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1.
张耀斌  邢亚彬  荆彦文  全燮 《环境科学》2010,31(10):2360-2364
采用厌氧-缺氧条件运行的序批式移动床生物膜反应器,考察了NO3--N进水浓度及其投加方式对低碳废水(COD=200mg/L)反硝化除磷的影响.经驯化后,反硝化聚磷菌(DPB)在总聚磷菌的份额从15.7%增长到71.3%,富集了DPB.NO3--N的浓度对处理有较大影响.在NO3--N为30mg/L(即C/N=6.7:1)时,COD、PO43--P和NO3--N的去除率分别为97.8%、82.0%和81.2%,实现低碳污水的高效处理.NO3--N较低或较高浓度(20mg/L和40mg/L)时,缺氧段吸磷不充分,PHB由厌氧开始时的2.2mg/g左右分别积累至5.1mg/g和3.5mg/g,影响下一周期磷的释放.1次投加、2次投加和连续流加NO3--N,除对缺氧初期的反硝化吸磷速率有影响外,对反硝化除磷的效率影响不明显.  相似文献   

2.
强化生物除磷体系中的反硝化除磷   总被引:20,自引:0,他引:20  
 采用SBR反应器,研究了以硝酸盐作为电子受体的反硝化除磷过程.结果表明,反硝化聚磷菌存在于传统的强化生物除磷体系中.厌氧段磷的释放和COD的消耗成线性关系.通过厌氧/好氧交替运行方式,反硝化聚磷菌在聚磷菌中的比例从13.3%上升到69.4%.稳定运行的厌氧/缺氧SBR反应器具有良好的强化生物除磷和反硝化脱氮性能,缺氧结束时体系中磷浓度小于1mg/L,除磷效率大于89%.  相似文献   

3.
序批式膜生物反应器中反硝化聚磷菌的富集   总被引:6,自引:1,他引:5  
采用序批式膜生物反应器(SBMBR)对以硝酸盐作为电子受体的反硝化聚磷菌的富集进行了研究.结果表明,经过厌氧-好氧和厌氧-缺氧-好氧2个阶段的富集,反硝化聚磷菌占全部聚磷菌的比例从19.4%上升到69.6%,每周期缺氧段投加硝酸盐氮120 mg时,SBMBR系统运行最为稳定.稳定运行的SBMBR反硝化强化除磷体系具有良好的强化除磷和反硝化脱氮性能,缺氧段脱氮和除磷效率分别达到100%和84%,膜出水总磷浓度平均低于0.5mg/L,系统除磷率达到96.1%.此外,氨氮去除率保持在92.2%,氨氮被去除的同时并没有发现亚硝酸盐氮和硝酸盐氮的明显积累.  相似文献   

4.
反硝化除磷脱氮系统中DPB的驯化富集培养   总被引:2,自引:2,他引:0  
黄荣新  张杰  谌建宇 《环境科学》2010,31(5):1252-1256
反硝化同时脱氮除磷系统中反硝化除磷菌(DPB)的培养驯化状况,将直接影响污水中氮磷等营养元素的同时去除效率以及系统的高效稳定运行,为此本实验研究设计了一套以实际生活污水为处理对象的双污泥反硝化脱氮除磷工艺流程,采用逐渐过渡的培养方式,为DPB创造良好的厌氧/缺氧交替环境,即创造特定的适合DPB生存的环境条件让其进行自然选择,以筛选出来需要的DPB菌.结果表明,通过15d的间歇曝气的厌氧/好氧(A/O)运行方式可以对PAOs进行快速诱导;第二阶段,通过好氧曝气时间的逐渐减少,缺氧段投加硝酸氮的厌氧/好氧/缺氧(A/O/A)运行模式,25d左右可达到强化诱导反应器里面的DPB占PAOs的比例;最后让DPB在严格的厌氧/缺氧交替环境下进行富集培养19d,通过这种逐渐过渡培养的方式获得了对所需要的DPB菌的成功诱导富集,该菌的成功驯化培养为市政生活污水中的氮磷同时高效稳定去除提供了一种新方法.  相似文献   

5.
不同电子受体对反硝化除磷菌缺氧吸磷的影响   总被引:11,自引:4,他引:7  
利用厌氧/缺氧/好氧交替运行模式培养和富集反硝化除磷污泥,通过在缺氧段分别投加不同浓度的硝酸盐和亚硝酸盐,进行了反硝化除磷菌(DPB)在不同电子受体条件下的缺氧吸磷试验.结果表明,在保证有足够的硝酸盐电子受体的情况下,DPB的缺氧吸磷速率几乎不受硝酸盐浓度的影响,在试验条件下,缺氧阶段每消耗1 mg NO-3-N吸收约1 mg PO3--P;在一定浓度条件下,亚硝酸盐能够作为电子受体参与DPB反硝化吸磷,DPB在较低亚硝酸盐浓度(NO-2-N在5~20 mg/L范围)下的缺氧吸磷速率高于以硝酸盐为电子受体时的缺氧吸磷速率,并且缺氧吸磷速率在这个范围内随NO-2-N浓度的升高而降低;亚硝酸盐对DPB缺氧吸磷的抑制程度随其浓度的增加而增强,当NO-2-N≥35 mg/L时,DPB的缺氧吸磷反应几乎完全停止.  相似文献   

6.
亚硝酸盐为电子受体反硝化除磷工艺的可行性   总被引:26,自引:0,他引:26       下载免费PDF全文
采用序批式反应器(SBR),以亚硝酸盐为电子受体,探讨了厌氧/缺氧条件下反硝化除磷工艺的可行性,并通过间歇实验考察了亚硝酸盐浓度、进水COD浓度和进水pH值对反硝化除磷工艺的影响.结果表明,亚硝酸盐作为电子受体的同步脱氮除磷过程是完全可以实现的,控制NO2--N浓度为35±5mg/L、厌氧段进水pH值为8.0±0.1,缺氧段进水pH值为7.2±0.1、COD浓度为400mg/L时,反硝化除磷效果最佳.  相似文献   

7.
杨庆娟  王淑莹  刘莹  袁志国  葛翀 《环境科学》2008,29(8):2249-2253
以实际生活污水为对象,研究了反硝化聚磷菌(DPB)的驯化培养以及A2N双污泥反硝化除磷系统的快速启动.采用先独立培养反硝化聚磷菌和好氧硝化生物膜再连续运行的方式成功地快速启动了A2N系统.采用污水处理厂除磷工艺中的活性污泥为种泥,在SBR系统中以先A/O(厌氧,好氧)后A/A(厌氧,缺氧)的方式运行.32 d成功地使反硝化聚磷菌成为优势菌属.在SBR反应器中,采用硝化效果较好的活性污泥为种泥,好氧硝化生物膜30 d挂膜成功.氨氮去除率稳定在99%以上.然后.A2N系统连续运行,11d后系统反硝化除磷效果进入稳定状态,出水氨氮和正磷酸盐浓度均为O,硝态氮为10.26 mg/L,出水COD为19.56 mg/L,COD、氨氮、总氮和磷去除率分别为91%、100%、77%和100%,说明A:N系统具有很好的脱氮除磷效果,认为系统启动成功.  相似文献   

8.
SBR中短程反硝化除磷菌的培养驯化研究   总被引:1,自引:1,他引:0  
以周期运行培养方式在间隙反应器中驯化以亚硝酸盐作为电子受体的反硝化除磷菌,并比较了硝酸盐和亚硝酸盐作为电子受体时反硝化除磷的效果.结果表明,经厌氧/好氧+厌氧/缺氧(连续投加硝酸盐)+厌氧/缺氧/好氧(连续投加亚硝酸盐)方式成功筛选出能以亚硝酸盐作电子受体的反硝化除磷菌,该系统磷的去除率可达88.62%;在外加硝酸盐,...  相似文献   

9.
为了探明反硝化脱氮除磷工艺的碳源利用特性,通过SBR工艺对反硝化聚磷菌进行驯化在不同碳源浓度下,研究了反硝化脱氮除磷过程中的碳源利用特性。结果表明,反硝化脱氮除磷系统在厌氧段碳源转化过程中有一个饱和碳源,该研究中系统MLSS为3 000 mg/L时厌氧阶段饱和碳源浓度为250 mg/L COD。厌氧段进水碳源浓度低于该系统饱和碳源时,缺氧段总氮、磷去除随着厌氧段进水碳源浓度提高而增加,当进水碳源浓度超过饱和碳源时,总氮去除随着碳源浓度提高而进一步提高,但总磷去除率下降。说明缺氧段胞外碳源对系统脱氮有促进作用,但对除磷有抑制作用。厌氧进水碳源浓度达到饱和碳源时系统除磷效果最好,且脱氮所需的碳源利用效率最高此时系统COD(m)/NO_3~-N(m)值为3.3左右。  相似文献   

10.
为实现低C/N城市污水与含硝酸盐废水的同步处理,采用SBR接种活性污泥,通过合理控制厌氧/缺氧/低氧时间和溶解氧(DO)浓度,实现了反硝化除磷耦合同步硝化内源反硝化(DPR-SNED)系统的启动,并对启动过程中系统的脱氮除磷特性进行了研究.结果表明采用厌氧/低氧的运行方式,控制厌氧时间为3 h,好氧段DO浓度为0. 5~1. 0 mg·L-1,60 d可实现同步硝化内源反硝化除磷(SNEDPR)系统的启动,出水PO_4~(3-)-P浓度0. 5 mg·L-1,系统氮磷去除率维持在90%以上,COD的去除率维持在80%以上,系统SNED率和CODins率分别维持在70%和95%左右;随后改变运行方式,采用厌氧/缺氧/低氧的方式运行,缺氧段前进含硝酸盐废水,45 d可实现DPR-SNED系统的启动,缺氧末PO_4~(3-)-P浓度1. 1 mg·L-1,出水PO_4~(3-)-P浓度0. 5 mg·L-1,系统磷、COD去除率均维持在90%以上,氮去除率维持在88%以上,系统SNED率和CODins率分别维持在62%和90%左右. DPR-SNED系统的成功启动后,厌氧段聚糖菌和聚磷菌对城市污水有限碳源的充分利用和强化储存,可为后续缺氧段及好氧段的脱氮除磷提供充足的内碳源.此外,DPR-SNED系统缺氧段内源短程反硝化的进行保障了系统在低C/N(4)条件下的高效脱氮.  相似文献   

11.
SBR中生物除磷颗粒污泥的反硝化聚磷研究   总被引:2,自引:1,他引:1  
反硝化聚磷菌(DNPAOs)可利用厌氧储存的聚.3.羟基丁酸(PHB)以硝酸盐和亚硝酸盐为电子受体进行过量吸磷和反硝化,从而达到在低碳源下脱氮除磷的双重目的.本试验在SBR反应器中,采用厌氧,缺氧/好氧(A/A/O)交替运行的方式.将富集聚磷菌(PAOs)的颗粒污泥成功地诱导为具有反硝化聚磷能力的颗粒污泥.诱导结束后P的去除率在90%以上,NOx-N的去除率在93%以上,厌氧段释磷量在25-33 mg/L,缺氧段每去除lg NOx-N吸收P约1.3 g;典型周期运行结果显示,厌氧段最大比释磷速率(SRPR)为18.39 mg/(g.h),缺氧段最大比吸磷速率(SUPR)为23.72 mg/(g·h),最大比反硝化速率(SDNR)为18.19mg/(g·h),好氧段最大SUPR为17.15 me,/(g·h):颗粒污泥中DNPAOs的数量由诱导前的14.9%增加到80.7%.与除磷颗粒污泥相比.反硝化聚磷颗粒污泥沉速提高0.16-0.7倍,比重提高0.003 1.  相似文献   

12.
反硝化聚磷菌的富集及富集污泥活性研究   总被引:2,自引:0,他引:2  
依据DPB原理,利用SBR动态反应器和静态释/聚磷装置。以A2/O厌氧段污泥为种泥,进行以硝酸盐为电子受体的反硝化聚磷菌的富集,并对富集有反硝化聚磷菌的污泥进行了反硝化聚磷活性性能考察。结果表明,利用硝酸盐为电子受体的反硝化聚磷菌存在于A2/O厌氧段污泥中,反硝化聚磷菌占总聚磷菌的比例为23%,该种污泥可作为反硝化聚磷工艺的种泥;由于常规的聚磷菌被淘汰聚磷菌的数量由6.8×107个/mL减少到1.1×103个/mL,但通过选择和富集聚磷菌总数由1.1×103个/mL增加到8.2×104个/mL,且反硝化聚磷菌占聚磷菌总数的比例也由23%提高到94%,磷酸盐去除率由最初的9.86%上升到95.2%,出水磷酸盐的浓度为0.79mg/L;通过改变进水中不同磷酸盐浓度验证体系处于稳定状态。  相似文献   

13.
Nitrogen removal via nitrite from municipal landfill leachate   总被引:2,自引:0,他引:2  
A system consisting of a two-stage up-flow anaerobic sludge blanket (UASB), an anoxic/aerobic (A/O) reactor and a sequencing batch reactor (SBR), was used to treat landfill leachate. During operation, denitrification and methanogenesis took place simultaneously in the first stage UASB, and the e uent chemical oxygen demand (COD) was further removed in the second stage UASB. Then the denitrification of nitrite and nitrate in the returned sludge by using the residual COD was accomplished in the A/O reactor, and ammonia was removed via nitrite in it. Last but not least, the residual ammonia was removed in SBR as well as nitrite and nitrate which were produced by nitrification. The results over 120 d (60 d for phase I and 60 d for phase II) were as follows: when the total nitrogen (TN) concentration of influent leachate was about 2500 mg/L and the ammonia nitrogen concentration was about 2000 mg/L, the shortcut nitrification with 85%–90% nitrite accumulation was achieved stably in the A/O reactor. The TN and ammonia nitrogen removal e ciencies of the system were 98% and 97%, respectively. The residual ammonia, nitrite and nitrate produced during nitrification in the A/O reactor could be washed out almost completely in SBR. The TN and ammonia nitrogen concentrations of final e uent were about 39 mg/L and 12 mg/L, respectively.  相似文献   

14.
利用亚硝酸盐的反硝化除磷菌及影响因素   总被引:3,自引:0,他引:3  
反硝化聚磷菌(DPB)是一类能够在厌氧状态下释磷,缺氧存在硝酸盐(NO3-)或亚硝酸盐(NO2-)的情况下聚磷,并同时反硝化的聚磷菌。实验证明:传统A2/O工艺缺氧段污泥确实存在利用亚硝酸盐的反硝化聚磷菌,PO、PON和PONO各占聚磷菌的40.7%、38.5%,20.8%。最佳的进水C/N/P为16∶4∶1且COD<200mg/L;pH值为7~7.5。聚磷菌在ORP<-80mV开始吐磷,在ORP值在-150mV左右能较好地吐磷,投加亚硝盐使ORP>-80mV,开始反硝化聚磷。  相似文献   

15.
Three parallel anaerobic-anoxic/anaerobic-aerobic (AN/AO) processes were developed to enrich denitrifying phosphorus removal bacteria (DPB) for low strength wastewater treatment. The main body of the parallel AN/AO process consists of an AN (anaerobic-anoxic) process and an AO (anaerobic-aerobic) process. In the AO process, the common phosphorus accumulating organisms (PAOs) was dominate, while in the AN process, DPB was dominate, The volume of anaerobic zone(Vana):anoxie zone(Vano) : aerobic zone (Vaer) for the parallel AN/AO process is 1:1:1 in contrast with a Vana:Vaer and Vano:Vaer of 1:2 and 1:4 for a traditional biological nutrient removal process (BNR). Process 3 excels in the 3 processes on the basis of COD, TN and TP removal. For 4 month operation, the effluent COD concentration of process 3 did not exceed 60 mg/L; the effluent TN concentration of process 3 was lower than 15 mg/L; and the effluent TP concentration of process 3 was lower than 1 mg/L.  相似文献   

16.
高氮渗滤液缺氧/厌氧UASB-SBR工艺低温深度脱氮   总被引:7,自引:1,他引:6       下载免费PDF全文
在低温条件下,采用缺氧/厌氧UASB-SBR组合工艺处理实际垃圾填埋场渗滤液.结果表明,该工艺可实现有机物和氮的同步、深度去除.在进水COD平均为11950.2mg/L,NH4+-N为982.7mg/L的条件下,出水分别为390.1mg/L和2.9mg/L,去除率分别为96.7%和99.7%.同时,缺氧UASB1反应器的最大COD负荷达到13kg/(m3×d),最大COD去除速率为12.39 kg/(m3×d),具有高效缺氧反硝化和高效厌氧降解有机物反应的双重功效, 在SBR反应器的缺氧段和缺氧UASB,反应器内获得了99%以上的反硝化率.对于冬季水温分别为14.9,14.1,13.5,11.05℃的低温条件下,SBR反应器实现了完全硝化和反硝化,出水TN分别为4.1,5.7,14.1,16.5mg/L,达到了深度脱氮的目的.此外,在上述温度范围内,温度对反硝化速率(rN)的影响大于对硝化速率 (rDN)的影响, rN/rDN比值相对恒定.  相似文献   

17.
UASB1-A/O-UASB2深度处理垃圾渗滤液   总被引:1,自引:0,他引:1       下载免费PDF全文
针对传统垃圾渗滤液生物处理TN去除率低、投加碳源成本高的问题,采用UASB1-A/O-UASB2(单级上流式厌氧污泥床+缺氧/好氧+后置上流式厌氧污泥床)工艺处理实际垃圾渗滤液,实现NH4+-N和TN的同步深度脱除,并且定量解析了A/O反应器实现并维持稳定短程硝化的影响因素. 结果表明:以V(垃圾渗滤液)∶V(生活污水)为1∶5的混合液作为进水,其ρ(CODCr)、ρ(TN)和ρ(NH4+-N)分别为1 700~1 800、660~700和650~680 mg/L,最终出水CODCr、TN和NH4+-N去除率均在95%以上,出水ρ(TN)为38 mg/L,满足GB 16889—2008《生活垃圾填埋场污染控制标准》的排放要求. 在好氧反应器中,FA(游离氨)与FNA(游离亚硝酸)对NOB(硝化细菌)的联合抑制作用是实现NO2--N积累率稳定在80%以上的主要原因,而产生的NO2--N和NO3--N可在UASB2中以难降解的有机物为碳源,通过反硝化途径被去除. 研究显示,组合系统可实现对TN的深度去除.   相似文献   

18.
Characteristics of anoxic phosphors removal in sequence batch reactor   总被引:4,自引:0,他引:4  
The characteristics of anaerobic phosphorus release and anoxic phosphorus uptake were investigated in sequencing batch reactors using denitrifying phosphorus removing bacteria (DPB) sludge. The lab-scale experiments were accomplished under conditions of various nitrite concentrations (5.5, 9.5, and 15 mg/L) and mixed liquor suspended solids (MLSS) (1844, 3231, and 6730 mg/L). The results obtained confirmed that nitrite, MLSS, and pH were key factors, which had a significant impact on anaerobic phosphorus release and anoxic phosphorus uptake in the biological phosphorous removal process. The nitrites were able to successfully act as electron acceptors for phosphorous uptake at a limited concentration between 5.5 and 9.5 mg/L. The denitrification and dephosphorous were inhibited when the nitrite concentration reached 15 mg/L. This observation indicated that the nitrite would not inhibit phosphorus uptake before it exceeded a threshold concentration. It was assumed that an increase of MLSS concentration from 1844 mg/L to 6730 mg/L led to the increase of denitrification and anoxic P-uptake rate. On the contrary, the average P-uptake/N denitrifying reduced from 2.10 to 1.57 mg PO4^3--P/mg NO3^--N. Therefore, it could be concluded that increasing MLSS of the DEPHANOX system might shorten the reaction time of phosphorus release and anoxic phosphorus uptake. However, excessive MLSS might reduce the specific denitrifying rate. Meanwhile, a rapid pH increase occurred at the beginning of the anoxic conditions as a result of denitrification and anoxic phosphate uptake. Anaerobic P release rate increased with an increase in pH. Moreover, when pH exceeded a relatively high value of 8.0, the dissolved P concentration decreased in the liquid phase, because of chemical precipitation. This observation suggested that pH should be strictly controlled below 8.0 to avoid chemical precipitation if the biological denitrifying phosphorus removal capability is to be studied accurately.  相似文献   

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