Kumar Santosh, Cheng Jun, Jia Dongwei, Ali Kubar Ameer, Yang Weijuan
State Key Laboratory of Clean Energy Utilization, Zhejiang University, Hangzhou 310027, China.
State Key Laboratory of Clean Energy Utilization, Zhejiang University, Hangzhou 310027, China.
Bioresour Technol. 2022 Feb;345:126479. doi: 10.1016/j.biortech.2021.126479. Epub 2021 Dec 2.
In order to optimize light distribution for promoting biomass growth rate of Chlorella pyrenoidosa, concave walls were installed in plate photobioreactors (PBR) to generate rotational flow field of microalgal solution circulated from top inlets to bottom outlets. Flow vortices in four corners of concave-wall PBR resulted in decreased mixing time and increased mass transfer coefficient. The CO bio-fixation by C. pyrenoidosa increased by 27% and chlorophyll-a concentration enhanced by 18.5% in concave-wall PBR compared to those in control (flat-wall) PBR. The concave walls diverge light rays to enhance frontal light exposure and supply more light photons into interior regions of PBRs. The promotion in light distribution and vortex flow field with concave walls enhanced light and nutrients utilization by microalgal cells, leading to an increased biomass growth rate by 21%.
为了优化光分布以提高小球藻的生物量生长速率,在平板光生物反应器(PBR)中安装了凹壁,以产生微藻溶液从顶部入口循环到底部出口的旋转流场。凹壁PBR四个角的流动漩涡导致混合时间缩短和传质系数增加。与对照(平壁)PBR相比,凹壁PBR中小球藻的CO₂生物固定增加了27%,叶绿素a浓度提高了18.5%。凹壁使光线发散,增强了正面光照,并向PBR内部区域提供更多光量子。凹壁对光分布和涡流场的促进作用提高了微藻细胞对光和养分的利用,导致生物量生长速率提高了21%。