← 返回
光伏发电技术 储能系统 ★ 5.0

光伏组件脱层行为的数值模拟

Numerical simulation of the delamination behavior of photovoltaic modules

作者 Vincent Meslier · Bertrand Chambion · Jean-Luc Bouvard · Pierre-Olivier Bouchard
期刊 Solar Energy
出版日期 2025年1月
卷/期 第 300 卷
技术分类 光伏发电技术
技术标签 储能系统
相关度评分 ★★★★★ 5.0 / 5.0
关键词 Identification of the preferential delamination sites of PV modules.
语言:

中文摘要

摘要 本文通过数值模拟方法研究了光伏(PV)组件的脱层行为。本研究首次提出了一种采用内聚力单元模拟脱层过程的全尺寸光伏组件数值模型。不同材料之间的热膨胀失配可解释光伏组件的脱层行为。该模型模拟了制造过程以及五次热循环——即光伏行业中用于加速老化的测试程序——以评估材料热膨胀特性对脱层风险的影响。此外,本文首次探讨了湿热老化和紫外老化对脱层倾向的影响。模型识别出光伏组件中优先发生脱层的区域,这些区域与实验观察结果一致。同时,本文还分析并讨论了边界条件对模型预测结果的影响。研究强调了准确估算粘附能的重要性,并指出现有文献中缺乏实验测得的II型粘附能数据。该数值模型能够展示封装材料/玻璃界面处的应力分布情况,并揭示了电池尺寸对封装材料/玻璃界面所达到应力水平的影响。电池间的区域能够吸收封装材料中的变形,从而降低界面应力,减轻脱层风险。只要已知材料属性,该模拟工具即可用于建模任意类型的光伏组件。本研究可用于探索新型光伏组件尺寸和新材料,以降低脱层风险。

English Abstract

Abstract In this work, the delamination behavior of photovoltaic (PV) modules is investigated by numerical simulation. This work is the first to propose a numerical model representing a full-size PV module using cohesive zone elements to simulate the delamination process. The thermal expansion mismatch of the different materials can explain the delamination behavior of PV modules. The model simulates the manufacturing process and five thermal cycles - an accelerated aging test used in the PV industry - to assess how the thermal expansion behavior of materials influences the risk of delamination. Furthermore, the impact of humid aging and UV aging on the delamination tendency are investigated for the first time. The model identifies the preferential delamination sites in a PV module, which align with experimental observations. Additionally, the influence of boundary conditions on the model’s predictions is examined and discussed. The need for better estimation of adhesion energy is highlighted, as is the lack of experimental Mode II adhesion energy data in the literature. This numerical model displays the stress distribution at the encapsulant/glass interface. The influence of the cell size on the stress level reached at the encapsulant/glass interface is also revealed. The inter-cell region absorbs deformation in the encapsulant, reducing interface stress and mitigating the risk of delamination. This simulation tool can model any PV module, provided the material properties are known. This work can be used to investigate new PV module dimensions and new materials to reduce the risk of delamination.
S

SunView 深度解读

该光伏组件分层失效数值模拟技术对阳光电源SG系列光伏逆变器及PowerTitan储能系统具有重要价值。研究揭示的热膨胀失配导致分层机理,可指导我们优化1500V高压系统中组件选型标准,降低长期运行失效风险。模型识别的优先分层位置与电池尺寸影响,可应用于iSolarCloud平台的预测性维护算法,通过热成像与IV曲线分析提前预警分层缺陷。研究强调的湿热与UV老化影响,为储能系统PV侧组件全生命周期管理提供理论依据,助力提升系统25年运行可靠性。