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Effect of operating temperature on degradation of solder joints in crystalline silicon photovoltaic modules for improved reliability in hot climates

机译:工作温度对结晶硅光伏模块中焊点退化的影响,从而提高了炎热气候下的可靠性

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Accelerated degradation of solder joint interconnections in crystalline silicon photovoltaic (c-Si PV) modules drives the high failure rate of the system operating in elevated temperatures. The phenomenon challenges the thermo-mechanical reliability of the system for hot climatic operations. This study investigates the degradation of solder interconnections in c-Si PV modules for cell temperature rise from 25 °C STC in steps of 1 °C to 120 °C. The degradation is measured using accumulated creep strain energy density (Wacc). GeneratedWaccmagnitudes are utilised to predict the fatigue life of the module for ambient temperatures ranging from European to hot climates. The ANSYS mechanical package coupled with the IEC 61,215 standard accelerated thermal cycle (ATC) profile is employed in the simulation. The Garofalo creep model is used to model the degradation response of solder while other module component materials are simulated with appropriate material models. Solder degradation is found to increase with every 1 °C cell temperature rise from the STC. Three distinct degradation rates in Pa/°C are observed. Region 1, 25 to 42 °C, is characterised by degradation rate increasing quadratically from 1.53 to 10.03 Pa/°C. The degradation rate in region 2 ,43 to 63 °C, is critical with highest constant magnitude of 12.06 Pa/°C. Region 3, 64 to 120 °C, demonstrates lowest degradation rate of logarithmic nature with magnitude 5.47 at the beginning of the region and 2.25 Pa/°C at the end of the region. The module fatigue life, L (in years) is found to decay according to the power functionL=721.48T-1.343. The model predicts module life in London and hot climate to be 18.5 and 9 years, respectively. The findings inform on the degradation of c-Si PV module solder interconnections in different operating ambient temperatures and advise on its operational reliability for improved thermo-mechanical design for hot climatic operations.
机译:晶体硅光伏(c-Si PV)模块中焊点互连的加速退化,导致系统在高温下工作的高故障率。这种现象挑战了热气候运行系统的热机械可靠性。这项研究调查了当电池温度从25°C STC以1°C升至120°C的步幅上升时,c-Si PV组件中焊料互连的退化。使用累积的蠕变应变能密度(Wacc)来测量退化。利用生成的幅度来预测模块在欧洲到炎热气候等环境温度下的疲劳寿命。仿真中采用了ANSYS机械封装,并结合了IEC 61,215标准加速热循环(ATC)曲线。 Garofalo蠕变模型用于建模焊料的降解响应,而其他模块组件材料则使用适当的材料模型进行仿真。发现随着STC电池温度每升高1°C,焊料的降解就会增加。观察到三种不同的Pa /°C降解速率。 1区(25至42 C)的特征是降解速率从1.53 Pa /°C二次增加。在2.43至63,C的区域中,降解速率至关重要,最高恒定幅度为12.06°Pa /°C。 3区温度为64至120 C,对数性质的最低降解速率在该区开始时为5.47,在该区结束时为2.25 Pa /°C。发现模块的疲劳寿命L(以年为单位)根据幂函数L = 721.48T-1.343衰减。该模型预测,伦敦和炎热气候下的组件寿命分别为18.5年和9年。研究结果揭示了在不同的工作环境温度下c-Si PV模块焊料互连的退化,并建议了其运行可靠性,从而改善了热气候操作的热机械设计。

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