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首页> 外文期刊>Bioresource Technology: Biomass, Bioenergy, Biowastes, Conversion Technologies, Biotransformations, Production Technologies >Production of hydrogen, ethanol and volatile fatty acids through co-fermentation of macro- and micro-algae
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Production of hydrogen, ethanol and volatile fatty acids through co-fermentation of macro- and micro-algae

机译:通过大藻和微藻的共同发酵生产氢,乙醇和挥发性脂肪酸

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摘要

Algae may be fermented to produce hydrogen. However micro-algae (such as Arthrospira platensis) are rich in proteins and have a low carbonitrogen (C/N) ratio, which is not ideal for hydrogen fermentation. Co-fermentation with macro-algae (such as Laminaria digitata), which are rich in carbohydrates with a high (C/N) ratio, improves the performance of hydrogen production. Algal biomass, pre-treated with 2.5% dilute H2SO4 at 135 degrees C for 15 min, effected a total yield of carbohydrate monomers (CMs) of 0.268 g/g volatile solids (VS). The CMs were dominating by glucose and mannitol and most (ca. 95%) were consumed by anaerobic fermentative micro-organisms during subsequent fermentation. An optimal specific hydrogen yield (SHY) of 85.0 mL/g VS was obtained at an algal C/N ratio of 26.2 and an algal concentration of 20 g VS/L. The overall energy conversion efficiency increased from 31.3% to 54.5% with decreasing algal concentration from 40 to 5 VS g/L. (C) 2016 Elsevier Ltd. All rights reserved.
机译:藻类可以发酵产生氢气。但是,微藻类(例如节肢动物)的蛋白质含量很高,碳/氮(C / N)比很低,这对于氢发酵来说并不理想。与富含(C / N)比例高的碳水化合物的大型藻类(例如海带)共同发酵可提高制氢性能。在135℃下用2.5%的稀硫酸预处理15分钟的藻类生物质,碳水化合物单体(CM)的总产量为0.268 g / g挥发性固体(VS)。 CM主要由葡萄糖和甘露糖醇占据,大部分(约95%)在随后的发酵过程中被厌氧发酵微生物消耗。在26.2的藻类C / N比和20 g VS / L的藻类浓度下,获得的最佳比氢产量(SHY)为85.0 mL / gVS。随着藻类浓度从40 VS g / L降低,总的能量转换效率从31.3%增加到54.5%。 (C)2016 Elsevier Ltd.保留所有权利。

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