A physics-based framework for modelling the performance and reliability of BIPV systems

IF 6 2区 工程技术 Q2 ENERGY & FUELS Solar Energy Pub Date : 2024-07-01 DOI:10.1016/j.solener.2024.112730
Ismail Kaaya , Abdella Alzade , Sara Bouguerra , Nikoleta Kyranaki , Apostolos Bakovasilis , Santhosh Ramesh , Dirk Saelens , Michaël Daenen , Arnaud Morlier
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Abstract

Building-Integrated Photovoltaic (BIPV) systems usually operate under elevated temperatures and are under frequent shading in comparison to standard or ground installed PV systems. These operating conditions might positively or negatively influence the performance and reliability of BIPV systems components. This study introduces a comprehensive simulation framework designed to model and assess the performance and reliability of BIPV systems. The framework incorporates sub-models for buildings, energy yield, and PV module/inverter reliability, some of which are validated using experimental data from a BIPV demonstrator. Initially, we applied the framework to demonstrate the critical role of precisely estimating the micro-climate surrounding the BIPV system. This inclusion in the electrical/energy yield model, as opposed to relying solely on ambient climate conditions, significantly enhances modeling accuracy. Furthermore, the framework is employed to simulate the reliability implications of BIPV systems installed with and without ventilation. Our analysis reveals that a properly installed BIPV system with ventilation surpasses the 25-year module warranty in all studied climate zones. Conversely, systems without ventilation exhibit a substantial reduction in module lifetime, particularly in hot and dry, and hot and humid climates. Lastly, we employed the framework to assess the impact of shading on PV module reliability. While shaded BIPV systems demonstrated an improvement in module lifetime due to reduced climatic stressors, the gains were insufficient to offset energy losses from shading effects. Our proposed framework offers versatility for diverse “what if” simulations, enabling the evaluation of performance and reliability aspects of BIPV systems crucial for research and BIPV project bankability.

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基于物理学的 BIPV 系统性能和可靠性建模框架
与标准或地面安装的光伏系统相比,光伏建筑一体化(BIPV)系统通常在较高的温度下运行,并经常受到遮挡。这些运行条件可能会对 BIPV 系统组件的性能和可靠性产生积极或消极的影响。本研究介绍了一个综合模拟框架,旨在模拟和评估 BIPV 系统的性能和可靠性。该框架包含建筑物、能源产量和光伏模块/逆变器可靠性的子模型,其中一些子模型利用 BIPV 演示器的实验数据进行了验证。最初,我们应用该框架来证明精确估算 BIPV 系统周围小气候的关键作用。与仅依赖环境气候条件相比,将其纳入电能/能量产出模型可显著提高建模精度。此外,我们还利用该框架模拟了有通风和无通风安装的 BIPV 系统对可靠性的影响。我们的分析表明,在所有研究的气候区,正确安装的带通风的 BIPV 系统都能超过 25 年的组件保修期。相反,不通风的系统则会大幅缩短组件的使用寿命,尤其是在炎热干燥和炎热潮湿的气候条件下。最后,我们利用该框架评估了遮阳对光伏组件可靠性的影响。虽然遮阳的 BIPV 系统因气候压力的减少而提高了模块的使用寿命,但其收益不足以抵消遮阳效应造成的能量损失。我们提出的框架为各种 "假设 "模拟提供了多功能性,可对 BIPV 系统的性能和可靠性进行评估,这对研究和 BIPV 项目的银行可行性至关重要。
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来源期刊
Solar Energy
Solar Energy 工程技术-能源与燃料
CiteScore
13.90
自引率
9.00%
发文量
0
审稿时长
47 days
期刊介绍: Solar Energy welcomes manuscripts presenting information not previously published in journals on any aspect of solar energy research, development, application, measurement or policy. The term "solar energy" in this context includes the indirect uses such as wind energy and biomass
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