ARDA, Station Marine du Port, Port Ouest, Hangar 10, 97420 Le Port, Reunion Island, France.
Bioresour Technol. 2013 Jan;128:235-40. doi: 10.1016/j.biortech.2012.10.056. Epub 2012 Oct 26.
Low-energy and low-cost separation of microalgae from water is important to the economics of microalgae harvesting and processing. Flotation under vacuum using a vacuum gas lift for microalgae harvesting was investigated for different airflow rates, bubble sizes, salinities and harvest volumes. Harvesting efficiency (HE) and concentration factor (CF) of the vacuum gas lift increased by around 50% when the airflow rate was reduced from 20 to 10 L min(-1). Reduced bubble size multiplied HE and CF 10 times when specific microbubble diffusers were used or when the salinity of the water was increased from 0‰ to 40‰. The reduction in harvest volume from 100 to 1L increased the CF from 10 to 130. An optimized vacuum gas lift could allow partial microalgae harvesting using less than 0.2 kWh kg(-1) DW, thus reducing energy costs 10-100 times compared to complete harvesting processes, albeit at the expense of a less concentrated biomass harvest.
从水中低能耗、低成本地分离微藻对于微藻收获和处理的经济性非常重要。本研究采用真空气体提升器在真空条件下对微藻进行浮选,考察了不同气流速率、气泡大小、盐度和收获体积对微藻收获的影响。当气流速率从 20 L min(-1)降低到 10 L min(-1)时,真空气体提升器的收获效率(HE)和浓缩因子(CF)提高了约 50%。当使用特定的微型气泡扩散器或水的盐度从 0‰增加到 40‰时,气泡尺寸的减小使 HE 和 CF 增加了 10 倍。将收获体积从 100 降至 1 L,CF 从 10 增加到 130。优化后的真空气体提升器可以使用小于 0.2 kWh kg(-1) DW 的能量来实现部分微藻收获,从而将能源成本降低 10-100 倍,尽管这是以收获的生物质浓度较低为代价的。