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Biological hydrogen production by Anabaena sp. – Yield, energy and CO2 analysis including fermentative biomass recovery

机译:鱼腥藻的生物制氢。 –产量,能源和二氧化碳分析,包括发酵生物质的回收

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摘要

This paper presents laboratory results of biological production of hydrogen by photoautrotophic cyanobacterium Anabaena sp. Additional hydrogen production from residual Cyanobacteria fermentation was achieved by Enterobacter aerogenes bacteria. The authors evaluated the yield of H2 production, the energy consumption and CO2 emissions and the technological bottlenecks and possible improvements of the whole energy and CO2 emission chain. The authors did not attempt to extrapolate the results to an industrial scale, but to highlight the processes that need further optimization. The experiments showed that the production of hydrogen from cyanobacteria Anabaena sp. is technically viable. The hydrogen yield for this case was 0.0114 kgH2/kgbiomass which had a rough energy consumption of 1538 MJ/MJH2 and produced 114640 gCO2/MJH2. The use of phototrophic residual cyanobacteria as a substrate in a dark-fermentation process increased the hydrogen yield by 8.1% but consumed 12.0% more of energy and produced 12.1% more of CO2 showing that although the process increased the overall efficiency of hydrogen production it was not a viable energy and CO2 emission solution. To make cyanobacteria-based biofuel production energy and environmentally relevant, efforts should be made to improve the hydrogen yield to values which are more competitive with glucose yields (0.1 kgH2/kgbiomass). This could be achieved through the use of electricity with at least 80% of renewables and eliminating the unessential processes (e.g.pre-concentration centrifugation).
机译:本文介绍了光自噬性蓝细菌鱼腥藻生物制氢的实验室结果。产气肠杆菌细菌可从残余蓝藻发酵中额外产生氢气。作者评估了氢气产量,能源消耗和二氧化碳排放量以及技术瓶颈以及整个能源和二氧化碳排放链的可能改进。作者没有尝试将结果推算到工业规模,而是强调需要进一步优化的过程。实验表明,蓝细菌Anabaena sp。生产氢气。在技​​术上是可行的。在这种情况下,氢气产量为0.0114 kgH2 / kg生物量,其粗能耗为1538 MJ / MJH2,产生了114640 gCO2 / MJH2。在黑暗发酵过程中,使用光养性残留蓝细菌作为底物可使氢产率提高8.1%,但消耗更多的能量12.0%,产生的CO2则增加12.1%,这表明尽管该过程提高了氢生产的整体效率,但不是可行的能源和二氧化碳排放解决方案。为了使基于蓝细菌的生物燃料生产能源与环境相关,应努力将氢产量提高到与葡萄糖产量更具竞争力的值(0.1 kgH2 / kg生物量)。这可以通过至少80%的可再生能源使用电力并消除不必要的过程(例如预浓缩离心)来实现。

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