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1.
通过序批实验的方法,直接接种厌氧氨氧污泥,研究了Zn2+对厌氧氨氧化(Anammox)脱氮效能的影响。研究结果表明,当进水Zn2+质量浓度小于2 mg/L时,对厌氧氨氧化生物活性有促进作用,可增强微生物的脱氮效能;当进水Zn2+质量浓度在2 mg/L和4 mg/L之间时,脱氮效能无明显变化,说明对厌氧氨氧化微生物活性无明显影响;当进水Zn2+质量浓度大于4 mg/L,对厌氧氨氧化反应有抑制作用,Zn2+浓度越高,抑制作用越明显。 Zn2+对厌氧氨氧化的半抑制质量浓度(CI,50)为32.3 mg/L,NO2--N与NH4+-N转化比的平均值为1.28。  相似文献   
2.
• The SRAO phenomena tended to occur only under certain conditions. • High amount of biomass and non-anaerobic condition is requirement for SRAO. Anammox bacteria cannot oxidize ammonium with sulfate as electron acceptor. • AOB and AnAOB are mainly responsible for ammonium conversion. • Heterotrophic sulfate reduction mainly contributed to sulfate conversion. For over two decades, sulfate reduction with ammonium oxidation (SRAO) had been reported from laboratory experiments. SRAO was considered an autotrophic process mediated by anammox bacteria, in which ammonium as electron donor was oxidized by the electron acceptor sulfate. This process had been attributed to observed transformations of nitrogenous and sulfurous compounds in natural environments. Results obtained differed largely for the conversion mole ratios (ammonium/sulfate), and even the intermediate and final products of sulfate reduction. Thus, the hypothesis of biological conversion pathways of ammonium and sulfate in anammox consortia is implausible. In this study, continuous reactor experiments (with working volume of 3.8L) and batch tests were conducted under normal anaerobic (0.2≤DO<0.5 mg/L) / strict anaerobic (DO<0.2 mg/L) conditions with different biomass proportions to verify the SRAO phenomena and identify possible pathways behind substrate conversion. Key findings were that SRAO occurred only in cases of high amounts of inoculant biomass under normal anaerobic condition, while absent under strict anaerobic conditions for same anammox consortia. Mass balance and stoichiometry were checked based on experimental results and the thermodynamics proposed by previous studies were critically discussed. Thus anammox bacteria do not possess the ability to oxidize ammonium with sulfate as electron acceptor and the assumed SRAO could, in fact, be a combination of aerobic ammonium oxidation, anammox and heterotrophic sulfate reduction processes.  相似文献   
3.
文章以闲置12个月的厌氧氨氧化生物膜填料重新启动厌氧氨氧化反应器,并对反应器的活性恢复情况、脱氮效果和微生物菌群结构开展研究。实验结果表明:在启动的200 d逐渐将进水氨氮、亚硝态氮浓度从50 mg/L提高到70 mg/L,水力停留时间从12 h缩短到4 h,后期氨氮去除率达80%以上,亚硝酸盐去除率达95%。170~200 d的稳定期中,平均去除负荷0.71±0.15 kg/(m~3·d)。另外,通过高通量测序技术对反应器中微生物群落变化情况进行了系统分析。启动过程中填料中污泥微生物浮霉菌门Planctomyctes的相对丰度从13.7%增长到了36.0%,成为优势菌群。  相似文献   
4.
常温低基质厌氧氨氧化反应器启动及其稳定性   总被引:5,自引:0,他引:5  
以上向流生物滤池为反应器,以实验室内氧化沟回流污泥为接种污泥,采用先培育好氧生物膜,后转为厌氧环境培育厌氧氨氧化生物膜的方式,成功实现了常温低基质浓度下厌氧氨氧化反应器的启动。控制反应器进水pH为7.50~7.80,NH4+-N为30~40 mg/L,NO2--N为35~50 mg/L,温度为20~25℃。224 d以后,反应器启动成功。在稳定运行阶段,出水亚硝氮和氨氮的平均浓度分别为1.4 mg/L和4.6 mg/L,平均去除率分别为95.3%和90.1%,去除比例为1~1.8∶1,主要集中在1.4~1.5∶1,亚硝氮和氨氮去除的容积负荷分别为104.2 mg/(L.d)和146.0 mg/(L.d)。  相似文献   
5.
6.
A sequencing batch reactor (SBR) was inoculated with mixed nitrifying bacteria from an anoxic tank at the conventional activated sludge wastewater treatment plant in Nongkhaem, Bangkok, Thailand. This enriched nitrifying culture was maintained under anaerobic conditions using ammonium (NH(4)(+)) as an electron donor and nitrite (NO(2)(-)) as an electron acceptor. Autotrophic ammonium oxidizing bacteria survived under these conditions. The enrichment period for anammox culture was over 100 days. Both ammonium and nitrite conversion rates were proportional to the biomass of ammonium oxidizing bacteria; rates were 0.08 g N/gV SS/d and 0.05 g N/g VSS/d for ammonium and nitrite, respectively, in a culture maintained for 3 months at 42 mg N/L ammonium. The nitrogen transformation rate at a ratio of NH(4)(+)-N to NO(2)(-)-N of 1:1.38 was faster, and effluent nitrogen levels were lower, than at ratios of 1:0.671, 1:2.18, and 1:3.05. Fluorescent in situ hybridization (FISH) was used to identify specific autotrophic ammonium oxidizing bacteria (Nitrosomonas spp., Candidatus Brocadia anammoxidans, and Candidatus Kuenenia stuttgartiensis). The ammonium oxidizing culture maintained at 42 mg N/L ammonium was enriched for Nitrosomonas spp. (30%) over Candidati B. anammoxidans and K. stuttgartiensis (2.1%) while the culture maintained at 210 mg N/L ammonium was dominated by Candidati B. anammoxidans and K. stuttgartiensis (85.6%). The specific nitrogen removal rate of anammox bacteria (0.6 g N/g anammox VSS/d) was significantly higher than that of ammonium oxidizing bacteria (0.4 g N/g Nitrosomonas VSS/d). Anammox bacteria removed up to 979 mg N/L/d of total nitrogen (ammonium:nitrite concentrations, 397:582 mg N/L). These results suggest significant promise of this approach for application to wastewater with high nitrogen but low carbon content, such as that found in Bangkok.  相似文献   
7.
徐庆云  黄勇  袁怡 《环境科技》2006,19(4):31-34
厌氧氨氧化(Anammox)工艺是近年来废水处理领域的一个新发现。它是指在厌氧条件下由自养型Anammox细菌将NH4 -N直接转化为N2。厌氧氨氧化作为一种新型的污水处理工艺具有较高的理论意义和良好的应用前景。在此,概述了近年来国内研究人员在Anammox工艺研究中所采用的不同培养反应器及其启动方法和培养过程,以及他们的成功经验,由此说明厌氧氨氧化研究利用的可行性及其研究意义。  相似文献   
8.
尿素废水的处理是当前亟需解决的难题,其中生物处理法因具有工艺流程短,成本低,抗冲击负荷,不产生二次污染等优点,在尿素废水的处理中备受青睐.本文基于尿素生物水解法原理,从机理上深入分析了脲酶的发展历程,酶学结构与水解机制,并对传统生物尿素脱氮法的应用进行了系统梳理.此外,为了更好地理解厌氧氨氧化菌降解尿素的潜能及在实际工程中的应用,本文分别从微生物学和工程应用的角度总结了相关研究结果.最后提出了尿素废水生物处理研究的建议与展望,以期为实际工程应用提供有力的理论基础和技术支持.  相似文献   
9.
厌氧氨氧化工艺的抑制现象   总被引:5,自引:0,他引:5  
厌氧氨氧化(Anammox)工艺因其高效低耗优势,在废水生物脱氮领域中具有广阔的应用前景.然而,基质、有机物、盐度、重金属、磷酸盐及硫化物等物质对Anammox工艺产生的抑制作用制约了工艺的推广应用.基质主要通过游离氨和游离亚硝酸对Anammox产生抑制,而温度和pH是基质抑制的重要调控参数.非致毒性有机物对Anammox的作用因其种类跟浓度而异.在较低的浓度条件下对Anammox的抑制作用不显著,而高于抑制阈值将严重抑制Anammox.其抑制机制尚无定论.部分研究证明致毒性有机物(醇、醛、酚及抗生素等)对Anammox具有抑制作用,但研究有待拓展深化.超过抑制阈值的盐度会抑制Anammox活性,但合适的盐度(3~15 g L-1NaCl)却能够促进Anammox生物颗粒的形成.重金属对Anammox的抑制报道较少.因试验条件及菌种等的差异使得磷酸盐及硫化物对Anammox的抑制在不同试验中存在很大差异.Anammox抑制是可控的,通过pH和温度调节、基质浓度及负荷控制、污泥驯化以及添加辅助剂等方法可解除或缓解抑制.建议今后在特种废水的Anammox脱氮、复合抑制以及Anammox抑制的分子生态学机理等方面开展深入研究.  相似文献   
10.
● N2H4 addition enhanced and recovered anammox performance under Cr(VI) stress. ● N2H4 accelerated electron transfer of Cr(VI) reduction for detoxification. ● N2H4 enhanced anammox metabolism for activity recovery from Cr(VI) inhibition. ● Extracellular Cr(VI) reduction to less toxic Cr(III) was the dominant mechanism. The hexavalent chromium (Cr(VI)) would frequently impose inhibition to anaerobic ammonium oxidation (anammox) process, hindering the efficiency of nitrogen removal in wastewater treatment. Hydrazine (N2H4), which is an intermediate product of anammox, participates in intracellular metabolism and extracellular Cr(VI) reduction. However, the roles of N2H4-induced intracellular metabolism and extracellular reduction in nitrogen removal under Cr(VI) stress remain unclear. The addition of 3.67 mg/L of N2H4 increased the anammox activity by 17%. As an intermediate, N2H4 enhanced anammox metabolism by increasing the heme c content and electron transfer system activity. As a reductant, N2H4 accelerated the reduction of c-Cyts-mediated extracellular Cr(VI) to the less toxic Cr(III). Extracellular Cr(III) accounts for 74% of the total Cr in a Cr(VI)-stressed anammox consortia. These findings highlight that N2H4-induced extracellular Cr(VI) reduction is the dominant mechanism for the survival of anammox consortia. We also found that N2H4 increased the production of extracellular polymeric substances to sequester excessive Cr(VI) and produced Cr(III). Taken together, the study findings suggest a potential strategy for enhancing nitrogen removal from ammonium-rich wastewater contaminated with Cr(VI).  相似文献   
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