A Review of Photovoltaic Module Failure and Degradation Mechanisms: Causes and Detection Techniques

Solar Pub Date : 2024-01-09 DOI:10.3390/solar4010003
Hussain Al Mahdi, Paul G. Leahy, Mohammad Alghoul, Alan P. Morrison
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引用次数: 1

Abstract

With the global increase in the deployment of photovoltaic (PV) modules in recent years, the need to explore and understand their reported failure mechanisms has become crucial. Despite PV modules being considered reliable devices, failures and extreme degradations often occur. Some degradations and failures within the normal range may be minor and not cause significant harm. Others may initially be mild but can rapidly deteriorate, leading to catastrophic accidents, particularly in harsh environments. This paper conducts a state-of-the-art literature review to examine PV failures, their types, and their root causes based on the components of PV modules (from protective glass to junction box). It outlines the hazardous consequences arising from PV module failures and describes the potential damage they can bring to the PV system. The literature reveals that each component is susceptible to specific types of failure, with some components deteriorating on their own and others impacting additional PV components, leading to more severe failures. Finally, this review briefly summarises PV failure detection techniques, emphasising the significance of electrical characterisation techniques and underlining the importance of considering more electrical parameters. Most importantly, this review identifies the most prevalent degradation processes, laying the foundation for further investigation by the PV research community through modelling and experimental studies. This allows for early detection by comparing PV performance when failures or degradation occur to prevent serious progression. It is worth noting that most of the studies included in this review primarily focus on detailing failures and degradation observed in PV operations, which can be attributed to various factors, including the manufacturing process and other external influences. Hence, they provide explanations of these failure mechanisms and causes but do not extensively explore corrective actions or propose solutions based on either laboratory experiments or real-world experience. Although, within this field of study, there are corresponding studies that have designed experiments to suggest preventive measures and potential solutions, an in-depth review of those studies is beyond the scope of this paper. However, this paper, in turn, serves as a valuable resource for scholars by confining PV failures to critically evaluate available studies for preventative measures and corrective actions.
光伏组件故障和退化机制综述:原因和检测技术
近年来,随着全球光伏(PV)组件部署的增加,探索和了解其故障机制的需求变得至关重要。尽管光伏组件被认为是可靠的设备,但故障和极端降解仍时有发生。一些正常范围内的退化和故障可能很轻微,不会造成重大伤害。另一些降解和故障最初可能很轻微,但会迅速恶化,导致灾难性事故,尤其是在恶劣环境中。本文根据光伏组件(从保护玻璃到接线盒)的组件,对光伏故障、故障类型及其根本原因进行了最新的文献综述。它概述了光伏组件故障产生的危险后果,并描述了这些故障可能给光伏系统带来的潜在损害。文献显示,每个组件都容易受到特定类型故障的影响,一些组件会自行恶化,而另一些组件则会影响其他光伏组件,导致更严重的故障。最后,本综述简要总结了光伏故障检测技术,强调了电气表征技术的重要性,并强调了考虑更多电气参数的重要性。最重要的是,本综述确定了最普遍的退化过程,为光伏研究界通过建模和实验研究开展进一步调查奠定了基础。这样就可以在发生故障或退化时,通过比较光伏性能进行早期检测,防止问题严重恶化。值得注意的是,本综述中包含的大多数研究主要侧重于详细说明在光伏操作中观察到的故障和退化,这些故障和退化可归因于各种因素,包括制造工艺和其他外部影响。因此,这些研究提供了对这些故障机制和原因的解释,但并未广泛探讨纠正措施,也未根据实验室实验或实际经验提出解决方案。尽管在这一研究领域,也有相应的研究通过设计实验来提出预防措施和潜在的解决方案,但对这些研究的深入评述超出了本文的范围。不过,本文通过对光伏故障进行批判性评估,提出了预防措施和纠正措施,从而为学者们提供了宝贵的资源。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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