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EFFECT OF CHANGING ATMOSPHERIC AND OPERATING CONDITIONS ON THE THERMAL STRESSES IN PV MODULES

机译:大气和工作条件的变化对光伏组件热应力的影响

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Photovoltaic (PV) technology provides a direct method to convert solar energy into electricity. In recent years, the use of PV systems has increased greatly with many applications of PV devices in systems as small as battery chargers to large scale electricity generation systems and satellite power systems. An important factor that influences the reliability of photovoltaic modules is their ability to withstand high thermal stresses which develop in PV modules due to the different coefficients of thermal expansion of the different module materials. PV modules also experience thermal cycles which can lead to failure of the module. In the present work, three dimensional numerical thermal and structural models of a PV module were developed and sequentially coupled together to calculate the temperature distribution in the PV module and the thermal stresses developing in it. The model is also capable of simulating PV module cooling. Using the model, a study was conducted to evaluate the thermal and structural performance of the module with and without cooling and the variation in thermal stress magnitudes with changing environmental conditions (solar radiation and ambient temperature) and operating conditions (heat exchanger inlet temperature and velocity).
机译:光伏(PV)技术提供了将太阳能转化为电能的直接方法。近年来,随着光伏设备在诸如电池充电器之类的小型发电系统和大规模发电系统以及卫星发电系统中的许多应用,光伏系统的使用已大大增加。影响光伏模块可靠性的一个重要因素是其承受高热应力的能力,由于不同模块材料的热膨胀系数不同,这些应力会在光伏模块中发展。光伏模块还会经历热循环,这可能会导致模块故障。在目前的工作中,开发了光伏组件的三维数值热模型和结构模型,并将其顺序耦合在一起,以计算光伏组件中的温度分布及其中产生的热应力。该模型还能够模拟光伏组件的冷却。使用该模型进行了一项研究,以评估在有和没有冷却的情况下模块的热性能和结构性能,以及随着环境条件(太阳辐射和环境温度)和运行条件(热交换器入口温度和速度)的变化而产生的热应力大小的变化。 )。

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