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Co-digestion, biostimulation and bioaugmentation to enhance methanation of brewer's spent grain

机译:共消化,生物刺激和生物强化,以提高啤酒糟的甲烷化程度

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More than 300,000 tonnes of brewer's spent grain (BSG) is generated annually during beer production. This protein- and nutrient-rich by-product is mostly employed as an animal feedstuff. However, its marketability is compromised by its rapid deterioration owing to its high humidity and fermentable sugar content. Drying BSG can be achieved using the bio-energy generated from the anaerobic digestion of part of the BSG produced in the same brewery. We employed three types of strategies to enhance the biomethanation of BSG in mesophilic batch incubations. First, we co-digested BSG with peach flesh residues, juice residues, sewage sludge and pig slurry. Second, we supplemented BSG with chemical additives (carbon and energy sources) in order to biostimulate the methane-producing microbial communities. Finally, we used anaerobically acclimatised BSG to augment the initial microbial load in assays digesting BSG either alone or in co-digestion with sewage sludge. All co-substrates assayed were suitable to be fermented in combination with BSG, although methane production was highest for the mixtures with sewage sludge and pig slurry, with their high pH values and nutrient contents. Nine out of 14 combinations of stimulatory chemicals significantly enhanced BSG methanation compared with a non-supplemented control. Overall, bioaugmenting the anaerobic microbial consortia by using fermented BSG as an inoculum when co-digesting BSG with sewage sludge performed best in terms of methane yield.
机译:啤酒生产期间每年产生超过30万吨啤酒厂的废谷物(BSG)。这种富含蛋白质和营养素的副产品主要用作动物饲料。然而,由于其高湿度和可发酵的糖含量,其迅速变质损害了它的适销性。干燥BSG可以使用厌氧消化同一啤酒厂生产的一部分BSG所产生的生物能来实现。我们采用了三种类型的策略来增强中温分批培养中BSG的生物甲烷化作用。首先,我们将BSG与桃肉残渣,果汁残渣,污水污泥和猪粪进行了共消化。其次,我们用化学添加剂(碳和能源)补充了BSG,以生物刺激产生甲烷的微生物群落。最后,我们在单独或与污水污泥一起消化BSG的试验中使用厌氧适应性BSG来增加初始微生物负荷。所有被测定的共底物都适合与BSG一起发酵,尽管甲烷与污水污泥和猪粪的混合物的甲烷产量最高,但它们的pH值和营养成分较高。与未补充的对照相比,刺激性化学药品的14种组合中有9种显着增强了BSG甲烷化作用。总体而言,在将BSG与污水污泥共同消化时,通过使用发酵的BSG作为接种物对厌氧微生物菌群进行生物强化在甲烷产量方面表现最佳。

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