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在两段式厌氧消化系统中,通过共消化食物垃圾、污水污泥和甘油来生产氢气和甲烷。

Hydrogen and methane production in a two-stage anaerobic digestion system by co-digestion of food waste, sewage sludge and glycerol.

机构信息

Civil Engineering Program, COPPE, Federal University of Rio de Janeiro, Rio de Janeiro, RJ, Brazil.

Energy Research Company (EPE), Rio de Janeiro, RJ, Brazil.

出版信息

Waste Manag. 2018 Jun;76:339-349. doi: 10.1016/j.wasman.2018.02.039. Epub 2018 Mar 2.

DOI:10.1016/j.wasman.2018.02.039
PMID:29486911
Abstract

In this study, hydrogen and methane production from co-digestion of food waste (FW), sewage sludge (SS) and raw glycerol (GL) was evaluated in a two-stage acidogenesis-methanogenesis anaerobic system under mesophilic conditions (35 °C). The effect of glycerol addition (1 and 3% v/v) as co-substrate was assessed in ternary mixtures (FW + SS + GL), with the concentration of all substrates kept at 10 g VS/L. Besides contributing to reduce the lag phase of the acidogenic bacterial culture, the presence of GL increased the hydrogen production in all tested conditions and the maximum hydrogen yield was obtained for the FW + SS + 3%GL mixture (179.3 mL H/g VS). On the other hand, the highest methane production (342 mL CH/g VS) was achieved in the test supplemented with 1% GL. At 3% GL, abrupt reductions in the biogas CH content and pH values resulting from instability in methanogenesis process were noticed over the experiment. By taking into account the hydrogen and methane production stages, the highest energy yield (i.e., 15.5 kJ/g VS) was obtained with the ternary mixture containing 1% GL. Overall, the results of this study demonstrate the feasibility of using glycerol as co-substrate to increase the H and CH production efficiency in a two-stage anaerobic co-digestion process, allowing simultaneous treatment of three residues (FW, SS and GL) and energy production.

摘要

在这项研究中,在中温条件(35°C)下,采用两相产酸-产甲烷厌氧系统,评估了协同消化食物垃圾(FW)、污水污泥(SS)和原甘油(GL)生产氢气和甲烷。评估了甘油(1%和 3%v/v)作为共底物在三元混合物(FW+SS+GL)中的添加效果,所有底物的浓度均保持在 10 g VS/L。除了有助于缩短产酸细菌培养物的迟滞期外,GL 的存在还增加了所有测试条件下的氢气产量,并且在 FW+SS+3%GL 混合物中获得了最大的氢气产率(179.3 mL H/g VS)。另一方面,在添加 1%GL 的测试中,甲烷产量最高(342 mL CH/g VS)。在 3%GL 的情况下,由于甲烷生成过程不稳定,沼气 CH 含量和 pH 值突然降低。考虑到氢气和甲烷的产生阶段,在含有 1%GL 的三元混合物中获得了最高的能量产率(即 15.5 kJ/g VS)。总的来说,这项研究的结果表明,甘油作为共底物可用于提高两相厌氧协同消化过程中 H 和 CH 的生产效率,允许同时处理三种废物(FW、SS 和 GL)和生产能源。

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