厌氧氨氧化菌
亚硝酸盐
化学
甲烷
生物反应器
沼气
水力停留时间
甲烷厌氧氧化
硝酸盐
硫化物
硫化氢
厌氧消化
反硝化
废水
环境化学
环境工程
氮气
制浆造纸工业
环境科学
废物管理
硫黄
反硝化细菌
有机化学
工程类
作者
Xueming Chen,Siying Chen,Xinyan Chen,Yi Tang,Wen-Bo Nie,Linyan Yang,Yiwen Liu,Bing‐Jie Ni
出处
期刊:Water Research
[Elsevier BV]
日期:2024-05-04
卷期号:257: 121739-121739
被引量:8
标识
DOI:10.1016/j.watres.2024.121739
摘要
The coupling between anammox and nitrate/nitrite-dependent anaerobic methane oxidation (n-DAMO) has been considered a sustainable technology for nitrogen removal from sidestream wastewater and can be implemented in both membrane biofilm reactor (MBfR) and granular bioreactor. However, the potential influence of the accompanying hydrogen sulfide (H2S) in the anaerobic digestion (AD)-related methane-containing mixture on anammox/n-DAMO remains unknown. To fill this gap, this work first constructed a model incorporating the C/N/S-related bioprocesses and evaluated/calibrated/validated the model using experimental data. The model was then used to explore the impact of H2S on the MBfR and granular bioreactor designed to perform anammox/n-DAMO at practical levels (i.e., 0∼5% (v/v) and 0∼40 g/S m3, respectively). The simulation results indicated that H2S in inflow gas did not significantly affect the total nitrogen (TN) removal of the MBfR under all operational conditions studied in this work, thus lifting the concern about applying AD-produced biogas to power up anammox/n-DAMO in the MBfR. However, the presence of H2S in the influent would either compromise the treatment performance of the granular bioreactor at a relatively high influent NH4+-N/NO2−-N ratio (e.g., >1.0) or lead to increased energy demand associated with TN removal at a relatively low influent NH4+-N/NO2−-N ratio (e.g., <0.7). Such a negative effect of the influent H2S could not be attenuated by regulating the hydraulic residence time and should therefore be avoided when applying the granular bioreactor to perform anammox/n-DAMO in practice.
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