Blanken Ward, Schaap Stefan, Theobald Sophie, Rinzema Arjen, Wijffels René H, Janssen Marcel
Bioprocess Engineering, AlgaePARC, Wageningen University, PO Box 16, 6700 AA, Wageningen, The Netherlands.
Faculty of Biosciences and Aquaculture, Nord University, N-8049, Bodø, Norway.
Biotechnol Bioeng. 2017 Apr;114(4):769-776. doi: 10.1002/bit.26199. Epub 2016 Nov 9.
The loss of carbon dioxide (CO ) to the environment during microalgae cultivation is undesirable for both environmental and economic reasons. In this study, a phototrophic biofilm growth model was developed and validated with the objective to maximize both CO utilization efficiency and production of microalgae in biofilms. The model was validated in growth experiments with CO as the limiting substrate. The CO utilization and biomass productivity were maximized by changing the gas flow rate, the number of biofilm reactors in series and gas composition. Based on simulations, the maximum CO utilization efficiency that was reached was 96% based on a process employing flue gas. The corresponding drop in productivity was only 2% in comparison to the non-CO limited reference situation. In order to achieve this, 25 biofilm reactors units, or more, must be operated in series. Based on these results, it was concluded that concentrated CO streams and plug flow behavior of the gaseous phase over the biofilm surface are essential for high productivity and CO utilization efficiency. Biotechnol. Bioeng. 2017;114: 769-776. © 2016 Wiley Periodicals, Inc.
出于环境和经济方面的原因,微藻培养过程中向环境中排放二氧化碳(CO₂)是不可取的。在本研究中,开发并验证了一种光合生物膜生长模型,目的是使生物膜中CO₂的利用效率和微藻产量最大化。该模型在以CO₂作为限制底物的生长实验中得到了验证。通过改变气体流速、串联生物膜反应器的数量和气体组成,使CO₂的利用率和生物质生产力达到了最大化。基于模拟结果,采用烟道气的工艺所能达到的最大CO₂利用效率为96%。与无CO₂限制的参考情况相比,相应的生产力下降仅为2%。为了实现这一点,必须串联运行25个或更多的生物膜反应器单元。基于这些结果,可以得出结论,浓缩的CO₂流以及气相在生物膜表面的活塞流行为对于高生产力和CO₂利用效率至关重要。《生物技术与生物工程》2017年;114卷:769 - 776页。© 2016威利期刊公司