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有机物对食品和造纸工业废物干法厌氧消化的影响。

Effect of organic compounds on dry anaerobic digestion of food and paper industry wastes.

机构信息

Swedish Centre for Resource Recovery, University of Borås, Borås, Sweden.

Department of Built Environment and Energy Technology, Linnaeus University, Växjö, Sweden.

出版信息

Bioengineered. 2020 Dec;11(1):502-509. doi: 10.1080/21655979.2020.1752594.

DOI:10.1080/21655979.2020.1752594
PMID:32303143
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7185885/
Abstract

Effects of antimicrobial compounds on dry anaerobic digestion (dry-AD) processes were investigated. Four compounds with known inhibition effects on traditional wet digestion, car-3-ene, hexanal, 1-octanol and phenol were selected and investigated at concentrations of 0.005%, 0.05% and 0.5%. Food waste (FW) and Paper waste (PW) were used as model substrates, all assays were running with the substrate to inoculum ratio of 1:1 (VS basis) corresponding to 15% TS in reactors. Generally, increasing concentrations of inhibitors resulted in decreasing methane yields with a few exceptions; in all these specific cases, long, lag phase periods (60 days) were observed. These adaptation periods made possible for the microbial systems to acclimatize to otherwise not preferred conditions leading to higher methane yields. Comparing the effects of the four different groups, phenols had the highest inhibitory effects, with no methane production at the highest amount added, while the lowest effects were obtained in cases of car-3-ene. Furthermore, the results showed that adding inhibitors up to a certain concentrations can repair the balance in AD process, slowing down the degradation steps, hence making it possible for the methanogens to produce a higher amount of methane. This phenomenon was not observed in case of PW, which is already a slow degradable substrate in its nature.

摘要

研究了抗菌化合物对干厌氧消化(dry-AD)过程的影响。选择了 4 种已知对传统湿消化有抑制作用的化合物,即 car-3-ene、hexanal、1-octanol 和 phenol,并在 0.005%、0.05%和 0.5%的浓度下进行了研究。以 FW 和 PW 为模型底物,所有试验均以底物与接种物的比例为 1:1(VS 基础)进行,反应器中的 TS 含量为 15%。通常,随着抑制剂浓度的增加,甲烷产量逐渐降低,但也有一些例外情况;在所有这些特定情况下,观察到了较长的滞后期(60 天)。这些适应期使微生物系统能够适应不那么理想的条件,从而产生更高的甲烷产量。比较这 4 种不同物质的影响,酚类化合物的抑制作用最强,在添加的最高量时没有甲烷生成,而 car-3-ene 的抑制作用最低。此外,结果表明,在一定浓度范围内添加抑制剂可以修复 AD 过程中的平衡,减缓降解步骤,从而使产甲烷菌能够产生更多的甲烷。在 PW 的情况下,这种现象没有观察到,因为它本身就是一种降解缓慢的底物。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7209/7185885/25c1f6268884/kbie-11-01-1752594-g002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7209/7185885/c3cf3611311c/kbie-11-01-1752594-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7209/7185885/25c1f6268884/kbie-11-01-1752594-g002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7209/7185885/c3cf3611311c/kbie-11-01-1752594-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7209/7185885/25c1f6268884/kbie-11-01-1752594-g002.jpg

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