Ren Siyuan, Shao Cong, Zhu Feifei, Schagerl Michael, Hu Xinjuan, Sobhi Mostafa, Xu Ling, Qian Jingya, Huo Shuhao
School of Food and Biological Engineering, Jiangsu University, Zhenjiang, 212013, China.
Agricultural Engineering Department, Jiangsu University, Zhenjiang, 212013, China.
Biotechnol Biofuels Bioprod. 2025 Jun 14;18(1):63. doi: 10.1186/s13068-025-02658-x.
Raceway pond systems face inherent challenges in achieving optimal biomass productivity due to limitations in vertical mixing efficiency and uneven light distribution, compounded by the intrinsic dilute nature of phototrophic cultures. The combination of automated light-supplemented mixers and electric field treatment introduces a promising strategy to enhance raceway pond gas‒liquid mass transfer, improve microalgae biomass production, and increase carbon fixation. Computational fluid dynamics simulations identified an optimal mixing configuration employing a 75° inclined blade rotating counterclockwise at 300 rpm, which reduced dead zones from approximately 15.5% to 1.1% and shortened the light-dark exposure of cells to 2.7 s in a laboratory-scale raceway pond (71.4 dm). Additionally, daily one-hour electrostatic field stimulation at 0.6 V cm⁻ during the logarithmic growth phase significantly enhanced algal growth. The novel raceway pond system achieved a 20% increase in the productivity of Limnospira fusiformis and elevated the maximum carbon fixation rate to 0.14 g L⁻ d⁻, representing a 43% improvement and the high-value phycocyanin increased by 14.4%. This approach enhanced mixing efficiency and light utilization, providing a scalable strategy for high-value microalgae production in controlled bioreactors.
跑道式池塘系统由于垂直混合效率的限制和光照分布不均,再加上光合培养物固有的稀释特性,在实现最佳生物量生产力方面面临着固有的挑战。自动补光混合器和电场处理的结合引入了一种有前景的策略,以增强跑道式池塘的气液传质、提高微藻生物量产量并增加碳固定。计算流体动力学模拟确定了一种最佳混合配置,即采用一个75°倾斜叶片以300转/分钟的速度逆时针旋转,这将实验室规模的跑道式池塘(71.4立方分米)中的死区从约15.5%减少到1.1%,并将细胞的光暗暴露时间缩短至2.7秒。此外,在对数生长期每天进行一小时的0.6伏/厘米的静电场刺激显著促进了藻类生长。这种新型跑道式池塘系统使纺锤形螺旋藻的生产力提高了20%,并将最大碳固定率提高到0.14克/升·天,提高了43%,高价值的藻蓝蛋白增加了14.4%。这种方法提高了混合效率和光利用率,为在可控生物反应器中生产高价值微藻提供了一种可扩展的策略。