← 返回
反向偏置电池光伏系统的高分辨率建模与多尺度实验研究
High-resolution modeling and multiscale experiment study of photovoltaic with reverse-biased cell
| 作者 | Fuxiang Liab · Yunren Sui · Haosheng Lin · Zengguang Sui · Wei Wuab |
| 期刊 | Applied Energy |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 398 卷 |
| 技术分类 | 光伏发电技术 |
| 技术标签 | 储能系统 可靠性分析 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | Full-range I-V measurement reveals the electrical characteristics of solar cell. |
语言:
中文摘要
摘要 光伏(PV)技术在全球能源转型中具有关键作用。影响其效率与可靠性的主要障碍之一是局部遮挡条件(PSC)。深入理解光伏器件的电学行为机制,对于预测和缓解这一问题至关重要。然而,现有研究尚未通过系统的实验探究和模型构建充分解决该问题。本研究致力于系统性地探讨上述问题,采用融合实验与数值模拟的多尺度研究方法。在电池层面,构建了一个测量平台,用于表征太阳能电池在不同工况下(200–1200 W/m²,20–60 °C)的电流-电压(I-V)特性。测量结果表明,辐照度始终影响电池的I-V特性,而温度仅对正向偏置状态下的电池产生影响。基于此深入分析,提出了一种新颖的全范围参数提取数值模型,能够精确估算从反向偏置到正向偏置整个区域的I-V特性。在此基础上,进一步在组件层面开展了在均匀辐照和局部遮挡条件下的实地实验。实验结果发现,遮挡会导致光伏组件的I-V曲线发生塌陷,从而引发功率损失和局部热点现象。完全激活的旁路二极管虽可缓解该现象,但会产生阶梯状的I-V曲线。这些发现推动建立了一个高性能的光伏仿真框架,能够在不忽略反向偏置效应的前提下实现高精度模拟。令人印象深刻的是,该框架在多种遮挡模式下最大相对误差仍保持在6%以下。本多尺度研究揭示了光伏系统真实工作行为及功率损耗模式的内在规律。所提出的光伏仿真器集成了这些研究成果,确保了更高的模拟精度与分辨率。
English Abstract
Abstract Photovoltaic (PV) is critical in the global energy transition. One significant obstacle to their efficiency and reliability is partial shading conditions (PSC). In-depth mechanistic understandings of PV electrical behavior are essential to predict and mitigate this issue. Yet, existing research has not adequately addressed this issue through experiment investigation and model development. This research endeavors to explore these concerns systematically, employing a multiscale approach that integrates both experimental and numerical techniques. At the cell level, a measurement platform is developed to characterize the solar cell current-voltage (I-V) behavior under different conditions (200–1200 W/m 2 , 20–60 °C). Measurement results reveal that irradiance always affects the cell I-V behavior, while temperature only affects the forward-biased cell. The in-depth analysis contributes to a novel numerical model with a full-range parameter extraction method, allowing an accurate I-V estimation from reverse-biased to forward-biased regions. Based on this, a field experiment is conducted at the module level under uniform irradiance conditions and PSCs. The results found shading causes a collapsed I-V curve in the PV module, leading to power loss and localized hot spots. Fully activated bypass diodes can mitigate this phenomenon but will generate staircase-shaped I-V curves. These findings promote a high-performance framework for accurate PV simulation without neglecting reverse-biased effects. Impressively, this framework maintains a maximum relative error below 6 % under various shading patterns. This multiscale research provides insights into realistic PV behaviors and power loss patterns. The proposed PV simulator encapsulates these insights, ensuring heightened accuracy and resolution.
S
SunView 深度解读
该研究对阳光电源SG系列光伏逆变器的MPPT优化技术具有重要价值。文章揭示的反向偏置电池特性和局部遮挡下的热斑效应,可直接应用于提升多路MPPT算法精度,优化旁路二极管保护策略。研究提出的全范围I-V特性建模方法,能增强iSolarCloud平台的故障诊断能力,实现遮挡场景下的精准功率预测和预防性运维。特别是误差低于6%的高精度仿真框架,可集成到1500V系统设计中,提升复杂工况下的发电效率和系统可靠性,减少因遮挡导致的功率损失。