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1.
曝气生物滤池好氧反硝化脱氮的研究   总被引:4,自引:3,他引:1  
邓康  黄少斌  胡婷 《环境科学》2010,31(12):2945-2949
采用某钢铁厂含氮废水,利用生物滤池工艺,研究了曝气生物滤池的挂膜、溶解氧、碳氮比对好氧反硝化脱氮的影响.结果表明,利用富含好氧反硝化菌的富集菌液进行挂膜,16 d基本完成挂膜,脱氮率90%.当溶解氧较低时(DO为1.5~4.2mg/L),随着溶解氧的增大,反硝化效率提高,其中以DO为3.5 mg/L时的效果最好,脱氮率为95.4%.随着曝气量继续增加,脱氮率有所下降,当DO为8.0 mg/L时,脱氮率仍有44.8%.可推断系统中有好氧反硝化菌,存在以O2作为电子受体的好氧反硝化现象.随着碳氮比(COD/N)增大,反硝化效果提高.当COD/N为6~7时,基本能够满足反硝化所需碳源.此时脱氮率大于96%,亚硝态氮在整个反应过程中几乎没有积累,COD去除率在85%左右.  相似文献   

2.
固定化微生物在好氧条件下同时硝化和反硝化   总被引:24,自引:1,他引:24  
研究了将硝化菌和反硝化菌混合包埋 ,利用载体对氧产生的扩散阻力在颗粒内部形成好氧区、缺氧区和厌氧区 ,使硝化和反硝化两个过程有机的结合在一起 ,在好氧条件下同时进行硝化和反硝化的新型生物脱氮技术。试验结果表明 :固定化后细胞的活力回收率≥ 70 % ;混合固定的硝化菌和反硝化菌在好氧条件下进行间歇生物脱氮时至少可稳定操作 2 2d ,其间脱氮速率约为 0 1 1kg/m3·d ;单级生物脱氮的最适 pH和温度分别是 8 2和 30℃。  相似文献   

3.
固定化细胞单级生物脱氮研究   总被引:18,自引:1,他引:17       下载免费PDF全文
利用硝化菌和反硝化菌混合固定的方法,研究了好氧条件下同时进行硝化和反硝化作用的单级生物脱氮技术.结果表明,反硝化菌被固定后,在好氧条件下仍具有反硝化功能.硝化菌和反硝化菌被混合固定后,可以在好氧条件下同时进行硝化和反硝化作用,并且其氨氧化速率约为硝化菌单独固定时的1.4倍.硝化菌和反硝化菌混合固定构成的单级生物脱氮系统其脱氮速率是分别固定构成的单级生物脱氮系统的2.6倍.  相似文献   

4.
交替好氧/缺氧短程硝化反硝化生物脱氮Ⅰ.方法实现与控制   总被引:23,自引:1,他引:22  
采用实时控制策略和曝气 搅拌交替运行方式在 ( 2 6± 1 )℃下开发了一种新型短程硝化反硝化生物脱氮工艺 :实时控制交替好氧 缺氧短程硝化反硝化脱氮工艺 .并对其与实时控制传统SBR法短程硝化反硝化脱氮和预先设定时间控制交替好氧 缺氧短程硝化反硝化脱氮工艺进行了比较研究 .结果显示 ,实时控制交替好氧 缺氧短程硝化反硝化脱氮工艺无论从硝化速率、反硝化速率还是从硝化时间、反硝化时间上均优于实时控制传统SBR法短程硝化反硝化脱氮和预先设定时间控制交替好氧 缺氧短程硝化反硝化脱氮两种工艺 .其硝化速率和反硝化速率分别是预先设定时间控制交替好氧 缺氧短程硝化反硝化工艺的 1 3 8倍和 1 2 5倍 ,是实时控制传统SBR法短程硝化反硝化脱氮工艺的 1 82倍和 1 6 1倍 .因此 ,实时控制交替好氧 缺氧短程硝化反硝化脱氮工艺不但能够合理分配曝气和搅拌时间 ,而且还能提高硝化、反硝化速率 ,缩短反应时间 ,从而达到降低运行成本的目的  相似文献   

5.
文章利用实验室筛选到的高效反硝化菌YYD4对反硝化生物滤池进行强化脱氮,探究了该菌在不同C/N比下脱氮性能,考察强化反硝化生物滤池处理低C/N比污水时的启动时间、脱氮能力与脱氮稳定性。结果表明,反硝化菌YYD4处理低C/N比水时其12 h硝氮去除率为99%,总氮去除率达81.38%,无亚硝氮积累。强化反硝化生物滤池对硝氮去除率为95.18%±4.10%,总氮去除率为94.11%±6.33%,较未强化滤池分别提升了9.76%与19.89%,停止投加菌液后强化滤池的硝氮去除率为96.81%±3.00%,总氮去除率为97.84%±1.40%,强化终止后反硝化生物滤池仍具备良好且稳定的脱氮能力。  相似文献   

6.
为解决AnMBR(厌氧膜生物反应器)出水NH4+脱除的问题,提出利用AnMBR出水中残余CODCr、溶解性CH4以及低价态硫元素,通过构建缺氧滤池和好氧滤池进行生物异养和硫自养脱氮的方法,进一步削减AnMBR出水CODCr、去除溶解性CH4、同时同步生物脱氮.结果表明:①缺氧滤池与好氧滤池经过120 d单独驯化与33 d串联驯化后,在HRT(hydraulic retention time,水力停留时间)为6 h、进水为实际AnMBR出水的工况条件下,出水ρ(TN)为17.93 mg/L,去除率为52.7%;出水ρ(NH4+-N)为2.78 mg/L,去除率为92.3%,达到GB 18918-2002《城镇污水处理厂污染物排放标准》一级B标准.在HRT为8 h工况条件下,出水ρ(TN)为14.60 mg/L,去除率为59.0%;出水ρ(NH4+-N)为2.22 mg/L,去除率为93.7%,达到GB 18918-2002一级A标准.②脱氮滤池中氮脱除路径主要包括残余CODCr异养反硝化、溶解性CH4异养反硝化和硫自养反硝化,并通过物料衡算评价了三者对于氮脱除的贡献,在HRT为6 h的工况条件下,脱氮滤池脱氮过程中残余CODCr异养反硝化、溶解性CH4异养反硝化和硫自养反硝化三者占比分别为54.1%、24.3%和21.5%;在HRT为8 h的工况条件下,脱氮滤池脱氮过程中3种途径占比分别为70.4%、13.8%和15.8%.研究显示,脱氮滤池可以实现对AnMBR出水的低耗生物脱氮以及整体水质的达标排放.   相似文献   

7.
耐冷好氧反硝化菌因其独特的生长特性与同步异养硝化好氧反硝化的功能,为解决天然水体中氮素的去除提供了新的技术思路。综述了好氧反硝化作用机理研究进展,包括耐冷好氧反硝化菌的富集-驯化-筛选方法,已分离的耐冷好氧反硝化菌的类群及其生长特性,耐冷好氧反硝化菌的生物脱氮影响因素及其应用领域。耐冷好氧反硝化菌在低温环境生物脱氮方面具有明显的优势。因此,对耐冷好氧反硝化菌的脱氮作用机理和实际工程应用进行展望。  相似文献   

8.
1株好氧脱氮菌的筛选与脱氮特性研究   总被引:4,自引:2,他引:2  
研究好氧反硝化菌的筛选、生物脱氮机制及代谢特征.采用极限稀释及平板划线法对好氧条件下能同步硝化/反硝化的细菌进行广泛筛选,分离到6株具有好氧脱氮效果的异养菌,其中YY-5菌具有高效的好氧脱氮能力.对该菌株好氧脱氮过程气相和液相中可能生成的气态产物以及硝态氮等形式的含氮产物变化进行定量检测分析,探讨脱氮过程氮素的去向及其...  相似文献   

9.
将A/O(厌氧/好氧)法处理生活污水设施的好氧生物滤池出口的硝化液回流到厌氧生物滤池进行反硝化生物脱氮,经过生产运行的实践证明:改进后的出水水质稳定,TN(总氮)去除率由原来的13.2%提高到54.6%,同时COD、BOD5、SS的去除率也分别由原来的83%、92.1%、89.2%提高到85.5%、95.2%、90%,且设施改进投资及运行费用省,对提高污水脱氮效果有应用价值。  相似文献   

10.
生物脱氮工艺研究进展   总被引:2,自引:0,他引:2  
通过对传统生物脱氮运行机理,运行参数的研究,分析了短程硝化-反硝化、同时硝化反硝化、好氧反硝化、厌氧氨氧化等几种生物脱氮新工艺的基本原理及最新研究现状.另外,分析了厌氧氨氧化所存在的缺点及应用前景.  相似文献   

11.
Tertiary denitrification is an effective method for nitrogen removal from wastewater. A pilot-scale biofilter packed with suspended carriers was operated for tertiary denitrification with ethanol as the organic carbon source. Long-term performance, biokinetics of denitrification and biofilm growth were evaluated under filtration velocities of 6, 10 and 14 m/hr. The pilot-scale biofilter removed nitrate from the secondary effluent effectively, and the nitrate nitrogen(NO_3-N) removal percentage was 82%, 78% and 55% at the filtration velocities of 6, 10 and 14 m/hr, respectively. At the filtration velocities of 6 and 10 m/hr, the nitrate removal loading rate increased with increasing influent nitrate loading rates, while at the filtration velocity of 14 m/hr, the removal loading rate and the influent loading rate were uncorrelated.During denitrification, the ratio of consumed chemical oxygen demand to removed NO_3-N was 3.99–4.52 mg/mg. Under the filtration velocities of 6, 10 and 14 m/hr, the maximum denitrification rate was 3.12, 4.86 and 4.42 g N/(m~2·day), the half-saturation constant was 2.61, 1.05 and 1.17 mg/L, and the half-order coefficient was 0.22, 0.32 and 0.24(mg/L)1/2/min,respectively. The biofilm biomass increased with increasing filtration velocity and was 2845,5124 and 7324 mg VSS/m~2 at filtration velocities of 6, 10 and 14 m/hr, respectively. The highest biofilm density was 44 mg/cm~3 at the filtration velocity of 14 m/hr. Due to the low influent loading rate, biofilm biomass and thickness were lowest at the filtration velocity of 6 m/hr.  相似文献   

12.
为提高污水厂尾水水质,本研究采用新型缓释碳源复配海绵铁、活性炭作为反硝化生物滤池的复合填料,分别以模拟二级处理出水和实际污水厂尾水为进水,考察了复合缓释碳源填料反硝化生物滤池-臭氧-活性炭(DNBF-O_3-GAC)组合工艺同步脱氮除磷及去除微生物代谢产物的性能,并借助Mi Seq高通量测序技术分析了反硝化生物滤池生物膜中的微生物群落结构特征.结果表明,组合工艺取得了较好的脱氮除磷及微生物代谢产物的效果:模拟配水阶段和实际尾水阶段NO_3~--N平均去除率分别达到88.87%、79.99%;TP平均去除率分别达到87.67%、65.51%;UV254平均去除率分别达到45.51%、49.23%.组合工艺各处理单元具有不同的功能:NO_3~--N、TN、TP、TFe的变化主要发生在反硝化生物滤池反应器中;UV254、三维荧光强度的变化主要发生在臭氧-活性炭反应器中.微生物在属水平进行聚类分析结果表明,反硝化脱氮系统存在硫自养反硝化菌和异养反硝化菌,当实际尾水阶段碳源相对不足时,硫自养反硝化作用有了显著加强,Thiobacillus(硫杆菌属)的占比由7.44%上升至29.62%,硫自养反硝化与异养反硝化形成的这种互补作用延长了新型缓释碳源的使用周期.  相似文献   

13.
Tertiary denitrification is an effective method for nitrogen removal from wastewater. A pilot-scale biofilter packed with suspended carriers was operated for tertiary denitrification with ethanol as the organic carbon source. Long-term performance, biokinetics of denitrification and biofilm growth were evaluated under filtration velocities of 6, 10 and 14 m/hr. The pilot-scale biofilter removed nitrate from the secondary effluent effectively, and the nitrate nitrogen (NO3-N) removal percentage was 82%, 78% and 55% at the filtration velocities of 6, 10 and 14 m/hr, respectively. At the filtration velocities of 6 and 10 m/hr, the nitrate removal loading rate increased with increasing influent nitrate loading rates, while at the filtration velocity of 14 m/hr, the removal loading rate and the influent loading rate were uncorrelated. During denitrification, the ratio of consumed chemical oxygen demand to removed NO3-N was 3.99–4.52 mg/mg. Under the filtration velocities of 6, 10 and 14 m/hr, the maximum denitrification rate was 3.12, 4.86 and 4.42 g N/(m2·day), the half-saturation constant was 2.61, 1.05 and 1.17 mg/L, and the half-order coefficient was 0.22, 0.32 and 0.24 (mg/L)1/2/min, respectively. The biofilm biomass increased with increasing filtration velocity and was 2845, 5124 and 7324 mg VSS/m2 at filtration velocities of 6, 10 and 14 m/hr, respectively. The highest biofilm density was 44 mg/cm3 at the filtration velocity of 14 m/hr. Due to the low influent loading rate, biofilm biomass and thickness were lowest at the filtration velocity of 6 m/hr.  相似文献   

14.
微气泡曝气生物膜反应器是微气泡曝气技术与好氧生物处理相结合的新型处理工艺.本研究采用微气泡曝气生物膜反应器在低气水比下处理低C/N比废水,考察了生物脱氮过程和性能,并分析了脱氮功能菌群变化.结果表明,通过低气水比(小于1∶2)控制DO浓度并降低进水C/N比,可以实现生物脱氮过程从同步硝化-反硝化向同步短程硝化-厌氧氨氧化-反硝化(SNAD)过程转变,并可获得较高的低C/N比废水生物脱氮性能. DO浓度低于1. 0 mg·L-1、进水C/N比为1∶2. 8时,SNAD过程成为生物脱氮的主要途径,TN平均去除率可达到76. 3%,TN平均去除负荷为1. 42 kg·(m3·d)-1,厌氧氨氧化过程对TN去除的贡献率为86. 0%.随着进水C/N比降低,生物膜中亚硝化菌群和厌氧氨氧化菌群的相对丰度逐渐增加,而硝化菌群和反硝化菌群的相对丰度逐渐降低.生物脱氮功能菌群变化与脱氮过程转变为SNAD过程相一致.  相似文献   

15.
李祥  朱亮  黄勇  杨朋兵  崔剑虹  马航 《环境科学》2016,37(4):1467-1471
在多晶硅废水处理过程中,为了减少先除氟后脱氮工艺中酸碱的投加量.本实验运行反硝化反应器研究了先脱氮后除氟工艺中先脱氮的可行性.结果表明,废水中F-浓度对反硝化存在一定的影响.当F-浓度控制在750 mg·L~(-1)左右,反硝化污泥脱氮速率无明显影响,当F-浓度继续增加时,反硝化污泥的脱氮速率逐步降低.在处理含F-(浓度控制在800 mg·L~(-1))多晶硅清洗废水时,反硝化污泥的脱氮性能无明显影响,经过93 d的运行,总氮出水稳定在50 mg·L~(-1)以内,总氮去除率达到90%以上,去除速率达到5 kg·(m~3·d)~(-1).经计算,与传统先除氟后脱氮工艺相比,可节省大约70%的碱投加量和100%的酸投加量,极大地降低废水处理成本.  相似文献   

16.
近年来,随着中国经济的快速发展,水体中氨氮超标问题已严重影响到人类身体健康和生态环境平衡,有效去除水体中的氨氮已成为人们研究的热点.在传统污水生物脱氮处理中,常采用微生物的硝化、反硝化作用去除污水中的氮素,从而降低对环境的污染.本文从活性污泥反应器中分离出一株异养硝化-好氧反硝化菌株,并命名为X1-L.菌体经形态学观察、生理生化测定及16S rRNA基因序列分析,确定属于芽孢杆菌属(Bacillus sp.),Genbank登录号为MT457091,并利用MEGA7.0软件建立了相应的系统发育树.在以NH4+-N为唯一氮源的条件下,菌株X1-L生长较好,COD去除率为96.4%,氨氮去除率达到99.6%,经硝化作用去除的氮有43.7%,证明菌株X1-L具有异养硝化能力.在以NO2--N或NO3--N为唯一氮源的条件下,菌株X1-L生长也较好,COD去除率分别为95.3%和96.4%,NO2--N和NO3--N去除率分别为95.5%和96.5%,经反硝化作用去除的氮分别有67.7%和68.2%,证明菌株X1-L具有好氧反硝化能力.  相似文献   

17.
To investigate the effect of air-exposed biocathode(AEB) on the performance of singlechamber microbial fuel cell(SCMFC), wastewater quality, bioelectrochemical characteristics and the electrode biofilms were researched. It was demonstrated that exposing the biocathode to air was beneficial to nitrogen removal and current generation. In Test 1 of 95%AEB, removal rates of ammonia, total nitrogen(TN) and chemical oxygen demand(COD)reached 99.34% ± 0.11%, 99.34% ± 0.10% and 90.79% ± 0.12%, respectively. The nitrogen removal loading rates were 36.38 g N/m~3/day. Meanwhile, current density and power density obtained at 0.7 A/m3 and 104 m W/m~3 respectively. Further experiments on opencircuit(Test 2) and carbon source(Test 3) indicated that this high performance could be attributed to simultaneous biological nitrification/denitrification and aerobic denitrification, as well as bioelectrochemical denitrification. Results of community analysis demonstrated that both microbial community structures on the surface of the cathode and in the liquid of the chamber were different. The percentage of Thauera, identified as denitrifying bacteria, maintained at a high level of over 50% in water, but decreased gradually in the AEB. Moreover, the genus Nitrosomonas, Alishewanella, Arcobacter and Rheinheimera were significantly enriched in the AEB, which might contribute to both enhancement of nitrogen removal and electricity generation.  相似文献   

18.
为了解流化床生物滤器内部细菌群落组成及其净水机制,通过高通量测序方法,研究了不同时期滤器中表层和底层滤料的细菌群落结构,分析了滤器不同床层的营养盐变化情况及水处理性能.结果表明,滤器的硝化作用主要发生于床层下部,表层对其的贡献率不显著.稳定工况下,流化床生物滤器对NH_4~+-N、TN、BOD_5和SS的去除率达到(68.3±2.24)%、(49.54±3.56)%、(60.35±4.98)%和(45.21±2.11)%,对氨氮的去除负荷达到(343.28±75.5)g·(m~3·d)~(-1),其硝化性能优于常规生物滤器.试验共筛选31个门,490个细菌属,其生物多样性显著高于常规生物滤器.自清洗装置的启停对滤器中不同区域载体表面细菌的多样性没有影响,对各样品的优势菌群略有影响.在滤器稳定运行时,表层区域的优势细菌基本维持不变,主要包括厌氧绳菌科、黄杆菌科、红杆菌科、硝化螺菌属、暖绳菌科.而底层区域的优势细菌随着时间的推移有所变化,主要包括硝化螺菌属、微丝菌属、Muricauda、Defluviimonas、红杆菌科.  相似文献   

19.
张千  吉芳英  徐璇 《环境科学》2018,39(4):1763-1772
为解决现有低碳源污水处理工艺能耗高、工艺复杂和脱氮效果不佳等问题,提出一种新型的混凝沉淀/后置固相反硝化滤池工艺.为了从微生物角度来解释该工艺的宏观脱氮效果,采用聚合酶链式反应-变性梯度凝胶电泳(PCR-DGGE)技术研究了工艺中生物滤池沿程微生物群落结构的变化规律及脱氮功能菌的类型.结果表明,硝化滤池内生物膜中微生物的多样性和丰度沿上向流方向呈逐渐上升的趋势,且硝化细菌在顶端富集,而固相反硝化滤池呈先上升后下降的趋势,反硝化菌在中部富集.硝化滤池中的优势菌株为硝化细菌Nitrosomonas sp. Nm47和Candidatus Nitrospira defluvii;固相反硝化滤池中的优势菌株为反硝化菌Rubrivivas gelatinosus和固体碳源降解反硝化菌Myxobacteria.  相似文献   

20.
A bottom substrate denitrification tank for a recirculating aquaculture system was developed. The laboratory scale denitrification tank was an 8 L tank (0.04 m2 tank surface area), packed to a depth of 5 cm with a bottom substrate for natural denitrifying bacteria. An aquarium pump was used for gentle water mixing in the tank; the dissolved oxygen in the water was maintained in aerobic conditions (e.g. > 2 mg/L) while anoxic conditions predominated only at the bottom substrate layer. The results showed that, among the four substrates tested (soil, sand, pumice stone and vermiculite), pumice was the most preferable material. Comparing carbon supplementation using methanol and molasses, methanol was chosen as the carbon source because it provided a higher denitrification rate than molasses. When methanol was applied at the optimal COD:N ratio of 5:1, a nitrate removal rate of 4591 ± 133 mg-N/m2 tank bottom area/day was achieved. Finally, nitrate removal using an 80 L denitrification tank was evaluated with a 610 L recirculating tilapia culture system. Nitrate treatment was performed by batch transferring high nitrate water from the nitrification tank into the denitrification tank and mixing with methanol at a COD:N ratio of 5:1. The results from five batches of nitrate treatment revealed that nitrate was successfully removed from water without the accumulation of nitrite and ammonia. The average nitrate removal efficiency was 85.17% and the average denitrification rate of the denitrification tank was 6311 ± 945 mg-N/m2 tank bottom area/day or 126 ± 18 mg-N/L of pumice packing volume/day.  相似文献   

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