面分析。本研究建立了一种基于斥力机构放电等效电路,结合电磁场和固体场的多物理场耦合仿真分析方法。通过建立全循环磁流体动力粒子电弧(MHP)模型,结合有限元关节模型(FEJM)进行联合仿真,系统地探讨了叠加电流中断过程中电弧特性的演化规律。重点分析了叠加电弧零区的物理过程、电弧的多物理场耦合关系以及与外部特征参数的相互作用机理。进一步结合优化设计方法,通过实验验证了该模型的有效性,为有效反映FMS断裂过程中核心部件的应力问题提供了全面的技术支持,为FMS中机械运动部件的优化设计提供了准确的理论参考。它准确地反映了FMS开断时的灭弧过程,为整个断路器电路参数的选择和设计提供了一种方便的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Finite element joint simulation model applied to fast mechanical switching of controlled resonance combination circuit breakers

Finite element joint simulation model applied to fast mechanical switching of controlled resonance combination circuit breakers

Fast mechanical switches (FMSs) are critical components of DC circuit breakers (DCCBs), which require the switch action time to break to a sufficient distance within 3 ms in the DC line breaking scenario, while ensuring a long service life. The breaking mechanism significantly affects the current interruption capability of DCCBs. The operation of the repulsion mechanism, along with the morphology of the arc and its transformation within the interrupter chamber, collectively influence the breaking performance of the FMSs. This paper presents a comprehensive analysis of the FMSs, which serves as the pivotal component of controlled resonance combination circuit breakers (CRCBs). This study establishes a multi physics coupling simulation analysis method based on the equivalent circuit of repulsion mechanism discharge, combined with electromagnetic and solid mechanics fields. By constructing a full cycle magnetohydrodynamic particle arc (MHP) model and using a combined simulation of Finite Element joint model (FEJM), the evolution law of arc characteristics during the superimposed current interruption process was systematically explored. The focus was on analysing the physical process of the zero zone of the superimposed arc, the multi physics field coupling relationship of the arc, and the interaction mechanism with external characteristic parameters. Further combining with optimisation design methods, the effectiveness of the model was verified through experiments, FEJM provides comprehensive technical support for effectively reflecting the stress issues of core components during the breaking process of FMS and can provide accurate theoretical references for the optimisation design of mechanical motion components in FMS. It also accurately represents the arc extinguishing process during the breaking of FMS and provides a convenient method for the selection and design of circuit parameters for the entire circuit breaker.

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来源期刊
High Voltage
High Voltage Energy-Energy Engineering and Power Technology
CiteScore
9.60
自引率
27.30%
发文量
97
审稿时长
21 weeks
期刊介绍: High Voltage aims to attract original research papers and review articles. The scope covers high-voltage power engineering and high voltage applications, including experimental, computational (including simulation and modelling) and theoretical studies, which include: Electrical Insulation ● Outdoor, indoor, solid, liquid and gas insulation ● Transient voltages and overvoltage protection ● Nano-dielectrics and new insulation materials ● Condition monitoring and maintenance Discharge and plasmas, pulsed power ● Electrical discharge, plasma generation and applications ● Interactions of plasma with surfaces ● Pulsed power science and technology High-field effects ● Computation, measurements of Intensive Electromagnetic Field ● Electromagnetic compatibility ● Biomedical effects ● Environmental effects and protection High Voltage Engineering ● Design problems, testing and measuring techniques ● Equipment development and asset management ● Smart Grid, live line working ● AC/DC power electronics ● UHV power transmission Special Issues. Call for papers: Interface Charging Phenomena for Dielectric Materials - https://digital-library.theiet.org/files/HVE_CFP_ICP.pdf Emerging Materials For High Voltage Applications - https://digital-library.theiet.org/files/HVE_CFP_EMHVA.pdf
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