Bioprocess Engineering & AlgaePARC, Wageningen University and Research Centre, Droevendaalsesteeg 1, 6708 PB Wageningen, The Netherlands.
Bioprocess Engineering & AlgaePARC, Wageningen University and Research Centre, Droevendaalsesteeg 1, 6708 PB Wageningen, The Netherlands.
Bioresour Technol. 2015 Jun;186:294-302. doi: 10.1016/j.biortech.2015.03.085. Epub 2015 Mar 21.
Microalgae are often considered as a promising alternative source of vegetable oils. These oils can be used for food and biofuel applications. Productivities that are projected for large-scale microalgal oil production are, however, often poorly supported by scientific evidence and based on too optimistic assumptions. To facilitate the inclusion of the microalgal physiology in these projections, existing knowledge and novel scientific insights were condensed into a mechanistic model that describes photosynthesis and carbon partitioning during nitrogen starvation. The model is validated using experimental data from both wild-type and a starchless mutant of Scenedesmus obliquus. The model is subsequently used to quantify how reactor design, process design, and strain improvement can improve the oil productivity from 2.1 to up to 10.9 g m(-2) day(-1). These projected productivities are used to reflect on commonly assumed oil productivities and it is concluded that the microalgal oil productivity is often overestimated several folds.
微藻通常被认为是有前途的蔬菜油替代来源。这些油可用于食品和生物燃料应用。然而,大规模微藻油生产的预计生产力往往缺乏科学证据的支持,并且基于过于乐观的假设。为了促进将微藻生理学纳入这些预测,现有的知识和新的科学见解被浓缩到一个机械模型中,该模型描述了氮饥饿期间的光合作用和碳分配。该模型使用来自斜生栅藻的野生型和无淀粉突变体的实验数据进行了验证。然后,该模型用于量化如何通过改进反应器设计、过程设计和菌株来将油生产率从 2.1 提高到高达 10.9 g m(-2) day(-1)。这些预测的生产力用于反映通常假定的油生产力,结论是微藻油生产力经常被高估数倍。