Acidogenic sludge fermentation to recover soluble organics as the carbon source for denitrification in wastewater treatment: Comparison of sludge types

被引:17
作者
Lin, Lin [1 ]
Li, Ying-yu [1 ]
Li, Xiao-yan [1 ,2 ]
机构
[1] Univ Hong Kong, Dept Civil Engn, Environm Engn Res Ctr, Pokfulam, Hong Kong, Peoples R China
[2] Tsinghua Univ, Grad Sch Shenzhen, Shenzhen Engn Res Lab Sludge & Food Waste Treatme, Shenzhen 518055, Peoples R China
关键词
Sewage sludge; Chemically enhanced primary sedimentation (CEPS); Acidogenic fermentation; Organic carbon recovery; Nitrogen removal; VOLATILE FATTY-ACIDS; ACTIVATED-SLUDGE; HYDROLYSIS; ACIDIFICATION; TEMPERATURE; ENZYMES;
D O I
10.1007/s11783-018-1043-x
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
For biological nitrogen (N) removal from wastewater, a sufficient organic carbon source is requested for denitrification. However, the organic carbon/nitrogen ratio in municipal wastewater is becoming lower in recent years, which increases the demand for the addition of external organic carbon, e.g. methanol, in wastewater treatment. The volatile fatty acids (VFAs) produced by acidogenic fermentation of sewage sludge can be an attractive alternative for methanol. Chemically enhanced primary sedimentation (CEPS) is an effective process that applies chemical coagulants to enhance the removal of organic pollutants and phosphorus from wastewater by sedimentation. In terms of the chemical and biological characteristics, the CEPS sludge is considerably different from the conventional primary and secondary sludge. In the present study, FeCl3 and PACl (polyaluminum chloride) were used as the coagulants for CEPS treatment of raw sewage. The derived CEPS sludge (Fe-sludge and Al-sludge) was then processed with mesophilic acidogenic fermentation to hydrolyse the solid organics and produce VFAs for organic carbon recovery, and the sludge acidogenesis efficiency was compared with that of the conventional primary sludge and secondary sludge. The results showed that the Fe-sludge exhibited the highest hydrolysis and acidogenesis efficiency, while the Al-sludge and secondary sludge had lower hydrolysis efficiency than that of primary sludge. Utilizing the Fe-sludge fermentation liquid as the carbon source for denitrification, more than 99% of nitrate removal was achieved in the mam-stream wastewater treatment without any external carbon addition, instead of 35% obtained from the conventional process of primary sedimentation followed by the oxic/anoxic (O/A) treatment.
引用
收藏
页数:8
相关论文
共 50 条
[31]   The carbon source separation from fermented sewage sludge for stimulation of denitrification and bisphenol A removal [J].
Jia, R. ;
Feng, L. J. ;
Yang, G. F. ;
Mu, J. .
INTERNATIONAL JOURNAL OF ENVIRONMENTAL SCIENCE AND TECHNOLOGY, 2019, 16 (07) :3595-3604
[32]   Effect of coagulant on acidogenic fermentation of sludge from enhanced primary sedimentation for resource recovery: Comparison between FeCl3 and PACl [J].
Lin, Lin ;
Li, Ruo-hong ;
Yang, Zi-yuan ;
Li, Xiao-yan .
CHEMICAL ENGINEERING JOURNAL, 2017, 325 :681-689
[33]   Valorization of organic carbon in primary sludge via semi-continuous dark fermentation: First step to establish a wastewater biorefinery [J].
Prakash, Nikhil Shylaja ;
Maurer, Peter ;
Horn, Harald ;
Hille-Reichel, Andrea .
BIORESOURCE TECHNOLOGY, 2024, 397
[34]   Sewage sludge acidogenic fermentation for organic resource recovery towards carbon neutrality: An experimental survey testing the headspace influence [J].
Mineo, Antonio ;
Cosenza, Alida ;
Mannina, Giorgio .
BIORESOURCE TECHNOLOGY, 2023, 367
[35]   Study on the influence mechanism of anionic polyacrylamide on acidogenic fermentation of chemically enhanced primary treatment sludge [J].
Tian, Lu ;
Pan, Lei ;
Wang, Lin .
JOURNAL OF ENVIRONMENTAL CHEMICAL ENGINEERING, 2025, 13 (03)
[36]   Application of Primary Sludge Fermentation for the Production of Carbon Source for Full-Scale Biological Nutrients Removal [J].
Yang, Yifeng ;
Zhao, Gang ;
Zhang, Xin ;
Du, Jiong ;
Dong, Lei ;
Li, Wenqiang .
POLISH JOURNAL OF ENVIRONMENTAL STUDIES, 2022, 31 (05) :4935-4942
[37]   Primary sludge as solid carbon source for biological denitrification: System optimization at micro-level [J].
Cao, Shenbin ;
Wang, Li ;
Yan, Wangwang ;
Zhou, Yan .
ENVIRONMENTAL RESEARCH, 2020, 191
[38]   Evaluation of sludge reduction and carbon source recovery from excess sludge by the advanced Sludge reduction, Inorganic solids separation, Phosphorus recovery, and Enhanced nutrient Removal (SIPER) wastewater treatment process [J].
Yan, Peng ;
Ji, Fangying ;
Wang, Jing ;
Fan, Jianping ;
Guan, Wei ;
Chen, Qingkong .
BIORESOURCE TECHNOLOGY, 2013, 150 :344-351
[39]   Enhancing denitrification with waste sludge carbon source: the substrate metabolism process and mechanisms [J].
Guo, Liang ;
Guo, Yiding ;
Sun, Mei ;
Gao, Mengchun ;
Zhao, Yangguo ;
She, Zonglian .
ENVIRONMENTAL SCIENCE AND POLLUTION RESEARCH, 2018, 25 (13) :13079-13092
[40]   Carbon source recovery from excess sludge by mechanical disintegration for biological denitrification [J].
Zubrowska-Sudol, M. .
WATER SCIENCE AND TECHNOLOGY, 2018, 77 (07) :1942-1950