高含氮有机废水研究的现状及趋势
Present Situation and Trend of Research on High Nitrogen Organic Wastewater
摘要: 许多化工产品的生产过程都会产生大量高浓度含氮废水。过量的含氮废水排入水系将导致水体富营养化,危害人类及生物多样性。未来难降解高含氮有机废水处理必将朝着低能耗、低物耗、低成本、处理效果高效、无二次污染以及资源化循环利用,工艺、操作简单等方向迈进。
Abstract: The production process of many chemical products will produce a large number of high concen-trations. Excessive nitrogen-containing wastewater discharged into water system will lead to eu-trophication of water body and harm human beings and biodiversity. In the future, the treatment of refractory organic wastewater with high nitrogen content will move towards the direction of low energy consumption, low material consumption, low cost, high efficiency of treatment effect, no secondary pollution and recycling of resources, simple process and operation.
文章引用:王惠娥, 贾薇, 王学英, 陈彬. 高含氮有机废水研究的现状及趋势[J]. 水污染及处理, 2020, 8(2): 39-43. https://doi.org/10.12677/WPT.2020.82006

参考文献

[1] 张晓. 中国水污染趋势与治理制度[J]. 中国软科学, 2014(10): 11-24.
[2] 刘欣凯. 国内外城市污水处理现状及展望[J]. 防灾博览, 2005(5): 25.
[3] 任瑞丽, 乔龙. 城市水污染现状分析[J]. 长沙铁道学院学报(社会科学版), 2014, 15(2): 24-25.
[4] 王啸宇, 崔杨, 陈玫君. 中国水污染现状及防治措施[J]. 甘肃科技, 2013, 29(13): 34-35.
[5] 姚诚. 水污染现状及其治理措施[J]. 污染防治技术, 2009, 22(2): 87-90.
[6] 曹霞霞, 熊建功, 陈盛明, 等. 天然高分子絮凝剂研究进展[J]. 重庆工商大学学报: 自然科学版, 2011, 28(6): 635-638.
[7] Mook, W.T., Chakrabarti, M.H., et al. (2012) Removal of Total Ammonia Nitrogen (TAN), Nitrate and Total Organic Carbon (TOC) from Aquaculture Wastewater Using Electrochemical Technology: A Review. Desalination, 285, 1-13. [Google Scholar] [CrossRef
[8] Schmidt, I., Sliekers, O., et al. (2003) New Concepts of Microbial Treatment Processes for the Nitrogen Removal in Wastewater. Ferns Microbiology Reviews, 27, 481-492. [Google Scholar] [CrossRef
[9] Limpiyakorn, T., Fuerhacker, M., et al. (2013) amoA-Encoding Archaea in Wastewater Treatment Plants: A Review. Applied Microbiology and Biotechnology, 97, 1425-1439. [Google Scholar] [CrossRef] [PubMed]
[10] 姜瑞, 曾红云, 王强, 等. 氨氮废水处理技术研究进展[J]. 环境科学与管理, 2013, 38(6): 131-134.
[11] Hosono, T., Alvarez, K., et al. (2015) Nitrogen, Carbon, and Sulfur Isotopic Change during Heterotrophic (Pseudomonas aureofaciens) and Autotrophic (Thiobacillus denitriflcans) Denitrification Reactions. Journal of Contaminant Hydrology, 183, 72-81. [Google Scholar] [CrossRef] [PubMed]
[12] Dvorak, L., Svojitka, J., et al. (2013) Nitrification Performance in a Membrane Bioreactor Treating Industrial Wastewater. Water Research, 47, 4412-4421. [Google Scholar] [CrossRef] [PubMed]
[13] Ze, Q.D. and Sun, T.H. (2007) A Potential New Process for Improving Nitrogen Removal in Constructed Wetlands-Promoting Coexistence of Partial Nitrification and Anammox. Ecological Engineering, 31, 69-78. [Google Scholar] [CrossRef
[14] Ma, X.L., Wang, R.P., et al. (2012) Electrochemical Removal of Anmlonia in Coking Wastewater Using Ti/SnO2+Sb/PbO2 Anode. International Journal of Electrochemical Science, 7, 6012-6024.
[15] Lee, J.K., Lee, K., Hong, S.H., et al. (2002) Residual Chlorine Distribution and Disinfection during Electrochemical Removal of Dilute Mnmonia from Aqueous Solution. Journal of Chemical Engineering of Japan, 35, 285-289. [Google Scholar] [CrossRef
[16] 徐丽丽, 施汉昌, 陈金銮, 等. Ti/RuO2-TiO2-IrO2-SnO2电极电解氧化含氨氮废水[J]. 环境科学, 2007, 28(9): 2009-2013.
[17] Zhao, Z., Qiu, W., et al. (2004) Nitrate Removal from Saline Water Using Autotrophic Denitrification by the Bacterium Thiobacillus denitrificans MP-11. Environment Technology, 25, 1201-1210. [Google Scholar] [CrossRef] [PubMed]
[18] An, S.J., Kimberly, T., et al. (2010) Simultaneous Biodesulfurization and Denitrification Using an Oil Reservoir Microbial Culture: Effects of Sulphide Loading Rate and Sulphide to Nitrate Loading Ratio. Water Research, 44, 1531-1541. [Google Scholar] [CrossRef] [PubMed]
[19] Khramenkov, S.V., Kozlov, M.N., et al. (2013) A Novel Bac-terium Carrying out Anaerobic Ammonium Oxidation in a Reactor for Biological Treatment of the Filtrate of Wastewater Fermented Sludge. Microbiology, 82, 628-636. [Google Scholar] [CrossRef
[20] 张英慧. SBR短程硝化反硝化处理模拟高氨氮废水的试验研究[D]: [硕士学位论文]. 西安: 长安大学, 2008.
[21] 刘吉明, 杨云龙. 短程硝化-反硝化生物脱氮技术研究[J]. 山西建筑, 2004, 30(8): 67-68.