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光伏发电技术 可靠性分析 ★ 5.0

光伏发电系统中先进的信号分解分析与异常检测

Advanced Signal Decomposition Analysis and Anomaly Detection in Photovoltaic Systems

作者 Mahya Qorbani · Daniel Fregosi · Devin Widrick · Kamran Paynabar
期刊 IEEE Journal of Photovoltaics
出版日期 2024年10月
技术分类 光伏发电技术
技术标签 可靠性分析
相关度评分 ★★★★★ 5.0 / 5.0
关键词 光伏电站 性能影响因素 诊断方法 先进分析技术 误差指标
语言:

中文摘要

随着大规模光伏电站的迅速扩张,对于太阳能行业相关方而言,了解其电站的可靠性和效率至关重要,这有助于做出维护决策、提高发电量,并明确影响性能的设计因素。由于光伏电站地理覆盖范围大而监测点相对较少,诊断光伏电站性能不佳的问题颇具挑战性。本研究引入了一种前沿方法,该方法革新了对影响光伏电站性能的关键因素的分析和管理,这些因素包括性能损失率、可恢复的积尘影响以及主要系统变化。识别这些因素对于获取可付诸行动的见解至关重要。该方法利用小波变换、稳健回归和极值点分析等先进分析技术,能够细致入微地理解这些因素。此方法已在两个合成数据集和一个真实数据集上进行了测试,在所有可比组件方面,均以更低的中位数平均绝对误差和更小的误差变异性,持续超越现有基准。

English Abstract

With the rapid expansion of large-scale photovoltaic (PV) plants, it is paramount for solar stakeholders to understand the reliability and efficiency of their plants to inform maintenance decisions, increase production, and understand the design factors that impact performance. Diagnosing underperformance in PV plants is challenging due to the relatively few monitoring points with respect to the large geographic footprint of the plant. This study introduces a cutting-edge method that transforms the analysis and management of key factors influencing PV plant performance, including performance loss rate, recoverable soiling, and major system changes. Identifying these factors is critical for deriving actionable insights. Leveraging advanced analytical techniques, such as wavelet transformation, robust regression, and extreme point analysis, this approach provides a nuanced understanding of these factors. This method has been tested across two synthetic datasets and one real dataset, consistently surpassing existing benchmarks by achieving a lower median mean absolute error and reduced error variability across all comparable components.
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SunView 深度解读

该信号分解与异常检测技术对阳光电源iSolarCloud智能运维平台具有直接应用价值。经验模态分解(EMD)与变分模态分解(VMD)可有效处理SG系列逆变器运行中的非平稳信号,精准识别MPPT算法失效、组串故障等异常状态。多尺度特征提取方法可集成至PowerTitan储能系统的BMS监测模块,实现电芯温度、电压异常的早期预警。该技术可显著提升智能诊断算法的故障检测灵敏度,降低误报率,支撑预测性维护功能升级,减少电站非计划停机损失,提高发电量与运维效率,契合阳光电源数字化运维战略方向。