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1.
封羽涛  吴为中 《生态环境》2011,(6):1127-1132
为了解决低有机污染高氮素水中由于低碳氮比而造成的后续脱氮问题,通过设反应填充床,外加固相碳源,对比了2种可降解聚合物PBS和PCL的反硝化效果。结果表明,(1)在进水TN质量浓度维持在14.33~18.31 mg.L-1,HRT为15.6 min时,PBS填充床平均TN去除率为94.93%,高于PCL填充床。(2)PBS填充床平均反硝化速率为13.55 mg.L-1.h-1(以N计),高于PCL填充床的9.07 mg.L-1.h-(1以N计)。(3)PBS填充床NO3-N、NO2-N、NH3-N的出水质量浓度分别维持在0.37~0.87、0~0.20、0.01~0.07 mg.L-1,优于PCL填充床。(4)PBS和PCL颗粒表面附着的微生物以杆菌为主,伴有少量的弧菌。该研究为日后新型固相碳源的开发提供了科学依据。  相似文献   

2.
为了解决低有机污染高氮素水中由于低碳氮比而造成的后续脱氮问题,通过设反应填充床,外加固相碳源,对比了2种可降解聚合物PBS和PCL的反硝化效果。结果表明,(1)在进水TN质量浓度维持在14.33~18.31 mg.L-1,HRT为15.6 min时,PBS填充床平均TN去除率为94.93%,高于PCL填充床。(2)PBS填充床平均反硝化速率为13.55 mg.L-1.h-1(以N计),高于PCL填充床的9.07 mg.L-1.h-(1以N计)。(3)PBS填充床NO3-N、NO2-N、NH3-N的出水质量浓度分别维持在0.37~0.87、0~0.20、0.01~0.07 mg.L-1,优于PCL填充床。(4)PBS和PCL颗粒表面附着的微生物以杆菌为主,伴有少量的弧菌。该研究为日后新型固相碳源的开发提供了科学依据。  相似文献   

3.
COD与DO对好氧颗粒污泥同步硝化反硝化脱氮的影响   总被引:27,自引:0,他引:27  
COD和DO浓度对好氧颗粒污泥的同步硝化反硝化反应有明显影响.COD浓度在400~1200mg/L范围内,好氧颗粒污泥去除COD的能力均在85%以上.颗粒污泥能吸附有机物,使废水中COD浓度快速下降.COD浓度小于800mg/L,好氧颗粒污泥具有良好的脱氮能力,氮去除率最高达85.3%.在溶氧浓度为1-4mg/L条件下,颗粒污泥对COD去除率均在90%以上.不同的溶氧浓度对氮的去除率有一定影响,在溶氧浓度3mg/L时,氮去除率最高,达83%.图7参7  相似文献   

4.
COD对颗粒污泥厌氧氨氧化反应性能的影响   总被引:8,自引:1,他引:8  
研究了COD对颗粒污泥厌氧氨氧化反应的影响,并对颗粒污泥的厌氧氨氧化脱氮性能进行了分析.厌氧颗粒污泥取自实验室长期运行的EGSB生物脱氮反应器,实验用水为人工配水,以葡萄糖为有机碳源;主要考察了COD对NH4 -N、NO2--N、NO3--N和TN去除的影响.结果表明:当进水不含COD时,反应器对NH4 -N、NO2--N和NO3--N和TN的去除率分别为12.5%、29.1%、16.1%和16.3%;当COD浓度分别为200mg/L、350mg/L和550mg/L时,反应器对NH4 -N的去除率分别为14.2%、14.2%和23.7%,对NO2--N的去除率均接近100%,对NO3--N的去除率分别为94.5%、86.6%和84.2%,对TN的去除率分别为50.7%、46.9%和50.4%,COD去除率分别为85%、66%和60%.分析发现,在反应初期,氨氮的去除主要通过厌氧氨氧化过程实现,随着反应的进行,反硝化菌活性逐渐提高,传统的反硝化过程占优势.同时还观察到,在反应初期COD对氨氮去除的抑制作用非常明显.图2参21  相似文献   

5.
多介质土壤层系统(MSL)是一种适合于农村地区处理生活污水的新型分散式污水处理系统。试验设计了4个长、宽、高分别为50、10、60 cm的MSL系统,该系统由土壤混合层和通水层交叠成层组成。土壤混合层选用普通砂土,添加木屑混合木炭/秸秆、铁粒/膨润土按照7∶2∶1的干质量比例均匀混合,通水层选用沸石或者普通砾石。MSL系统在水力负荷500 L.m-2.d-1下连续运行2个月。结果表明,4个MSL系统对CODCr的平均去除率差别不大,为79.58%~80.22%;对TP去除率为47.83%~82.60%,添加沸石和膨润土可以较大程度地增加TP去除率;对TN的去除率为29.74%~57.89%,通水层为沸石的MSL系统去除率明显优于砾石;木炭混合木屑较秸秆更适合作为MSL系统的有机碳源。  相似文献   

6.
张洪  刘希  郭意  李永峰  乔丽娜 《环境化学》2014,(11):1963-1970
为解决A2/O工艺处理低浓度城市生活污水的碳源问题,采用了甲醇、葡萄糖、乙酸分别作为A2/O系统的碳源,结果表明,甲醇作为系统外加碳源最经济、最合适,其中TN、TP去除率分别达到75.81%和76.21%,NO-x-N被去除时间为30 min.研究最大化利用碳源,得到外加碳源甲醇在厌氧/缺氧/好氧区段的投加比例为1∶2∶0、投加量为400 mg·L-1,硝酸盐回流比为250%时,系统运行效果最佳,TN、NH3-N和TP去除率分别为90.56%、96.67%和92.56%,出水浓度分别为12.3 mg·L-1、4.1 mg·L-1和0.45 mg·L-1,达到GB18918—2002一级A类标准.通过一段时间的运行,在缺氧段发生了反硝化吸磷的现象,有利于碳源的节省和系统的高效运行.  相似文献   

7.
以处理20m^3/d城镇生活污水的深沟型气升推流立体循环倒置A^2O整体合建氧化沟中试装置为研究平台,通过对影响该工艺运行的有机物的去除效果、硝化反应与反硝化反应效果及除磷效果等因素进行探索及最佳工况的正交试验设计,实验结果表明该工艺对BOD,、COD、SS、NH4^-N、TN、TP的平均去除率分别为94.25%、90...  相似文献   

8.
考察了不同进水有机物浓度下厌氧/好氧序批式移动床生物膜反应器(SBMBBR)污染物去除特性,实验结果表明,SBMBBR能够实现低碳源污水中氮和磷的同步去除,在进水TN和TP浓度分别为116.7 mg.L-1和11.5 mg.L-1、COD浓度为456 mg.L-1的条件下,TN和TP去除率分别达到94.3%和92.2%以上.反应器除磷是基于常规生物除磷和反硝化除磷过程实现的,脱氮主要是基于好氧段发生的同时硝化反硝化(SND)作用而完成.由于生物膜内部存在的DO扩散梯度,在好氧阶段混合液DO浓度不断提高的条件下反应器内具有良好SND反应的发生.进水COD浓度由149 mg.L-1提高至456 mg.L-1的过程中,反应器硝化效果不变,反硝化和除磷效果改善.反应器在好氧阶段pH值基本维持在7.0—7.1之间,为各类菌群的生长创造了条件.碱度变化较pH值更能反映硝化和反硝化反应发生的程度.反应器中微生物相丰富,生物膜以丝状菌为骨架,其上附着大量的球状菌和杆状菌,而悬浮活性污泥中丝状菌较少,形成了由细菌、真菌到原生动物和后生动物的复杂的生态体系,为系统取得稳定的污水处理效果提供了有效的保证.  相似文献   

9.
一株贫营养异养硝化-好氧反硝化菌的筛选及脱氮特性   总被引:5,自引:0,他引:5  
为了探究并优化菌剂应用于微污染水源水体修复的机制和条件,主要针对水库沉积物内筛选出的贫营养好氧反硝化菌进行了菌种鉴定及脱氮特性研究,考察菌株在不同环境条件下的脱氮效果,明确了该菌株的最适宜生长条件,并基于水库水体中贫营养条件对菌株进行水源水库原水的驯化培养试验研究,以期实现该菌株对微污染水源水库原水中氮源污染物的脱除,为原位投菌技术实际工程应用提供理论依据。从微污染水源水库沉积物中驯化筛分出一株高效异养硝化-好氧反硝化菌A14,通过扫描电镜观察、生理生化特征、16S rRNA基因测序和Biolog GenⅢ鉴定,确定该菌株为革兰氏阴性短杆菌,鉴定为皮特不动杆菌(Acinetobacter pittii)。在好氧条件下,菌株细胞内表达反硝化功能基因napA,以NO3-为唯一氮源进行反硝化作用时,36 h时NO3-去除率为78.89%。以NH4+为唯一氮源时,48 h NH4+去除率为95.25%,TN去除率达80.42%,TOC去除率达98.30%,表明该菌株具有异养硝化-好氧反硝化特性。在改变环境条件过程中,该菌株在以乙酸钠为碳源,温度为30℃,C/N为12,pH为7,接种量为10%时,NO3-去除率最高为86.62%,并且在10℃下脱氮率达到40.18%。在水源水库原水脱氮实验中,接种处理TN去除率为50.95%,NO3-去除率为80.25%。结果表明,菌株A14在微污染水源水体菌剂脱氮修复中具有良好的应用潜力。  相似文献   

10.
白酒生产过程中伴随高氮废水的产生,其中包含氨氮(NH_4~+-N)、硝氮(NO_3~--N)和亚硝氮(NO_2~--N),企业基于现有的曝气等工艺可以去除NH_4~+-N,但却难以有效去除NO_2~--N和NO_2~--N,导致总氮(TN)含量无法达到新标准(TN 20 mg/L),因此高效去除废水中的NO_3~--N和NO_2~--N成为当下的研究热点.采用上流式厌氧污泥床(up-flow anaerobic sludge blanket,UASB)生物反应器驯养活性污泥,形成稳定的微生物群系;筛选得到最佳碳源,构建了生物厌氧反硝化脱氮体系,并通过三代全长16S rRNA测序分析了体系的细菌群落结构.结果显示,在甲醇、乙酸钠、丁二酸钠、葡萄糖、酒厂原水、柠檬酸钠和MicroC多种碳源中,MicroC效果最佳,在处理高硝氮废水(NO_3~--N=531 mg/L)时,添加量为C/N=1.0,出水的NO_3~--N含量小于1 mg/L,NO_3~--N去除率达98%,COD去除率超过90%.该体系中,反硝化前期斯氏假单胞菌(Pseudomonas stutzeri)和硫杆菌(Thioclava sp.)是优势种,还原大量的NO_3~--N,而细菌多样性较低;反硝化后期微嗜酸寡养单胞菌(Stenotrophomonas acidaminiphila)变成优势种,还原残留的NO_3~--N.本研究表明以MicroC为碳源的厌氧反硝化体系可实现酒厂高硝氮废水低成本且高效率的脱氮处理,物种Pseudomonas stutzeri发挥主要的反硝化作用,结果对反硝化工程有重要的指导意义.(图8表3参30)  相似文献   

11.
研究不同配置的挺水植物组合对河涌污水污染物的净化效果,为在河涌污水治理上构建有效的人工湿地植物处理系统提供依据。选择10种净化能力较强的挺水植物,组成6种不同配置的挺水植物组合,采用无土栽培的方式模拟人工湿地的环境进行静态培养试验,测定出不同水生植物组合及在不同污水的停留时间(HRT)下对河涌污水污染物的去除率。6种不同配置的水生植物组合在HRT为5 d时对NH4+-N、TN、TP、CODCr、BOD5的去除率(平均去除率分别为98.2%、81.2%、91.3%、71.8%、79.4%)均较高;以组合1:香根草Vetiveria zizanioides+风车草Cyperus alternifolius+美人蕉Canna indica+菖蒲Acorus calamus+再力花Thalia dealbata的处理效果为最佳。不同水生植物系统对污水的净化效率取决于HRT,当HRT从1~5 d时,NH4+-N、TN、TP去除率每天的增幅均逐渐增加,当HRT从5~7 d时,NH4+-N、TN、TP去除率每天的增幅却均迅速下降;说明3种不同配置的水生植物系统对河涌污水NH4+-N、TN、TP的净化效率均以HRT为5 d时最高。  相似文献   

12.
杨璇  石雷 《生态环境》2011,20(3):515-520
对沙田人工湿地稳定运行后的情况进行了长达6 a的监测,探讨了不同流态的两级潜流人工湿地长期运行的脱氮效能、不同形态氮的空间转化规律和几种主要影响因素。研究表明,在整个运行期间人工湿地的脱氮能力呈现低-高-低的变化趋势,这个过程的发生和湿地内部堵塞物的累积关联密切。在华南地区,季节变化对湿地脱氮的影响依然十分强烈:一方面,体现为季节温差对脱氮效果的明显影响,低温月份采用低负荷方式运行,TN去除率也仅有36.0%~47.6%,而高温期采用高负荷的运行方式,大多数月份TN去除率也能达到45.4%以上;另一方面,季节性雨量的不同会引起进水质量浓度的变化,导致湿地系统TN负荷率的改变,进而显著影响脱氮效果。有机氮、NH3-N、NO2--N、NO3--N在湿地内部存在明显的转化迹象,沿流程随着有机物的大量消耗,NO3--N去除能力逐渐下降并在湿地的末端出现了累积现象。通常情况下,由于采用了跌水曝气等措施,DO在湿地内的大部分区域都维持了较高水平,未对脱氮效果产生明显不利影响。  相似文献   

13.
The effects and mechanism of chemical oxygen demand (COD), nitrogen, and phosphorus concentration removal by an integrated vertical-flow constructed wetland were studied in the wetland system during one inlet–outlet operating period, in two typical stages (each stage is connective 24 h, sampled once every 4 h). The concentration of ammonia decreased along the flow direction in the system, while levels of nitrate (NO3?-N) increased. In one operating period, total nitrogen (TN) concentration fell with rising operation time due to evacuative reoxygenation. The TN and NH3-N removal rates in the system were 26.6% and 97.5%, respectively. COD decreased rapidly in the early stages and more gradually in the direction of water flow of the wetland system. Average total phosphorus (TP) removal rate was 20.71%. TN and NO3?-N levels in water of the wetland had a tendency to decline gradually with increasing operation time. Ammonia concentrations displayed only a small variation with operation time. The results also indicated that the wetland was able to maintain its temperature. The oxygen content differed during the various operating stages and exerted a marked influence on COD, TP, and TN removal.  相似文献   

14.
• MFC promoted the nitrogen removal of anammox with Fe-C micro-electrolysis. • Reutilize pyrolysis waste tire as micro-electrolysis and electrode materials. • Total nitrogen removal efficiency of modified MFC increased to 85.00%. Candidatus kuenenia and SM1A02 were major genera responsible for nitrogen removal. In this study, microbial fuel cells (MFCs) were explored to promote the nitrogen removal performance of combined anaerobic ammonium oxidation (anammox) and Fe-C micro-electrolysis (CAE) systems. The average total nitrogen (TN) removal efficiency of the modified MFC system was 85.00%, while that of the anammox system was 62.16%. Additionally, the effective operation time of this system increased from six (CAE system alone) to over 50 days, significantly promoting TN removal. The enhanced performance could be attributed to the electron transferred from the anode to the cathode, which aided in reducing nitrate/nitrite in denitrification. The H+ released through the proton exchange membrane caused a decrease in the pH, facilitating Fe corrosion. The pyrolyzed waste tire used as the cathode could immobilize microorganisms, enhance electron transport, and produce a natural Fe-C micro-electrolysis system. According to the microbial community analysis, Candidatus kuenenia was the major genus involved in the anammox process. Furthermore, the SM1A02 genus exhibited the highest abundance and was enriched the fastest, and could be a novel potential strain that aids the anammox process.  相似文献   

15.
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.  相似文献   

16.
The short-term effect of anaerobic reaction time (AnRT) (i.e., 90, 120 and 150 min) on the denitrifying phosphorus (P) removal performance and N2O production was examined using a denitrifying enhanced biologic phosphorus removal (EBPR) sludge acclimatized with mixed acetate (HAc) and propionate (Pro) (in the molar ratio 3:1) as carbon sources. The results showed that when the AnRT was prolonged from 90 to 150 min, the anaerobic polyhydroxyalkanoate (PHA) synthesis was decreased by 15.3%. Moreover, the ineffective PHA consumption occurred in anaerobic phases and contributed to an increased NO 2 ? -N accumulation and higher free nitrous acid (FNA) concentrations (?0.001–0.0011 mg HNO2-N/L) in the subsequent anoxic phases, causing a severe inhibition on anoxic P-uptake and denitrification. Accordingly, the total nitrogen (TN) and total phosphorus (TP) removal efficiencies dropped by approximately 6.3% and 85.5%, respectively; and the ratio of anoxic N2O-N production to TN removal increased by approximately 3.8%. The fluorescence in situ hybridization (FISH) analysis revealed that the sludge was mainly dominated by Accumulibacter (62.0% (SEmean = 1.5%)). In conclusion, the short-term excessive anaerobic reaction time negatively impacted denitrifying P removal performance and stimulated more N2O production, and its effect on P removal was more obvious than that on nitrogen removal.  相似文献   

17.
Algal biofilmtechnology is a new and advanced wastewater treatment method. Experimental study on removing nitrogen and phosphorus from simulated wastewater using algal biofilm under the continuous light of 3500 Lux in the batch and continuous systems was carried out in this paper to assess the performance of algal biofilm in removing nutrients. The results showed that the effect of removing nitrogen and phosphorus by algal biofilm was remarkable in the batch system. The removal efficiencies of total phosphorus (TP), total nitrogen (TN), ammonia-nitrogen (NH3-N), and chemical oxygen demand (COD) reached 98.17%, 86.58%, 91.88%, and 97.11%, respectively. In the continuous system, hydraulic retention time (HRT) of 4 days was adopted; the effects of removing TP, TN, NH3-N, and COD by algal biofilm were very stable. During a run of 24 days, the removal efficiencies of TP, TN, NH3-N, and COD reached 95.38%, 83.93%, 82.38%, and 92.31%, respectively. This study demonstrates the feasibility of removing nitrogen and phosphorus from simulated wastewater using algal biofilm.  相似文献   

18.
SBBR-CW system was proposed to effectively treat wastewater containing TCBPA. CW unit contributed more than SBBR to the removal of TCBPA. TCBPA changed the composition and structure of bacterial community in the system. GAOs massively grew in SBBR, but did not deteriorate TP removal efficiency. Tetrachlorobisphenol A (TCBPA) released into the sewage may cause environmental pollution and health risk to human beings. The objective of this study was to investigate the removal of TCBPA and bacterial community structures in a laboratory-scale hybrid sequencing biofilm batch reactor (SBBR)-constructed wetland (CW) system. The results showed that the removal efficiency of chemical oxidation demand (COD), ammonia, total nitrogen and total phosphorus in the SBBR-CW system was 96.7%, 97.3%, 94.4%, and 88.6%, respectively. At the stable operation stage, the system obtained a 71.7%±1.8% of TCBPA removal efficiency with the influent concentration at 200 mg/L. Illumina MiSeq sequencing of 16S rRNA gene revealed that the presence of TCBPA not only reduced the bacterial diversity in the SBBR-CW system, but also altered the composition and structure of bacterial community. After the addition of TCBPA, Proteobacteria increased from 31.3% to 38.7%, while Acidobacteria and Parcubacteria decreased greatly in the SBBR. In contrast, Acidobacteria replaced Proteobacteria as the dominant phylum in the upper soils of CW. The results indicated that TCBPA stimulated the growth of GAOs in the SBBR without deteriorating the phosphorus removal due to the presence of sufficient carbon sources. The ammonia oxidizing bacteria, Nitrosomonas, and denitrification bacteria, Hyphomicrobium and Pseudomonas, were inhibited by TCBPA, resulting in a decreasing the removal efficiency of TN and ammonia.  相似文献   

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