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Thermal and mechanical performances of GFRP sandwich structures with integrated amorphous silicon photovoltaic cells

机译:集成非晶硅光伏电池GFRP夹层结构的热学和力学性能

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Applications of photovoltaic (PV) cells in buildings are often excluded from locations with major mechanical strains because of their brittleness and possible damages at small mechanical strains. Combinations of glass fibre reinforced polymer (GFRP) components and amorphous silicon (a-Si) photovoltaic cells show potentials, while the effects from elevated temperatures and mechanical loads on the electrical performance of the integrated PV cells need to be well understood. In this study, specimens were fabricated by adhesively bonding a-Si PV cells to GFRP sandwich structures. The specimens were then exposed to outdoor natural sunlight. The sunlight intensities and the temperature responses at different locations of the specimens were continuously monitored and their correlation was quantified. An approach was proposed to calculate the sunlight intensities received by the integrated PV cells and their temperature responses based on geographic information (e.g. longitude, latitude and altitude) of such applications. The electrical performance of the integrated PV cells was then investigated under four-point bending until structural failure. Two loading scenarios were considered where non-uniformly distributed tensile or compressive strains were introduced into the integrated PV cells. Reductions in voltage of the integrated PV cells were highlighted due to non-uniform distribution of strains.
机译:光伏 (PV) 电池在建筑物中的应用通常被排除在具有主要机械应变的位置之外,因为它们的脆性和在小机械应变下可能造成的损坏。玻璃纤维增强聚合物 (GFRP) 组件和非晶硅 (a-Si) 光伏电池的组合显示出潜力,而高温和机械负载对集成光伏电池电气性能的影响需要充分了解。在这项研究中,通过将a-Si PV电池粘合到GFRP夹层结构上来制备样品。然后将标本暴露在室外自然阳光下。连续监测标本不同位置的日照强度和温度响应,并量化其相关性。提出了一种基于此类应用的地理信息(例如经度、纬度和海拔)计算集成光伏电池接收的太阳光强度及其温度响应的方法。然后研究了集成光伏电池在四点弯曲直至结构失效下的电气性能。考虑了两种负载场景,其中将非均匀分布的拉伸或压缩应变引入集成光伏电池中。由于应变分布不均匀,集成光伏电池的电压降低被强调。

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