光伏系统的可靠性和可用性分析

Kim Hintz, M. Dazer
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引用次数: 0

摘要

本文介绍了一种新颖的模拟方法,它将光伏(PV)系统组件的可靠性建模与其各自的 I-V 特性曲线相结合。该模拟涵盖了各种系统设计,包括组串逆变器和模块集成逆变器概念,并考虑了多种运行条件下的各种太阳辐照和遮阳情况。通过将可靠性方面与实际运行场景相结合,该方法提供了光伏系统性能的整体视图,考虑了组件故障频率和发生率以及不同维修策略的影响。研究深入探讨了逆变器可靠性和维修策略的选择如何影响光伏系统在各种环境条件下的盈利能力。全面的统计分析显示,逆变器寿命和维修策略对盈利能力都有显著影响。主要结果表明,在德国,组串式逆变器设计的最佳维修极限约为每天 2.5 千瓦时的功率损失。相比之下,如果模块-逆变器概念中的逆变器寿命足够长,则无需维修即可获得最佳利润。这些发现突出表明,在确定最佳维修策略时,逆变器寿命、应用方案和环境条件之间存在着错综复杂的关系。
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Reliability and Availability Analysis of Photovoltaic Systems
This paper introduces a novel simulation that combines the reliability modeling of photovoltaic (PV) system components with their respective I-V characteristic curves. The simulation encompasses varied system designs, including string inverter and module-integrated inverter concepts, and accounts for diverse solar irradiation and shading scenarios across multiple operating conditions. By integrating reliability aspects with real-world operating scenarios, the approach offers a holistic view of PV system performance considering the impact of frequency and occurrence of component failures and different repair strategies. The research delves deep into how the inverter reliability and the choice of repair strategies can influence the profitability of a PV system in various environmental conditions. A thorough statistical analysis revealed that both inverter lifetime and repair strategy have a significant effect on profitability. Key results indicate that in Germany, the optimal repair limit for the string inverter design is approximately at a 2.5 kWh daily power loss. In contrast, if the inverter lifetime in the module-inverter concept is sufficiently long, no repairs are necessary to achieve an optimal profit. These findings highlight the intricate relationship between inverter lifetime, application scenarios, and environmental conditions when determining optimal repair strategies.
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