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1.
采用室内砂槽实验装置,研究了以可降解餐盒(BMB)为反硝化碳源的生物反应器对于模拟污水中硝酸盐的去除效果及其影响因素。结果表明,以BMB为反硝化碳源的反应器启动时间短。当进水硝酸盐浓度为50 mg/L,水温为25℃,水力停留时间为1.15 d时,硝酸盐的去除率可达92.6%以上,实验过程中出现亚硝酸盐积累,出水TOC浓度上升,但反应稳定后亚硝酸盐浓度均低于0.1 mg/L,且TOC浓度有下降趋势;水力停留时间减小或者进水硝酸盐浓度增加均能使得脱氮效率降低,但当水力停留时间在0.57~1.15 d,进水硝酸盐浓度在50~80 mg/L范围变化时,反应器硝酸盐去除效率仍能达到80%以上;温度对反硝化作用影响较大,当温度为(20±1)℃时,硝酸盐的去除效率仅为62.0%、74.4%和97.5%。  相似文献   

2.
溶解氧和有机碳源对同步硝化反硝化的影响   总被引:9,自引:5,他引:9  
利用SBR反应器,探讨了溶解氧(DO)和有机碳源(COD)对同步硝化好氧反硝化的影响.结果表明,DO范围在0.5~0.6 mg/L时最适合于同步硝化好氧反硝化脱氮.在同步硝化反硝化过程中出现了亚硝酸盐氮的积累,推断经由短程硝化反硝化途径.总氮的去除率随着COD/N(碳氮比)的增加而增加,当COD/N为10.05时,总氮去除率最高可达70.39%.继续增加碳氮比时,总氮去除率增加不多,并且还会导致硝化作用不完全.当存在足够的易降解有机碳源时,能发生完全的好氧反硝化作用.  相似文献   

3.
微氧膜生物反应器同时去除有机物和氮的研究   总被引:3,自引:0,他引:3  
采用微氧颗粒污泥膜生物反应器处理生活污水,进行同时去除有机物和氮的研究。结果表明,膜出水COD不受水力停留时间变化的影响一直稳定在较低值,为15~35mg/L,去除率在94%以上。氮通过发生同时硝化反硝化反应而去除。在水力停留时间为16h以上时, 系统总氮去除率为65% ~92%,平均去除率为77%。  相似文献   

4.
分段进水多级生物膜反应器脱氮效能影响因素研究   总被引:2,自引:1,他引:1  
采用分段进水多级生物膜反应器处理高氮低碳小城镇污水,考察负荷、溶解氧和温度对反应器脱氮效能的影响。实验结果表明:负荷、溶解氧和温度对反应器脱氮效能有显著影响。在水温为20~25℃,DO为5 mg/L,负荷为1 kgCOD/(m3.d),挂膜密度为30%,第1、3、6级分段进水,流量分配比为2∶2∶1的条件下,在反应器中可成功构建出高效同时硝化反硝化系统,出水COD、NH4+-N和TN浓度分别为33 mg/L、2.6 mg/L和29.4 mg/L,去除率分别为90.1%、96.0%和63.9%。当水温≤15℃时,硝化速率受温度的影响显著。  相似文献   

5.
以剩余污泥水解酸化液为外加碳源的污水生物脱氮   总被引:3,自引:0,他引:3  
为解决低碳氮比污水生物脱氮过程反硝化碳源不足的问题,利用剩余污泥水解酸化液为外加碳源,通过具有曝气段与非曝气段的一体化曝气生物滤池(BAF),研究低碳氮比污水生物脱氮的性能与工艺条件。实验结果表明,预处理后的水解酸化液VFAs为3134.9~5251.4mg/L、ThODVFAs/COD为59.87%~91.85%,适合作为生物脱氮的外加碳源;水解酸化液的投配量、进水TN浓度对系统生物脱氮效果的影响较大,气水比、曝气段与非曝气段比例对系统的硝化和反硝化性能有重要的影响;在温度为25±1℃,水解酸化液COD平均为7555.1mg/L,进水TN、NH4-N和COD分别平均为43.88mg/L、39.04mg/L和56.8mg/L,碳源与污水投配的流量比为1:75的条件下,当BAF水力停留时间(HRT)为8h、曝气段与非曝气段比例为3:3、气水比为10:1、回流比为2:1时,NH4-N和TN的去除率分别超过98%和75%,出水COD平均为28.6mg/L。研究指出,剩余污泥水解酸化液经过预处理后可用作低碳氮比污水生物脱氮的外加碳源,有效地提高了反硝化效果,并不会造成二次污染,同时又可以实现剩余污泥的减量化和资源化。  相似文献   

6.
研究了低温条件下,沸石和火山岩为载体,锯末为碳源的生物反应器对地下水中硝酸盐氮的去除效果。结果表明,在(14±1)℃,水力停留时间18 h,进水硝酸盐氮浓度为27 mg/L的条件下,以锯末为碳源能有效去除地下水中的硝酸盐,沸石为载体时对硝酸盐氮的平均去除率为98%;火山岩为载体时对硝酸盐氮的平均去除率为95%。实验过程中出现铵盐和亚硝酸盐的积累,出水中氨氮浓度为1~2.55 mg/L,亚硝酸氮浓度为0~0.98 mg/L。出水pH均介于7~8,满足饮用水标准中pH的要求(6.5~8.5)。  相似文献   

7.
采用A/O-CSTR工艺处理高氨氮污泥脱水液。进水氨氮浓度浓度约为375 mg/L,C/N比小于1.0,反硝化碳源明显不足。A/O反应器完成短程硝化反应,CSTR定期投加初沉污泥作为碳源进行反硝化。两者联合达到总氮去除的目的。实验研究短程硝化反应的启动过程,以及CSTR出水回流对短程硝化和系统脱氮效果的影响。实验结果表明系统具有良好的硝化反硝化效果。A/O反应器亚硝酸盐积累率迅速提高并稳定在90%以上。CSTR有效利用初沉污泥实现了稳定的反硝化。出水回流有利于提高总氮去除率,在回流比为200%时,系统平均总氮去除率达到85%以上。  相似文献   

8.
碳氮比对低温投加介体生物反硝化脱氮的影响   总被引:1,自引:0,他引:1  
污水的生物脱氮效果受低温抑制,投加氧化还原介体有利于反硝化过程。采用规格相同的序批式反应器,使用人工配制硝酸盐废水和经过驯化的活性污泥,考察了不同碳源浓度(碳氮比)对低温(10℃)投加氧化还原介体1, 2-萘醌-4-磺酸(NQS)污水生物反硝化脱氮过程的影响。结果表明:当碳源浓度(以COD计)为150~400mg·L~(-1) (碳氮比为1.8~4.7)时,脱氮效率随碳氮比的升高而升高;当碳源浓度为400~550 mg·L~(-1) (碳氮比为4.7~6.5)时,脱氮效率随着碳氮比的升高而降低;当碳源浓度为400 mg·L~(-1) (碳氮比为4.7)左右时效果最好,总氮去除率最高为64.7%。对于脱氮速率,介体强化脱氮速率随着碳氮比的升高而升高。同时,探讨了投加介体污水生物反硝化脱氮的机理,发现投加介体降低了体系的氧化还原电位(ORP),有利于反硝化脱氮反应的进行。  相似文献   

9.
针对垃圾填埋场渗滤液生物脱氮高耗能的问题,通过对A/O/N工艺处理垃圾渗滤液进行短程硝化反硝化调试,对溶解氧(DO)、污泥浓度(MLSS)、污泥龄(SRT)、混合液回流比、pH、碱度进行定性定量分析,研究了不同条件下垃圾渗滤液生物处理阶段COD、氨氮及总氮去除效果,探讨了影响亚硝酸盐氮积累的因素。结果表明,好氧池低溶解氧能成功启动短程硝化,垃圾渗滤液稳定实现短程硝化反硝化脱氮。运行条件为:O反应器DO浓度0.5~0.8 mg·L~(-1),N反应器DO浓度1.5~2.2 mg·L~(-1),MLSS 3 500~4 500 mg·L~(-1),污泥龄9~13 d,混合液回流比1 100%,N反应器pH 7.6~8.2,N反应器碱度1.1 g·L~(-1)。短程硝化调试后,硝化阶段亚硝化率稳定在85%以上,COD、氨氮及总氮去除率分别达95%、98.6%、94.2%以上,节省30%碳源量和20%曝气量。  相似文献   

10.
采用柱实验,以泥炭颗粒作为缓释碳源,探究不同水力停留时间(HRT)下泥炭颗粒对反硝化过程的影响。结果表明:(1)泥炭颗粒可作为有效缓释碳源,当HRT为6.67h时,脱氮效果最好,硝酸盐氮去除率能达到81.9%。(2)出水COD较低,最终为9~12mg/L,不会对水体造成二次污染;亚硝酸盐氮先升后降,最终均小于0.2mg/L,未出现积累现象,泥炭颗粒可作为生物脱氮反应器中长期运行的缓释碳源。  相似文献   

11.
Anaerobic granular sludge, obtained from an upflow anaerobic sludge bed reactor at a brewery waste treatment station, was cultured for 3 months under aeration conditions until the diameter of sludge was in the range 1.8 to 2.6 mm. The aerobic granular sludge gathered acquired the ability of catalyzing simultaneous nitrification and denitrification (SND) and was applied in the study of the process of nitrogen removal in a bioreactor. The ratio between chemical oxygen demand (COD) and ammonium-nitrogen (NH4(+)-N) concentration in the influent was found to be an important factor influencing the process of SND. The final percentage removal of NH4(+)-N reached 100% under the optimal condition of 500 mg/L COD and 0.39 NH4(+)-N/COD. Intermediate products, such as nitrite-nitrogen and nitrate-nitrogen, were also analyzed to clarify the SND process with the aerobic granular sludge.  相似文献   

12.
吹脱法预处理皮革废水的实验研究   总被引:5,自引:0,他引:5  
对某皮革厂综合废水进行吹脱预处理实验,综合考察了影响氨氮去除的各个因素(pH值、汽液比、吹脱温度、氨氮初始浓度),同时对该预处理工艺去除铬、SS(悬浮固体浓度)、COD和硫化物的条件进行了优化,并进行了能耗及运行成本估算。结果表明:该厂皮革废水的最佳吹脱工况为pH=11,气液比=1 800,温度25~35℃,在此条件下,当进水ρ(NH3-N)=304.7 mg/L、ρ(Cr)=65.0 mg/L、ρ(SS)=1 700 mg/L、ρ(COD)=2 700 mg/L、ρ(S2-)=112.3 mg/L时,相应的去除率可达78.1%~83.5%、96.4%、88.2%、45.6%和85.0%,且吹脱法对氨氮具有较高的抗冲击负荷能力,吨水处理成本约为3.61元,可作为皮革废水的预处理工艺。  相似文献   

13.
曝气生物滤池中碳和氮代谢特性   总被引:2,自引:1,他引:1  
用充填陶瓷滤料的曝气生物滤池研究碳和氮代谢特性.曝气生物滤池进水氨氮为52 mg/L左右、COD为100 mg/L左右和回流比为200%时,经过20多d的运行,出水氨氮小于0.05 mg/L、COD小于25 mg/L、亚硝态氮为4.7 mg/L和硝态氮为7.1 mg/L,COD去除率达75%,氨氮去除率达99.9%,总氮去除率达78%;过大和过小的回流比对曝气生物滤池的运行性能都是不利的.研究成果可以应用于一般城市污水以及含低COD、高氨氮工业废水的处理.  相似文献   

14.
The performance of an innovative membrane bioreactor (MBR) process using anoxic phosphorus uptake with nitrification and denitrification for the treatment of municipal wastewater with respect to operational performance and effluent quality is addressed in this paper. The system was operated at steady-state conditions with a synthetic acetate-based wastewater at a hydraulic retention time (HRT) of 12 hours and on degritted municipal wastewater at a total system HRT of 6 hours. The MBR system was able to achieve 99% biochemical oxygen demand (BOD), chemical oxygen demand (COD), and ammonia-nitrogen (NH4(+)-N); 98% total Kjeldahl nitrogen (TKN); and 97% phosphorus removal, producing effluent BOD, COD, NH4+-N, TKN, nitrate-nitrogen, nitrite-nitrogen, and phosphate-phosphorus of <3, 14, 0.2, 0.26, 5.8, 0.21, and <0.01 mg/L, respectively, at the 6-hour HRT. The comparison of the synthetic and municipal wastewater run is presented in this paper. Steady-state mass balance on municipal wastewater was performed to reveal some key features of the modified MBR system.  相似文献   

15.
依据好氧硝化和缺氧反硝化生物脱氮除碳工艺原理,设计了一体化生物膜法A/O反应器,并将其应用于生活污水处理,取得了理想的处理效果。实验结果表明,水力停留时间HRT=12 h,COD进水浓度处于150~500 mg/L范围内,COD的去除率均在90%以上,且出水均在40 mg/L以下;当C/N比为8.5以下时,NH3-N去除率高于90%,其出水浓度小于5 mg/L;当C/N比为7.5左右时,具有较高的总氮脱除效果,TN去除率可达到70%。  相似文献   

16.
O3氧化工艺处理黄连素制药废水研究   总被引:1,自引:0,他引:1  
采用臭氧(O3)氧化法处理含高浓度黄连素和COD的制药废水,探讨了废水初始pH、O3投加量及初始黄连素浓度等因素对O3氧化过程的影响,确定了O3氧化技术处理黄连素制药废水的最佳操作条件。结果表明,O3能够有效分解废水中的黄连素,降低其COD浓度;黄连素浓度为700mg/L、COD为3500mg/L、pH为0.88的废水,进气O3浓度为14.05mg/(L·min),处理时间为180rain(即投加量为2529mg/L)时,黄连素和COD的降解率分别可达77.46%和41.28%,BOD,/COD比(B/C比)从0.06提高到0.34,增加了4.7倍;随着废水中初始黄连素浓度的升高,废水COD降解率逐渐降低。O3氧化法是一种有效的黄连素制药废水预处理技术,可以大大提高废水的可生化性。  相似文献   

17.
研究了分别以葡萄糖和乙酸钠为碳源时多点交替进水阶式A2/O(CMICAO)工艺氮磷的去除效果,以及在不同进水C/N比时各进水量分配对脱氮除磷效果的影响.结果表明,在相同的进水COD浓度下,乙酸钠比葡萄糖更适合作为碳源,更能提高脱氮除磷效率.以葡萄糖为碳源时,COD为200 mg/L、C/N比为5、缺氧池与厌氧池进水配比为1∶2时,出水COD、TN、氨氮和TP浓度分别为28.5、10.8、2.1和0.5 mg/L,均达到国家一级A排放标准.若采用葡萄糖作为碳源,投加量以使进水C/N比为5~7.5为宜,外加碳源时缺氧池与厌氧池进水分配比可统一采用1∶1.  相似文献   

18.
在污水处理领域同步除碳脱臭研究一直是个难题,本实验开发了一种新型同步除碳脱臭一体式A/O反应器,研究了该一体式A/O反应器处理不同碳硫比有机废水时的同步除碳脱臭功能。结果表明,碳硫比为30∶1时,即进水SO24-浓度为133 mg/L,该反应器总COD去除率可达到95%。在进水SO24-浓度不大于400 mg/L时,中间产物臭气硫化氢气可以完全去除,实现了同步除碳脱臭的功能,减少了在有机废水处理过程中的大量臭气的排放。微生物学角度分析,表明污泥中含有大量的硫细菌。  相似文献   

19.
The main objective of this study was to investigate the feasibility of coagulation as a post-treatment method of anaerobically treated primary municipal wastewater. Both mesophilic and ambient (20 degrees C) temperature conditions were investigated in a laboratory-scale upflow anaerobic sludge bed (UASB) reactor. In addition, optimization of the coagulant, both in terms of type and dose, was performed. Finally, phosphorus removal by means of aluminum and iron coagulation and phosphorus and ammonia nitrogen removal by means of struvite precipitation were studied. Anaerobic treatment of primary effluent at low hydraulic retention times (less than 15 hours) resulted in mean chemical oxygen demand (COD) removals ranging from 50 to 70%, while, based on the filtered treated effluent, the mean removals increased to 65 to 80%. Alum coagulation of the UASB effluent gave suspended solids removals ranging from approximately 35 to 65%. Turbidity removal reached up to 80%. Remaining COD values after coagulation and settling were below 100 mg/L, while remaining total organic carbon (TOC) levels were below 50 mg/L. Filterable COD levels were generally below 60 mg/L, while filterable TOC levels were below 40 mg/L. All coagulants tested, including prepolymerized aluminum and iron coagulants, demonstrated similar efficiency compared with alum for the removal of suspended solids, COD, and TOC. Regarding struvite precipitation, optimal conditions for phosphorus and nitrogen removal were pH 10 and molar ratio of magnesium: ammonia-nitrogen: phosphate-phosphorus close to the stoichiometric ratio (1:1:1). During struvite precipitation, removal of suspended solids reached 40%, while turbidity removal reached values up to 80%. The removal of COD was approximately 30 to 35%; yet, when removal of organic matter was based on the treated filterable COD, the removal increased to approximately 65%. In addition, nitrogen was removed by approximately 70%, while phosphorus removal ranged between approximately 30 and 45% on the basis of the initial phosphorus concentration. Finally, size fractionation of the organic matter (COD) showed that the various treatment methods were capable of removing different fractions of the organic matter.  相似文献   

20.
采用Fenton氧化-序批式膜生物反应器(SBMBR)组合工艺处理干法腈纶废水。结果表明,在废水初始pH值为3.0,H2O2投加量为90.0 mmol/L,Fe2+投加量为20.0 mmol/L,反应时间为2.0 h的条件下,Fenton氧化预处理对腈纶生产废水的COD去除率达到47.0%以上,COD由1 091 mg/L降至560 mg/L,废水的BOD5/COD由0.32升至0.69,废水的可生化性得到显著提高。Fenton处理出水与丙烯腈废水等比例混合后,采用SBMBR进行生化处理,在水力停留时间为24 h,90 min缺氧/150 min好氧交替运行的条件下,COD、NH4+-N和TN的平均去除率分别为71.7%、97.2%和47.4%,碳源不足是限制TN去除效果的主要影响因素。在无外加碳源的条件下,组合工艺处理后出水COD和NH4+-N浓度分别为117 mg/L和1.7 mg/L,出水水质可以稳定达到国家一级排放标准(GB8978-1996)。  相似文献   

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