|本期目录/Table of Contents|

[1]晁雷,崔东亮,赵晓光,等.溶解氧对生物转盘技术处理乳制品废水效能的影响[J].江苏农业科学,2017,45(01):249-252.
 Chao Lei,et al.Effects of dissolved oxygen on treatment of dairy wastewater by rotating biological contactor (RBC) technology[J].Jiangsu Agricultural Sciences,2017,45(01):249-252.
点击复制

溶解氧对生物转盘技术处理乳制品废水效能的影响(PDF)
分享到:

《江苏农业科学》[ISSN:1002-1302/CN:32-1214/S]

卷:
第45卷
期数:
2017年01期
页码:
249-252
栏目:
资源与环境
出版日期:
2017-01-05

文章信息/Info

Title:
Effects of dissolved oxygen on treatment of dairy wastewater by rotating biological contactor (RBC) technology
作者:
晁雷12 崔东亮1 赵晓光23 尤涛2 徐新阳3 李亚峰1
1.沈阳建筑大学市政与环境工程学院,辽宁沈阳 110168; 2.辽宁省环境科学研究院,辽宁沈阳 110161;
3.东北大学资源与土木工程学院,辽宁沈阳 110819
Author(s):
Chao Leiet al
关键词:
溶解氧生物转盘接触氧化乳制品废水效能水力停留时间
Keywords:
-
分类号:
X703
DOI:
-
文献标志码:
A
摘要:
在不同的溶解氧浓度条件下,研究接触氧化池生物膜的状态以及乳制品废水污染物的去除效率。结果发现,水力停留时间为10 h时,生物转盘转速为10 r/min,此时生物转盘出水CODCr、氨态氮(NH+4-N)含量、总磷(TP)含量分别约为129、4.67、2.81 mg/L;当接触氧化池水力停留时间4 h时,溶解氧浓度在2.5~3.0 mg/L之间,CODCr、NH+4-N含量、TP含量出水分别达到55、4.44、1.42 mg/L。以上结果表明,乳制品废水经过处理后满足《城镇污水处理厂污染物排放标准》一级B标准。
Abstract:
-

参考文献/References:

[1]高延耀,顾国维,周琪. 水污染控制工程[M]. 3版.北京:高等教育出版社,2007:84-85.
[2]李莎,王凯,王优魁. 生物转盘技术的应用现状及其研究进展[J]. 山西建筑,2010,36(14):164-166.
[3]Kaewsuk J,Thorasampan W,Thanuttamavong M,et al. Kinetic development and evaluation of membrane sequencing batch reactor (MSBR) with mixed cultures photosynthetic bacteria for dairy wastewater treatment[J]. Journal of Environmental Management,2010,91(5):1161-1168.
[4]Bick A,Plazas T J G,Yang F,et al. Immersed membrane bioreactor (IMBR) for treatment of combined domestic and dairy wastewater in an isolated farm:an exploratory case study implementing the facet analysis (FA)[J]. Desalination,2009,249(3):1217-1222.
[5]Pakshirajan K,Kheria S. Continuous treatment of coloured industry wastewater using immobilized Phanerochaete chrysosporium in a rotating biological contactor reactor[J]. Journal of Environmental Management,2012,101:118-123.
[6]Mukherji S,Chavan A. Treatment of aqueous effluents containing non-aqueous phase liquids in rotating biological contactor with algal bacterial biofilm[J]. Chemical Engineering Journal,2012,200:459-470.
[7]Sahinkaya E,Dilek F B. Biodegradation of 4-CP and 2,4-DCP mixture in a rotating biological contactor (RBC)[J]. Biochemical Engineering Journal,2006,31(2):141-147.
[8]Duque A F,Bessa V S,Varvolho MF,et al. Bioaugmentation of a rotating biological contactor for degradation of 2-fluorophenol[J]. Bioresource Technology,2011,102:9300-9303.
[9]Egli K,Bosshard F,Werlen C,et al. Microbial composition and structure of a rotating biological contactor biofilm treating ammonium-rich wastewater without organic carbon[J]. Microbial Ecology,2003,45(4):419-432.
[10]Wyffels S,Pynaert K,Boeckx P,et al. Identification and quantification of nitrogen removal in a rotating biological contactor by N-15 tracer techniques[J]. Water Research,2003,37(6):1252-1259.
[11]晁雷,赵晓光,李晓东,等. 国内外乳制品工业废水生物处理技术研究进展[J]. 江苏农业科学,2014,42(1):1-4.
[12]李平,冼萍,邓慧,等. MICR反应器处理乳品废水的运行特性研究[J]. 工业水处理,2012,32(1):40-43.
[13]张倩倩,魏维利,王俊安等. 生物转盘技术研究进展[J]. 中国水运,2014(2):182-185.
[14]林燕,孔海南,王茸影等. 异养硝化作用的主要特点及其研究动向[J]. 环境科学2008(11):108-111.
[15]金文标,王建芳,赵庆良,等. 好氧-沉淀-厌氧工艺剩余污泥减量性能和机理研究[J]. 环境科学,2008,29(3):726-732.
[16]丁晓玲,贾春宁. 生物接触氧化工艺处理难降解有机废水的研究[J]. 水处理技术,2005,31(7):20-24.
[17]陈建发,陈艺敏,黄慧珍,等. 新型填料曝气生物滤池处理抗生素类废水[J]. 环境工程学报,2014,8:223-227.
[18]李亚峰,张晓宁,刘洪涛,等. DO的质量浓度和温度对配合厌氧氨氧化的亚硝化反应的影响[J]. 沈阳建筑大学学报(自然科学版),2012,09:191-194.

相似文献/References:

[1]罗渊明,卢泽民,朱咏莉.机械扰动富营养水体溶解氧推动力及其数值模拟[J].江苏农业科学,2013,41(09):379.
 Lu Zemin,et al.Dissolved oxygen impetus of eutrophic water with mechanical circulation and its numerical simulation[J].Jiangsu Agricultural Sciences,2013,41(01):379.
[2]邱阳,苗作云,刘学芝.贡湖壬子港藻体堆积下黑水团发生风险研究[J].江苏农业科学,2015,43(10):435.
 Qiu Yang,et al.Study on risks of blackwater group occurrence after algal bloom accumulation in Renzi Port of Gonghu Bay,Taihu Lake[J].Jiangsu Agricultural Sciences,2015,43(01):435.
[3]祁玥,王维,周双喜,等.青海湖总氮、总磷及溶解氧时空变化特征[J].江苏农业科学,2015,43(08):357.
 Qi Yue,et al.Analysis of temporal variation of total nitrogen, total phosphorus and dissolved oxygen in Qinghai Lake[J].Jiangsu Agricultural Sciences,2015,43(01):357.
[4]马晓涛,温继文,陈英义.基于ARIMA和RBF神经网络模型的溶解氧预测分析[J].江苏农业科学,2015,43(05):413.
 Ma Xiaotao,et al.Prediction of dissolved oxygen based on ARIMA model and RBF network model[J].Jiangsu Agricultural Sciences,2015,43(01):413.
[5]刘锦涛,黄万勇,杨士红,等.加气灌溉模式下稻田土壤水溶解氧的变化规律[J].江苏农业科学,2015,43(02):389.
 Liu Jintao,et al.Change rule of dissolved oxygen in paddy soil solution under aerated irrigation[J].Jiangsu Agricultural Sciences,2015,43(01):389.
[6]李文华,牛晓靖,张建卓.污水处理中溶解氧的模糊PID控制[J].江苏农业科学,2015,43(01):362.
 Li Wenhua,et al.Fuzzy-PID control of dissolved oxygen during wastewater treatment[J].Jiangsu Agricultural Sciences,2015,43(01):362.
[7]施珮,袁永明,张红燕,等.GRNN和Elman神经网络在水体溶解氧预测中的应用[J].江苏农业科学,2017,45(23):217.
 Shi Pei,et al.Application of GRNN and Elman neural network in water dissolved oxygen prediction[J].Jiangsu Agricultural Sciences,2017,45(01):217.
[8]王琦,陈秋颖,王艳,等.凌河流域不同时期水环境质量评价[J].江苏农业科学,2018,46(05):250.
 Wang Qi,et al.Evaluation of water environment quality in different periods of Ling River basin[J].Jiangsu Agricultural Sciences,2018,46(01):250.
[9]倪蒙,迟美丽,李吉方,等.不同机械增氧模式对池塘水质及施氏鲟生长和代谢的影响[J].江苏农业科学,2019,47(22):216.
 Ni Meng,et al.Influences of aerobic modes on water quality and growth and metabolism of amur sturgeon,Acipenser schrencki[J].Jiangsu Agricultural Sciences,2019,47(01):216.
[10]王朋,徐钢春,聂志娟,等.大口黑鲈池塘工程化循环水养殖系统中溶解氧浓度变动规律及浮游动植物的响应特征[J].江苏农业科学,2020,48(2):177.
 Wang Peng,et al.Dissolved oxygen concentration change and the response characteristics of zooplankton and phytoplankton in pond raceway recirculating culture system (IPRS) of largemouth bass (Micropterus salmoides)[J].Jiangsu Agricultural Sciences,2020,48(01):177.

备注/Memo

备注/Memo:
收稿日期:2015-11-13
基金项目:水体污染控制与治理科技重大专项(编号:2012ZX07208-003);辽宁省科学技术计划(编号:2014020163);沈阳建筑大学学科涵育项目(编号:XKHY-36)。
作者简介:晁雷(1978—),男,辽宁沈阳人,博士,教授,主要从事污水生态处理技术研究。E-mail:chaolei@aliyun.com。
更新日期/Last Update: 2017-01-05