Ammonium-nitrogen recovery as struvite from swine wastewater using various magnesium sources

被引:42
作者
Ha, Thi-Hanh [1 ]
Mahasti, Nicolaus N. N. [1 ]
Lu, Ming-Chun [2 ]
Huang, Yao-Hui [1 ]
机构
[1] Natl Cheng Kung Univ, Sustainable Environm Res Ctr, Dept Chem Engn, Tainan 701, Taiwan
[2] Natl Chung Hsing Univ, Dept Environm Engn, Taichung 40227, Taiwan
关键词
Swine slurry; Swine wastewater; Seawater; Struvite precipitation; PHOSPHORUS RECOVERY; MODIFIED ZEOLITE; PHOSPHATE; REMOVAL; PRECIPITATION; SLUDGE; URINE; DISSOLUTION; MITIGATION; DIGESTATE;
D O I
10.1016/j.seppur.2022.122870
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Struvite (MgNH4PO4.6H2O) precipitation is widely used for nutrient recovery from swine wastewater. Additional magnesium source is required to produce struvite for nitrogen recovery due to the limited magnesium content in swine wastewater. The present study investigated the optimized condition for treating swine wastewater and producing struvite crystals using swine slurry, commercial MgCl2, and seawater as magnesium sources. The results showed that swine slurry as an alternative source is feasible both technically and economically. The struvite precipitation process using swine slurry at pH 9.0 and [P]0/ [Mg]0/ [N]0 M ratio = 1.2/1.0/1.0 achieved removal efficiencies of 82.7 %, 83.1 %, and 92.7 % for nitrogen, phosphorus, and magnesium, respectively. X-ray diffraction analysis validated the solid product consisted of struvite. Further investigations revealed the har-vested precipitate had a struvite content of 72.7 % with low heavy metal impurity, which could be used as fertilizer. Nutrient recovery from swine manure is a future driver for the economic and environmental sus-tainability of agricultural and wastewater treatment processes.
引用
收藏
页数:12
相关论文
共 63 条
[1]   Nitrogen recovery from pig slurry by struvite precipitation using a low-cost magnesium oxide [J].
Astals, S. ;
Martinez-Martorell, M. ;
Huete-Hernandez, S. ;
Aguilar-Pozo, V. B. ;
Dosta, J. ;
Chimenos, J. M. .
SCIENCE OF THE TOTAL ENVIRONMENT, 2021, 768
[2]   An assessment of the persistence of pathogenic bacteria removal in chicken manure compost employing clay as additive via meta-genomic analysis [J].
Awasthi, Mukesh Kumar ;
Chen, Hongyu ;
Duan, Yumin ;
Liu, Tao ;
Awasthi, Sanjeev Kumar ;
Wang, Quan ;
Pandey, Ashok ;
Zhang, Zengqiang .
JOURNAL OF HAZARDOUS MATERIALS, 2019, 366 :184-191
[3]  
Birke P., 2021, Abattoirs: Chopping but not changing, meat atlas: Facts and figures about animals we eat
[4]  
Brunner P.H., 1978, Methods of Analysis of Sewage Sludge
[5]   Recovery of ammonia as struvite from anaerobic digester effluents [J].
Çelen, I ;
Türker, M .
ENVIRONMENTAL TECHNOLOGY, 2001, 22 (11) :1263-1272
[6]   Comparative study on copper leaching from waste printed circuit boards by typical ionic liquid acids [J].
Chen, Mengjun ;
Huang, Jinxiu ;
Ogunseitan, Oladele A. ;
Zhu, Nengming ;
Wang, Yan-min .
WASTE MANAGEMENT, 2015, 41 :142-147
[7]   Recent advancement on biological technologies and strategies for resource recovery from swine wastewater [J].
Cheng, Hai-Hsuan ;
Narindri, Birgitta ;
Chu, Hsin ;
Whang, Liang-Ming .
BIORESOURCE TECHNOLOGY, 2020, 303
[8]   Effects of electric voltage and sodium chloride level on electrolysis of swine wastewater [J].
Cho, J. H. ;
Lee, J. E. ;
Ra, C. S. .
JOURNAL OF HAZARDOUS MATERIALS, 2010, 180 (1-3) :535-541
[9]   Kinetics of the reversible reaction of struvite crystallisation [J].
Crutchik, D. ;
Garrido, J. M. .
CHEMOSPHERE, 2016, 154 :567-572
[10]   Evaluation and thermodynamic calculation of ureolytic magnesium ammonium phosphate precipitation from UASB effluent at pilot scale [J].
Desmidt, E. ;
Ghyselbrecht, K. ;
Monballiu, A. ;
Verstraete, W. ;
Meesschaert, B. D. .
WATER SCIENCE AND TECHNOLOGY, 2012, 65 (11) :1954-1962