Chemical Engineering Area, University of Almería, 04120 Almería, Spain.
Chemical Engineering Area, University of Almería, 04120 Almería, Spain.
Bioresour Technol. 2017 Dec;245(Pt A):250-257. doi: 10.1016/j.biortech.2017.08.161. Epub 2017 Aug 31.
The shear-sensitive dinoflagellate microalga Karlodinium veneficum was grown in a sparged bubble column photobioreactor. The influence of mass transfer and shear stress on cell growth and physiology (concentration of reactive oxygen species, membrane fluidity and photosynthetic efficiency) was studied, and a model describing cell growth in term of mass transfer and culture parameters (nozzle sparger diameter, air flow rate, and culture height) was developed. The results show that mass transfer limits cell growth at low air-flow rates, whereas the shear stress produced by the presence of bubbles is critically detrimental for air flow rates above 0.1vvm. The model developed in this paper adequately represents the growth of K. veneficum. Moreover, the parameters of the model indicate that bubble rupture is much more harmful for cells than bubble formation.
剪切敏感的甲藻微藻 Karlodinium veneficum 在通气式鼓泡柱光生物反应器中进行培养。研究了传质和剪切应力对细胞生长和生理(活性氧浓度、膜流动性和光合作用效率)的影响,并建立了一个用传质和培养参数(喷嘴喷头直径、空气流量和培养高度)来描述细胞生长的模型。结果表明,在低空气流量下,传质限制了细胞生长,而气泡产生的剪切应力对空气流量高于 0.1vvm 时则具有严重的危害性。本文建立的模型能够很好地描述 K. veneficum 的生长情况。此外,模型的参数表明,气泡破裂对细胞的危害远大于气泡的形成。