Moeller Lucie, Bauer Aline, Zehnsdorf Andreas, Lee Mi-Yong, Müller Roland Arno
Centre for Environmental Biotechnology Helmholtz Centre for Environmental Research - UFZ Leipzig Germany.
Eng Life Sci. 2018 May 14;18(7):425-433. doi: 10.1002/elsc.201700176. eCollection 2018 Jul.
The application of spent yeast for biogas production has been studied only in the context of breweries so far. This study is focused on the anaerobic digestion of concentrated yeast biomass (CYB), being a by-product of citric acid biosynthesis. Two experimental set-ups were used in order to test CYB as a mono-substrate and co-substrate for closing the loop in accordance with the 'bioeconomy' approach. The results show that CYB allows for obtaining a high biogas yield, with a maximum of 1.45 m /kg produced when CYB was used as a mono-substrate. The average methane concentration was 66 ± 4%. However, anaerobic digestion of CYB alone was difficult to perform because of a tendency for over-acidification, meaning that the maximum possible organic loading rate was 1 kg/(md). Repeated clogging of tubes with coagulated biomass also disturbed continuous feeding. In contrast, the co-digestion of CYB with waste frying fat at a ratio of 1:20 showed stable operation during a 70-day fermentation period. The biogas yield using the substrate mixture was 1.42 m/kg at an organic loading rate of 2 kg/(md). The methane concentration reached 67 ± 4% and the acetate concentration did not exceed 30 mg/L during the entire fermentation.
迄今为止,废酵母在沼气生产中的应用仅在啤酒厂的背景下进行过研究。本研究聚焦于浓缩酵母生物质(CYB)的厌氧消化,CYB是柠檬酸生物合成的副产物。为了按照“生物经济”方法测试CYB作为单一底物和共底物以实现循环利用,使用了两种实验装置。结果表明,CYB能够实现较高的沼气产量,当CYB用作单一底物时,最高产量为1.45立方米/千克。平均甲烷浓度为66±4%。然而,单独对CYB进行厌氧消化很难实现,因为存在过度酸化的趋势,这意味着最大可能的有机负荷率为1千克/(立方米·天)。凝结的生物质反复堵塞管道也干扰了连续进料。相比之下,CYB与废煎炸油以1:20的比例进行共消化时,在70天的发酵期内显示出稳定的运行状态。在有机负荷率为2千克/(立方米·天)时,使用该底物混合物的沼气产量为1.42立方米/千克。整个发酵过程中,甲烷浓度达到67±4%,乙酸盐浓度不超过30毫克/升。