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首页> 外文期刊>Photovoltaics, IEEE Journal of >Determination of Dominant Failure Modes Using FMECA on the Field Deployed c-Si Modules Under Hot-Dry Desert Climate
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Determination of Dominant Failure Modes Using FMECA on the Field Deployed c-Si Modules Under Hot-Dry Desert Climate

机译:在沙漠热干气候下使用FMECA在现场部署的c-Si组件上确定主要失效模式

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摘要

The failure and degradation modes of about 5900 crystalline-Si glass/polymer modules fielded for six to 16 years in three different photovoltaic (PV) power plants with different mounting systems under the hot-dry desert climate of Arizona are evaluated. Based on the results of this evaluation, failure mode, effect, and criticality analysis, a statistical reliability tool that uses risk priority number is performed for each PV power plant to determine the dominant failure modes in the modules by means of ranking and prioritizing the modes. This study on PV power plants considers all the failure and degradation modes from both safety and performance perspectives and, thus, comes to the conclusion that solder bond fatigue/failure with/without gridline contact fatigue/failure is the most dominant failure/degradation mode for these module types in the hot-dry desert climate of Arizona.
机译:评估了在亚利桑那州的热干燥沙漠气候下,在具有不同安装系统的三个不同光伏(PV)电厂中使用了大约6900年的约5900种晶体硅玻璃/聚合物模块的失效和降解模式。基于此评估,故障模式,影响和严重性分析的结果,对每个光伏电站执行使用风险优先级数字的统计可靠性工具,以通过对模式进行排名和优先级确定模块中的主要故障模式。这项关于光伏电站的研究从安全和性能的角度考虑了所有故障和降级模式,因此得出结论,在有/无网格线接触疲劳/故障的情况下,焊点疲劳/故障是最主要的故障/劣化模式。这些模块类型适用于亚利桑那州的干热沙漠气候。

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