首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到20条相似文献,搜索用时 31 毫秒
1.
微气泡曝气生物膜反应器同步硝化反硝化研究   总被引:1,自引:5,他引:1  
刘春  年永嘉  张静  张明  张磊  龚鹏飞  肖太民  李星 《环境科学》2014,35(6):2230-2235
同步硝化反硝化(SND)是废水处理中的新型生物脱氮工艺,和传统生物脱氮工艺相比具有显著的应用优势.本研究采用微气泡曝气固定床生物膜反应器,研究了SND过程中污染物去除效果并检测了生物膜功能菌群的变化情况.结果表明,在微气泡曝气固定床生物膜反应器内可以实现同步硝化反硝化,通过提高进水COD负荷和C∶N比,降低溶解氧(DO)浓度,同时增加填料床层孔隙率,可以改善SND效果.当进水COD负荷和总氮(TN)负荷为0.86 kg·(m3·d)-1和0.10 kg·(m3·d)-1,且填料床层孔隙率为81%时,COD和TN的去除率分别为97.6%和70.2%,实现了COD和TN的同步高效去除;同时,微气泡曝气对氧传质的强化作用使得氧利用率高达91.8%.此外,生物膜活性和硝化及反硝化功能菌群的变化,与反应器COD、氨氮和TN去除能力的变化基本一致.  相似文献   

2.
A new biological nitrogen removal process, which is named herein “The circulating fluidized bed bioreactor (CFBBR)”, was developed for simultaneous removal of nitrogen and organic matter. This process was composed of an anaerobic bed (Riser), aerobic bed (Downer) and connecting device. Influent and nitrified liquid from the aerobic bed enters the anaerobic bed from the bottom of the anaerobic bed, completing the removal of nitrogen and organic matter. The system performance under the conditions of different inflow loadings and nitrified liquid recirculation rates ranging from 200% to 600% was examined. From a technical and economic point of view, the optimum nitrified liquid recirculation ratewas 400%. With a shortest total retention time of 2.5 h (0.8 h in the anaerobic bed and 1.5 h in the aerobic bed) and a nitrified liquid recirculation rate of 400% based on the influent flow rate, the average removal efficiencies of total nitrogen (TN) and soluble chemical oxygen demand (SCOD) were found to be 88% and 95%, respectively. The average effluent concentrations of TN and SCOD were 3.5 mg/L and 16 mg/L, respectively. The volatile suspended solid (VSS) concentration, nitrification rate and denitrification rate in the system were less than 1.0 g/L, 0.026-0.1 g NH4 +-N/g VSS·d, and 0.016–0.074 g NOx -N/g VSS·d, respectively. __________ Translated from Environmental Engineering, 2007, 25(6): 2, 7–10 [译自: 环境工程]  相似文献   

3.
An aerobic sequencing batch biofilm reactor (SBBR) packed with Bauer rings was used to treat real domestic wastewater for simultaneous nitrification and denitrification. The SBBR is advantageous for creating an anoxic condition, and the biofilm can absorb and store carbon for good nitrification and denitrification. An average concentration of oxygen ranging from 0.8 to 4.0 mg/L was proved very efficient for nitrification and denitrification. Volumetric loads of TN dropped dramatically and effluent TN concentration increased quickly when the concentration of average dissolved oxygen was more than 4.0 mg/L. The efficiency of simultaneous nitrification and denitrification (SND) increased with increasing thickness of the biofilm. The influent concentration hardly affected the TN removal efficiency, but the effluent TN increased with increasing influent concentration. It is suggested that a subsequence for denitrification be added or influent amount be decreased to meet effluent quality requirements. At optimum operating parameters, the TN removal efficiency of 74%–82% could be achieved. Translated from Acta Scientiae Circumstantiae, 2006, 26(5): 728–733 [译自: 环境科学学报]  相似文献   

4.
MBR同步硝化反硝化及异养硝化试验研究   总被引:8,自引:3,他引:5  
在以限制混合液溶解氧浓度方式运行的M BR反应器中,通过改变进水COD/TKN、混合液DO浓度等工艺参数,研究了对系统中同步硝化反硝化(SND)过程的影响因素。根据试验结果探讨了M BR系统中所实现的SND机理,同时对系统中存在的异养硝化细菌进行了分离培养,并对其硝化特性进行了初步研究分析。试验结果表明:影响系统SND的主要因素是进水COD/TKN和反应器中控制的混合液DO浓度。系统中存在一定量的异养硝化菌。  相似文献   

5.
移动床膜生物反应器同步硝化反硝化特性   总被引:8,自引:3,他引:8  
杨帅  杨凤林  付志敏 《环境科学》2009,30(3):803-808
采用挂膜填料代替传统膜生物反应器(MBR)的活性污泥,构建一种新型的移动床膜生物反应器 (MBMBR),考察其处理模拟生活污水的效果及同步硝化反硝化(SND)特性.结果表明,移动床膜生物反应器运行67 d,对模拟生活污水表现出良好的去除有机物及同步硝化反硝化能力.进水COD浓度为573.5~997.7 mg/L时,膜出水COD去除率为88.3%~99.2%.进水氨氮浓度为45.5~99.2 mg/L时,膜出水氨氮去除率为72.1%~99.8%,总氮去除率为62.0%~96.3%.批式实验结果表明,生物膜去除总氮的最佳溶解氧浓度为1 mg/L,其中氨氮和总氮去除率分别为100%和60%.生物膜系统内可能存在好氧反硝化现象.DO为3 mg/L且有机碳源充足时,生物膜总氮去除率为99.0%,SND率达到99.8%.扫描电镜对生物膜的观察发现生物膜内部存在着明显的孔隙,有利于溶解氧和有机基质从外界向生物膜内部传递.  相似文献   

6.
The nitrogen removal mechanism was studied and analyzed when treating the ammonium-rich landfill leachate by a set of sequencing batch biofilm reactors (SBBRs), which was designed independently. At the liquid temperature of (32 ± 0.4)°C, and after a 58-days domestication period and a 33-days stabilization period, the efficiency of ammonium removal in the SBBR went up to 95%. Highly frequent intermittent aeration suppressed the activity of nitratebacteria, and also eliminated the influence on the activity of anaerobic ammonium oxidation (ANAMMOX) bacteria and nitritebacteria. This influence was caused by the accumulation of nitrous acid and the undulation of pH. During the aeration stage, the concentration of dissolved oxygen was controlled at 1.2–1.4 mg/L. The nitritebacteria became dominant and nitrite accumulated gradually. During the anoxic stage, along with the concentration debasement of the dissolved oxygen, ANAMMOX bacteria became dominant; then, the nitrite that was accumulated in the aeration stage was wiped off with ammonium simultaneously. Translated from Acta Scientiae Circumstantiae, 2006, 26(1): 55–60 [译自: 环境科学学报]  相似文献   

7.
Simultaneous nitrification and denitrification (SND) effect and phosphor removal were investigated in a one-staged aerobic submerged membrane bioreactor on pilot-scale with mixed liquor suspended solids (MLSS) 19--20 g/L. The effects of DO concentration, sludge floc size distribution on SND were studied. Test results suggested that SND was successfully performed in the membrane bioreactor (MBR) and about 70% total nitrogen removal efficiency was achieved when DO concentration was set to 0.2-- 0.3 mg/L. The main mechanisms governing SND were the suitable sludge floc size and the low DO concentration which was caused by low oxygen transfer rate with such a high MLSS concentration in the MBR. In the meantime, phosphor removal was also studied with polymer ferric sulfate (PFS) addition and 14 mg/L dosage of PFS was proper for the MBR to remove phosphor. PFS addition also benefited the MBR operation owing to its reduction of extracellular polymer substances (EPS) of mixed liquor.  相似文献   

8.
A pilot-scale Orbed oxidation ditch was operated for 17 months to optimize nitrogen removal from domestic wastewater of average COD to total nitrogen ratio of 2.7, with particular concern about the roles of dissolved oxygen (DO), mixed liquor suspended solids (MLSS) and return activated sludge (RAS) recycle ratio. Remarkable simultaneous nitrification and denitrification (SND) was observed and mean total nitrogen (TN) removal efficiency up to 72.1% was steadily achieved, at DO concentration in the out, middle and inner channel of 0.1, 0.4 and 0.7 mg/L, respectively, with an average M LSS of 5.5 g/L and RAS recycle ratio of 150%. Although the out channel took the major role in TN removal, the role of middle channel should never be ignored. The denitrification potential could be fully developed under low DO, high MLSS with adequate RAS ratio. The sludge settleability was amazingly improved under low DO operation mode, and some explanations were tried. In addition, a scries of simplified batch tests were done to determine whether novel microorganisms could make substantial contribution to the performance of nitrogen removal. The results indicated that the SND observed in this Orbal oxidation ditch was more likely a physical phenomenon.  相似文献   

9.
为分析CMICAO(多点交替进水阶式A2/O)工艺处理实际生活污水时对氮、磷的去除机理,基于物料衡算方程,计算各反应池内污染物质量浓度,并与实测值进行对比,分析氮、磷的去除途径,提出强化工艺脱氮除磷的方法.结果表明,试验条件下,出水中ρ(TP)、ρ(TN)和ρ(氨氮)分别为(0.41±0.08)、(10.24±0.40)和(2.07±0.30)mg/L.除微生物同化作用外,系统中的氮主要通过好氧硝化、缺氧/厌氧反硝化及SND(同步硝化反硝化)途径去除,阶段一3#反应池、阶段二2#反应池和阶段三1#反应池的SND率分别达到37%、52%和58%左右.磷通过聚磷菌厌氧/缺氧释磷、好氧吸磷和反硝化除磷途径去除,阶段一4#池的反硝化吸磷量达到3 mg/L左右.降低好氧池ρ(DO)和改变缺氧池与厌氧池的进水量比例可强化脱氮除磷效果.  相似文献   

10.
废水处理工艺中同步硝化/反硝化研究进展   总被引:16,自引:0,他引:16  
与传统脱氮工艺相比,同步硝化/反硝化(SND)工艺由于具有可降低能耗,减少基建费用等明显的优点,正受到越来越多的关注。在广泛查阅近期国内外相关研究成果的基础上,结合目前的工作,从同步硝化/反硝化现象发生的机理及工艺控制因素两个方面进行分析和阐述,并简要介绍了这一课题未来的研究方向。指出反应器溶氧不均、活性污泥絮凝颗粒中缺氯微环境的形成以及某些好氯反硝化菌和异养硝化菌的存在是同步硝化/反硝化现象的主要原因。同步硝化/反硝化的过程往往伴随着亚硝酸盐的积累现象,部分同步硝化/反硝化过程很可能是通过亚硝酸盐途径进行的。对于同步硝化/反硝化的工艺控制,目前主要通过控镧碳源、活性污泥絮凝颗粒的大小、溶解氯、以及氯化还原电极电位(ORP)进行的。反应中可溶性COD(SCOD)的含量对于反硝化过程的进行具有重要的意义:碳源投加方式的改变,可改善同步硝化/反硝化的效果。絮凝颗粒的密度,尺寸与溶解氯的水平共同影响了絮体内部缺氧微环境的形成:同时在工艺过程中,控制溶解氯水平的变化可以取得较好的脱氮效果。对于氯化还原电极电位(ORP)控制的范围往往取决于污水的性质,同时也可结合其他一些指标(如pH、释放气体中NO浓度)作为综合的控制手段。  相似文献   

11.
Since eutrophication has become increasingly severe in China, nitrogen and phosphorous have been the concern of wastewater treatment, especially nitrogen removal. The stabilization of the intelligent control system and nitrogen removal efficiency were investigated in a pilot-scale aerobic-anoxic sequencing batch reactor (SBR) with a treatment capacity of 60 m3/d. Characteristic points on the profiles of dissolved oxygen (DO), pH, and oxidation reduction potential (ORP) could exactly reflect the process of nitrification and denitrification. Using the intelligent control system not only could save energy, but also could achieve advanced nitrogen removal. Applying the control strategy water quality of the effluent could stably meet the national first discharge standard during experiment of 10 months. Even at low temperature (t = 13°C), chemical oxygen demand (COD) and total nitrogen (TN) in the effluent were under 50 and 5 mg/L, respectively. Translated from Acta Scientise Circumstantiae, 2006, 26(5): 745–750 [译自: 环境科学学报]  相似文献   

12.
冷璐  信欣  鲁航  唐雅男  万利华  郭俊元  程庆锋 《环境科学》2015,36(11):4180-4188
以低COD/N生活污水(C/N为3∶1~4∶1)为进水基质,在序批式活性污泥反应器(SBR)中接种好氧颗粒污泥(AGS),通过逐步降低溶解氧(DO)浓度的方式快速实现同步硝化反硝化耦合除磷.反应器运行20 d后(DO浓度为0.50~1.0mg·L-1),系统出现同步硝化反硝化耦合除磷的现象.在随后运行的40 d里,反应器对废水COD、NH+4-N、TN和TP的平均去除率分别为84.84%、93.51%、77.06%和85.69%;出水NO-3-N和NO-2-N平均浓度分别为4.01 mg·L-1和3.17 mg·L-1.反应器启动运行后期,污泥体积指数(SVI)为55.22 m L·g-1,沉降性能良好,颗粒结构较完整.不同氮源的周期曝气阶段结果表明,对TN的去除率为NH+4-NNO-2-NNO-3-N;对TP的去除率为NO-3-NNO-2-NNH+4-N,反应器主要以同步硝化反硝化脱氮和反硝化方式除磷.  相似文献   

13.
应用A/O中试装置处理实际生活污水,研究了低DO浓度下系统对有机物、氨氮和总氮的去除效果.研究结果表明,低DO浓度下COD和氨氮的平均去除率分别为85%和92%.由于进水C/N比仅为2.93,总氮平均去除率仅为64%,但提高亚硝酸氮积累率可以提高总氮去除率,当亚硝化率从15%增加到85%,总氮去除率将增加12%.氨氮去除率和硝化速率、总氮去除率具有较好的相关性.维持低DO浓度可以实现亚硝酸型同步硝化反硝化反应,基于氮的物料平衡可知它占系统总氮去除率的5%~12%,增加DO浓度将破坏同步硝化反硝化(SND)现象.  相似文献   

14.
为了解厌氧/好氧运行的序批式反应器(SBR)中,强化生物除磷(EBPR)与同步硝化反硝化(SND)的耦合脱氮除磷特性,以实际低C/N (约为3.5)生活污水为处理对象,先通过调控进水C/N考察其对EBPR启动和聚磷菌(PAOs)富集情况的影响,再通过调控好氧段DO浓度考察其对系统脱氮除磷性能、SND率及碳源转化特性的影响.结果表明,DO浓度为2.0mg/L,当进水C/N由3.2提高至7.5并降至3.8时,反应器出水PO43--P浓度由3.9mg/L逐渐降至0.5mg/L以下,且厌氧释磷量(PRA)由3.3mg/L逐渐升高至约30mg/L.此后,当DO浓度逐渐降至约1.0mg/L时,SND现象愈加明显,且其与EBPR耦合使得系统总氮(TN)和PO43--P去除率分别提高至85%和94%.但当DO浓度约为0.5mg/L时,硝化过程进行不完全,亚硝酸盐积累较为明显,耦合系统中存在同步短程硝化反硝化现象.DO浓度为约1.0mg/L时,系统具有最高的脱氮除磷性能.此外,当DO浓度由2.0mg/L降至0.5mg/L时,PAOs较聚糖菌(GAOs)在厌氧内碳源储存中的贡献逐渐减小(PPAO,An由30.3%逐渐降至20.2%),PRA降低约7mg/L.DO浓度为1.0~1.5mg/L最有利于系统厌氧段内碳源PHA的合成.  相似文献   

15.
利用SBR(序批式反应器)研究了不同ρ(NaCl)、曝气时间、ρ(CODCr)、进水ρ(NH4+-N)对AGS(好氧颗粒污泥)短程硝化反硝化的影响. 结果表明,在pH、温度和ρ(DO)为8.0、30 ℃和3 mg/L条件下,以及ρ(NaCl)、曝气时间、ρ(CODCr)和ρ(NH4+-N)为20 g/L、8 h、600 mg/L和70 mg/L时,ηA(NH4+-N去除率)和NAR(NO2--N积累率)达到最佳. 当进水ρ(NaCl)为10 g/L时,NOB(亚硝酸盐氧化菌)被完全抑制,AOB(氨氧化菌)能够保持正常活性. ρ(CODCr)较高时能够促进NAR的提高. 经过116 d的培养,AGS短程硝化反硝化的耐盐极限为50 g/L,此时ηA小于50%,AOB被严重抑制,AGS丧失硝化能力. AGS的同步硝化反硝化作用明显,SND(同步硝化反硝化率)平均值为24.2%,SNDV(同步硝化反硝化比速率)平均值为0.63 h-1,低ρ(DO)比高ρ(DO)下的SND同步硝化反硝化作用更为明显.   相似文献   

16.
进水C/N对富集聚磷菌的SNDPR系统脱氮除磷的影响   总被引:1,自引:0,他引:1  
为了解富集聚磷菌(PAOs)的同步硝化反硝化除磷(SNDPR)系统的脱氮除磷特性,采用延时厌氧(180min)/低氧(溶解氧0.5~1.0mg/L)运行的SBR反应器,以实际生活污水为处理对象, 通过投加固态乙酸钠调节进水C/N值(约为11,8,4,3),考察其对系统脱氮除磷特性及同步硝化反硝化(SND)脱氮率的影响.结果表明:C/N对系统的除磷性能没有影响,出水PO43--P浓度均稳定在0.3mg/L左右,这是由于系统内聚磷菌(PAOs)含量高,且在低氧段可同时发生好氧吸磷与反硝化吸磷.随着C/N的增大,出水NH4+-N浓度升高,C/N下降时,出水NO3--N浓度升高.此外,随着C/N的减小,厌氧段反硝化所消耗的COD占进水COD的比例增大,SND可利用的内碳源-PHAs储存量减少,但PHV的利用率增加;当C/N为4~8时,SND现象最明显,SND脱氮率达50.8%,而其它C/N条件下,SND脱氮率都有相应程度的减弱.C/N为8时,系统出水综合指标最好,TN去除率高达80.8%.  相似文献   

17.
好氧颗粒污泥膜生物反应器脱氮特性   总被引:4,自引:1,他引:3  
好氧颗粒污泥膜生物反应器(GMBR)连续运行71 d,对模拟生活污水表现出良好的有机物去除及同步硝化反硝化(SND)能力.进水TOC浓度为56.8~132.6mg/L时,膜出水TOC去除率为84.7%~91.9%;进水氨氮浓度为28.1~38.4mg/L时,稳定运行阶段氨氮去除率为85.4%~99.7%,总氮去除率为41.7%~78.4%.结合反应器中污泥生长形态,对不同粒径污泥的同步硝化反硝化研究表明,好氧条件下絮状污泥几乎没有反硝化能力,SND能力来源于颗粒污泥,并且随着污泥粒径的增大,反硝化速率以及总氮去除效率提高.通过扫描电镜对颗粒污泥外观以及沿传质方向剖面内部特征的观察分析,对颗粒污泥同步硝化反硝化的作用过程进行了探讨.  相似文献   

18.
1株异养硝化-好氧反硝化细菌DK1的分离鉴定及其脱氮特性   总被引:4,自引:3,他引:4  
从某反应器活性污泥中分离筛选出1株假单胞菌属(Pseudomonas sp.)细菌,命名为DK1,并对该菌进行脱氮特性研究.在以葡萄糖为碳源,C/N量比为5时,分别以NaNO_3和NaNO_2为氮源,二者的好氧反硝化速率为4.09 mg·(L·h)-1和4.43mg·(L·h)~(-1).以二者同时为氮源脱氮率为100%;此外,菌株DK1具有异养硝化性能,NH_4~+-N平均去除速率为2.32mg·(L·h)-1.缺氧时以NO_2~--N为氮源菌株DK1可将一系列梯度浓度NO_2~--N(约100~300 mg·L-1)在36 h内降为0.当NO_3~--N和NO_2~--N同时存在时,菌株DK1会优先利用NO_3~--N进行反硝化.同时该菌株还具有同步硝化反硝化(SND)性能,可同时去除NH_4~+-N、NO_2~--N或NH_4~+-N、NO_3~--N,30 h内脱氮率分别达95.06%和94.69%.相同时间内在NH_4~+-N、NO_2~--N和NO_3~--N三者均存在时,脱氮效果最佳,达100%.菌株DK1的高效SND及反硝化性能表明其在处理含氮废水方面有一定的潜力和应用价值.  相似文献   

19.
To achieve high efficiency of nitrogen and phosphorus removal and to investigate the rule of simultaneous nitrification and denitrification phosphorus removal(SNDPR),a whole course of SNDPR damage and recovery was studied in a pilot-scale,anaerobicanoxic oxidation ditch(OD),where the volumes of anaerobic zone,anoxic zone,and ditches zone of the OD system were 7,21,and 280L,respectively.The reactor was fed with municipal wastewater with a flow rate of 336 L/d.The concept of simultaneous nitrification and denitrification (SND)rate(rSND) was put forward to quantify SND.The results indicate that:(1)high nitrogen and phosphorus removal efficiencies were achieved during the stable SND phase,total nitrogen (TN) and total phosphate(TP) removal rates were 80%and 85%,respectively;(2)when the system was aerated excessively,the stability of SND was damaged,and rSND dropped from 80% to 20%or less;(3)the natural logarithm of the ratio of NOx to MJ4 in the effluent had a linear correlation to oxidation-reduction potential (ORP);(4)when NO3- was less than 6 mg/L.high phosphorus removal efficiency could be achieved;(5)denitrifying phosphorus removal (DNPR) could take place in the anaerobic-anoxic OD system.The major innovation was that the SND rate was devised and quantified.  相似文献   

20.
以模拟低C/N比污水为研究对象,采用集成模块式污水处理装置与技术,在反应器主反应区实现了同步硝化反硝化(SND),研究了在不同DO、HRT、C/N比、pH值下污水氨氮、总氮的去除,研究结果表明,DO=1.2~1.4mg/L,总HRT=20h(主反应区HRT=8h),原水C/N=5:1,pH=7.5时,NH3--N可以从15mg/L降至2.5mg/L,总氮可以从20mg/L降至4mg/L,去除率可以达到83%和80%;主反应区SND动力学模型求解得出集成模块式污水处理SND动力学方程及反硝化过程中硝酸盐氮饱和常数 =1.55mg/L,远高于普通活性污泥反硝化过程中的饱和常数0.06~0.2mg/L.集成模块式污水处理技术能高效去除低C/N比污水中的总氮,且具有运行稳定和抗冲击等优点.为中小城镇生活污水深度脱氮提供了技术支持和理论基础.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号