首页> 外文会议>European Photovoltaic Solar Energy Conference and Exhibition >PV ROOF INTEGRATED SYSTEMS VS. BEST- AND WORST-CASES NOVEL MEASUREMENT FOR LONG TERM OUTDOOR MEASUREMENT OF PV ROOF INTEGRATED SYSTEMS (ELECTRICAL, THERMAL AND MECHANICAL BEHAVIORS)
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PV ROOF INTEGRATED SYSTEMS VS. BEST- AND WORST-CASES NOVEL MEASUREMENT FOR LONG TERM OUTDOOR MEASUREMENT OF PV ROOF INTEGRATED SYSTEMS (ELECTRICAL, THERMAL AND MECHANICAL BEHAVIORS)

机译:PV屋顶集成系统与 PV屋顶集成系统长期户外测量的最佳和最糟糕的小说测量(电气,热和机械行为)

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The popularity of PV -facade and -roof integrated systems still remain at small scale compared to fast growing PV on-roof systems. One of the most significant obstacles is the technical barrier (electrical, thermal and mechanical behaviours). With the national research project MULTIELEMENT supported by BMU, the electrical, thermal and mechanical measurements have been performed under long term outdoor conditions. The evaluations show, that the heat-flux to internal room over solar irradiation increases by the roof tilt angle. Furthermore the fluctuation of temperature caused by weather conditions does not have a significant impact on the total energy yield, whereas temperature influence on sunny days is noticeable. For the wind direction from south-east to southwest, directly towards the module surface, the temperature of the bottom PV module is lower than the one at the top of the PV array (~ 2-4°C) due to chimney effect. For the wind direction from north-east to north-west, wind from backside of PV array, the operating temperature of PV module at bottom may be higher up to 6°C compared to that at the top of the field due to cooling effect from turbulences at the top edge of the roof. The average energy yield of the bottom module is about 1% higher compared to the top module. In comparison to the free-standing PV module, these energy yields of PV roof-integrated system exhibit only -0.9% to -1.8% for bottom and top modules of PV array, respectively. At the same time, the energy yield of the worst-case scenario module (fully thermal isolated module) shows -4% compared to the free-standing PV module.
机译:与快速生长的PV屋顶系统相比,PV -Facade和-ROOF集成系统的普及仍保持小规模。最重要的障碍之一是技术障碍(电气,热和机械行为)。利用BMU支持的国家研究项目多元素,在长期户外条件下进行了电气,热和机械测量。评估表明,在太阳照射上的内部房间的热通量增加了屋顶倾斜角度。此外,天气条件引起的温度波动对总能源产率没有显着影响,而阳光影响的温度影响是明显的。对于从东南到西南的风向,直接朝向模块表面,由于烟囱效应,底部PV模块的温度低于PV阵列顶部(〜2-4°C)顶部的温度。对于从东北到西北的风向,来自光伏阵列的绕线,底部光伏模块的工作温度可以比磁盘顶部的底部达到6°C,因为冷却效果屋顶顶部边缘的湍流。与顶部模块相比,底部模块的平均能量产量幅度约为1%。与独立式PV模块相比,PV屋顶集成系统的这些能量产量分别表现出-0.9%至-1.8%的光伏阵列的底部和顶部模块。同时,与独立式PV模块相比,最坏情况场景模块(完全热隔离模块)的能源产量显示-4%。

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