利用增强型有限差分时域法和可变电池尺寸法评估大型光伏系统在雷电事件中的瞬态行为

IF 4.4 2区 工程技术 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC
High Voltage Pub Date : 2024-04-17 DOI:10.1049/hve2.12440
Ibrahim Hetita, Diaa-Eldin A. Mansour, Yang Han, Ping Yang, Congling Wang, Mohamed M. F. Darwish, Matti Lehtonen, Amr S. Zalhaf
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引用次数: 0

摘要

光伏(PV)阵列通常安装在开放区域,因此很容易遭受雷击,从而导致电池退化、完全损坏、服务中断和维护成本增加。因此,当务之急是通过评估光伏阵列在雷击事件中的瞬态行为,开发出有效且高效的防雷系统。本研究旨在利用有限差分时域 (FDTD) 技术评估大型光伏系统在遭受雷击时的瞬态分析。对安装系统内各点的瞬态过电压进行计算。为了优化 FDTD 方法的执行时间,使其更适用于功能较弱的硬件,我们采用了可变电池尺寸的方法。具体来说,在接地系统中使用较大的单元尺寸,而在安装系统中使用较小的单元尺寸。利用 FDTD 方法计算了大型光伏系统在不同情况下的瞬态过电压的时间变化,包括击穿点、土壤电阻率和金属框架的变化。仿真结果表明,最高的瞬态过电压出现在击穿点,这些值随着光伏金属框架的存在以及土壤电阻率的增大而增大。此外,还比较了 FDTD 方法和部分元素等效电路 (PEEC) 方法在安装系统四个角点上获得的过电压结果,以证明 FDTD 方法具有更高的精度。此外,还在一个小型光伏系统上进行了实验室实验,以验证模拟结果。将 FDTD 方法和 PEEC 方法计算出的过电压与测量值进行比较,发现 FDTD 方法和 PEEC 方法的平均绝对误差分别为 5%和 11%,从而证实了 FDTD 仿真模型的准确性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Evaluating transient behaviour of large-scale photovoltaic systems during lightning events using enhanced finite difference time domain method with variable cell size approach

Evaluating transient behaviour of large-scale photovoltaic systems during lightning events using enhanced finite difference time domain method with variable cell size approach

Photovoltaic (PV) arrays are usually installed in open areas; hence, they are vulnerable to lightning strikes that can result in cell degradation, complete damage, service disruption, and increased maintenance costs. As a result, it is imperative to develop an effective and efficient lightning protection system by evaluating the transient behaviour of PV arrays during lightning events. The aim is to evaluate the transient analysis of large-scale PV systems when subjected to lightning strikes using the finite difference time domain (FDTD) technique. Transient overvoltages are calculated at various points within the mounting system. To optimise the FDTD method's execution time and make it more suitable for less powerful hardware, a variable cell size approach is employed. Specifically, larger cell dimensions are used in the earthing system and smaller cell dimensions are used in the mounting system. The FDTD method is utilised to calculate the temporal variation of transient overvoltages for large-scale PV systems under different scenarios, including variations in the striking point, soil resistivity, and the presence of a metal frame. Simulation results indicate that the highest transient overvoltages occur at the striking point, and these values increase with the presence of a PV metal frame as well as with higher soil resistivity. Furthermore, a comparison is performed between the overvoltage results obtained from the FDTD approach and the partial element equivalent circuit (PEEC) method at the four corner points of the mounting systems to demonstrate the superior accuracy of the FDTD method. Besides, a laboratory experiment is conducted on a small-scale PV system to validate the simulation results. The calculated overvoltages obtained from the FDTD and PEEC methods are compared with the measured values, yielding a mean absolute error of 5% and 11% for the FDTD and PEEC methods, respectively, thereby confirming the accuracy of the FDTD simulation model.

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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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