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Elliptic paraboloid-based solar spectrum splitters for self-powered photobioreactors

机译:基于椭圆抛物面的太阳能光谱分水器,用于自动光生物生物反应器

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Microalgae has potential for large-scale biofuel production and CO2 remediation, however its growth is energy intensive and easily hindered by contamination, unsuitable conditions, and photosaturation. To mitigate these problems the solar irradiance can be partitioned into photosynthetically active radiation (PAR) and photosynthetically inactive radiation (non-PAR). The PAR can be used for algae growth in a photobioreactor under controlled conditions. The non-PAR can be used to generate electricity in photovoltaic (PV) cells to power the photobioreactor. We present numerical analysis of a luminescent solar spectrum splitter (SSS) that partitions the solar irradiance into PAR and non-PAR to simultaneously power algae cultivation systems and PV cells, respectively. The SSS directs non-PAR to PV cells with emission losses of 6%, and an optical efficiency of 73%. Furthermore, the Shockley-Queisser efficiency limit for non-PAR is calculated to be 24% and the SSS enables a non-PAR conversion efficiency of 15.8% for direct solar irradiance. This is enough power to provide for the cultivation and harvesting processes in the photobioreactor. Results show the generated power can also be used to increase algae growth by 9.3%. The luminescent SSS enables self-powered photobioreactors with increased utilization of space and solar radiation, and higher net energy gain ratios. (C) 2020 Elsevier Ltd. All rights reserved.
机译:微藻具有大规模生物燃料生产和二氧化碳修复的潜力,但其生长是能量密集,易于阻碍污染,不合适的条件和拍摄。为了减轻这些问题,可以将太阳辐照度划分为光合作用辐射(PAR)和光合作用辐射(非PAR)。该靶标可用于在受控条件下的光生物反应器中的藻类生长。非靶标可用于在光伏(PV)电池中产生电力以供电光生物反应器。我们呈现了将太阳辐照度分别分别将太阳辐照度分别分别的辐射和非对藻类培养系统和光伏电池分析的发光太阳谱分离器(SSS)的数值分析。 SSS指示非对PV电池的排放损耗为6%,光学效率为73%。此外,非靶的震撼批次效率限制计算为24%,SSS为直接太阳辐照度实现15.8%的非PAR转换效率。这足以提供在光生物反应器中的培养和收获过程的动力。结果表明,产生的功率也可用于增加9.3%的藻类增长。发光SSS使自动光生物反应器能够增加利用空间和太阳辐射,净能量增益比率更高。 (c)2020 elestvier有限公司保留所有权利。

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