扩大可持续的普通小球藻微藻生物量培养,从实验室到中试植物光生物反应器,向生物燃料发展

G. Papapolymerou, A. Riga
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引用次数: 11

摘要

单细胞微藻培养代表了未来与其他特种产品一起生产大量生物燃料的新机会,因为与传统作物相比,微藻物种具有几个主要优势,包括更快的生长速度,在各种环境和光生物反应器系统中培养,以及几乎100%的养分回收。在目前的研究中,研究了将普通小球藻微藻的培养规模扩大到4立方米的中试植物光生物反应器,并与25 L自动化实验室生物反应器的性能进行了比较。除了尺寸和配置之外,这两个生物反应器的主要区别在于操作方式、照明性质和深度、温度和ph值。具体来说,在温室内设置的中试植物光生物反应器中,温度和照明自然会随时间和季节而变化。在实验室生物反应器中培养微藻的特定生长因子似乎更高。还发现,在冬季,生长动力学严重减慢。这主要是由于冬季观察到的低温和较差的照明。
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Scaling-up sustainable Chlorella vulgaris microalgal biomass cultivation from laboratory to pilot-plant photobioreactor, towards biofuel
Unicellular microalgal culture represents a new opportunity for producing significant biofuel quantities in the future along with other specialty products, due to several major advantages microalgae species present when compared to conventional crops, including much faster growth rates, cultivation in a variety of environments and photobioreactor systems, and almost 100% recycling of nutrients. In the current research, the scaling-up of the cultivation of Chlorella vulgaris microalgae to a 4 m3 pilot-plant photobioreactor is examined, compared to the performance of a 25 L automated laboratory bioreactor. Beyond the size and configuration, the main differences of the two bioreactors are the mode of operation, the illumination nature and depth, the temperature, and pH. Specifically, temperature and illumination are naturally varying from day to day and season to season into the pilot-plant photobioreactor that is set inside a greenhouse. The specific growth factor appears to be higher for microalgal cultivation in the laboratory bioreactor. It is also found that the growth kinetics is severely slowed down during the winter months. This is primarily due to the low temperatures and the poor illumination observed during winter.
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