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1.
The aim of this research was to determine appropriate treatment technique for effective treatment of heavily polluted landfill leachate. We accomplished several treatment experiments: (i) aerobic biological treatment, (ii) chemical coagulation, (iii) advanced oxidation process (AOP) and (iv) several combined treatment strategies. Efficiency of these treatment procedures were monitored by analysing COD and colour removal. Leachate used for this study was taken from Matuail landfill site at Dhaka city. With extended aeration process which is currently used in Matuail landfill site for leachate treatment, maximum COD and colour removal of 36% and 20%, respectively could be achieved with optimum retention period of 7days. With optimum aluminium sulphate dose of 15,000mg/L and pH value of 7.0, maximum COD and colour removals of 34% and 66%, respectively were observed by using chemical coagulation. With optimum pH of 5.0 and optimum dosages of reagents having H(2)O(2)/Fe(2+) molar ratio of 1.3 the highest removal of COD and colour were found 68% and 87%, respectively with sludge production of 55%. Fenton treatment which is an advanced oxidation process was the most successful between these three separate treatment procedures. Among the combined treatment options performed, extended aeration followed by Fenton method was the most suitable one.  相似文献   

2.
The effectiveness of Fenton process in municipal landfill leachate treatment, as a pre- or post-treatment approach, has been demonstrated. However, no general recommendations of universal validity could be made in the term of optimized conditions affecting Fenton process. At the first stage of this study, collected leachate samples from Aradkooh site, Tehran, Iran, were investigated using one-factor-at-a-time method to find out optimum coagulation pH and flocculation time values. Subsequently, the obtained results in addition to data issued previously by the authors were employed to develop a predictive model of the true response surface, namely chemical oxygen demand (COD) removal efficiency. Finally, the main parameters of Fenton procedure, i.e. initial pH, [H(2)O(2)]/[Fe(2+)] molar ratio, Fe(2+) dosage, and coagulation pH were optimized taking advantage of the above-mentioned quadratic model. The derived second-order model included both significant linear and quadratic terms and seemed to be adequate in predicting responses (R(2)=0.9896 and prediction R(2)=0.6954). It was found that the interaction between initial pH and Fe(2+) dosage has a significant effect on COD removal. While, the optimal [H(2)O(2)]/[Fe(2+)] molar ratio was independent of ferrous ion dosage. The optimum conditions for the maximum COD removal of 50.76% for the parameters of initial pH, [H(2)O(2)]/[Fe(2+)] molar ratio, Fe(2+) dosage, and coagulation pH were found to be 5.8, 8.0, 22,500mg/L, and 8.7 respectively.  相似文献   

3.
采用大孔树脂吸附—Fenton试剂氧化法预处理含邻苯二甲酸二异丁酯(DIBP)废水。大孔树脂吸附工段的最佳实验条件为:以树脂NDA88为吸附剂,废水pH为2。NDA88经过10批次的连续使用,COD去除率基本稳定在58%左右,脱附率可达96%以上,吸附后废水COD为12 000 mg/L左右。Fenton试剂氧化工段的最佳实验条件为:H2O2加入量70 mL/L,n(H2O2):n(Fe2+)=4,废水pH 4。在此最佳条件下进行实验,Fenton试剂氧化工段COD去除率达65%,处理后废水COD为4 200 mg/L。  相似文献   

4.
Fenton氧化-生物接触氧化工艺处理甲醛和乌洛托品废水   总被引:8,自引:3,他引:5  
采用Fenton氧化一生物接触氧化工艺处理含甲醛和乌洛托品的模拟废水(简称废水),在H2O2(体积分数30%)加入量2.5g/L、H2O2与Fe^2+质量浓度比3.75、反应时间3h、不调节废水初始pH的Fenton氧化预处理最佳操作条件下,废水COD从1000mg/L左右降至300mg/L,COD去除率达72%。原废水完全无法直接进行生化处理,经Fenton氧化预处理后其BOD,/COD约为0.5,易于生化处理。Fenton氧化一生物接触氧化工艺处理废水,生物接触氧化停留时间为12h时,废水COD去除率高达94%,处理后出水COD小于70mg/L,处理效果很好。  相似文献   

5.
UV/Fenton氧化-混凝联合工艺处理含酚废水   总被引:8,自引:0,他引:8  
采用UV/Fenton氧化-混凝联合工艺对模拟苯酚废水进行处理,探讨了UV/Fenton预氧化程度和混凝处理条件对模拟苯酚废水处理效果的影响。结果表明,采用混凝处理,COD去除率仅为14.1%;当UV/Fenton预氧化处理过程中H2O2的质量浓度为150~300mg/L时,废水的混凝性能可提高1.5倍以上;当H2O2质量浓度为450mg/L、光反应时间为30min时,采用UV/Fenton氧化一混凝工艺联合处理后COD去除率达82.7%。苯酚废水采用UV/Fenton预氧化处理后,进行混凝处理过程的适宜pH为6.5,混凝剂Fe^3 的适宜质量浓度为500mg/L.  相似文献   

6.
采用Fenton氧化法对吸附处理染料废水后的饱和粉末活性炭(饱和炭)进行再生,考察了饱和炭的再生效果及其主要影响因素。实验结果表明:饱和炭的最佳再生条件为H2O2投加量6.5 mmol/g、再生p H 3.0、H2O2与Fe2+的摩尔比10、再生时间1 h;最佳条件下的再生率(再生粉末活性炭(再生炭)与新粉末活性炭对废水COD去除率的百分比)约为60%;使用最佳再生条件下得到的再生炭对废水进行吸附处理,废水的COD去除率和脱色率分别约为27%和67%。  相似文献   

7.
宋扬  汪晓军 《化工环保》2008,28(1):54-58
采用絮凝沉淀-Fenton试剂氧化法处理含高浓度硫酸盐的洗涤剂生产废水(简称废水),考察了各种因素对COD去除率的影响。实验结果表明:根据实际废水的水质情况,选用聚合氯化铝(PAC)为絮凝剂,PAC最佳加入量为0.3g/L,经絮凝处理后COD去除率为42.3%;Fenton试剂氧化的最佳操作条件为:n(H2O2):n(Fe^2+)=0.5、H2O2加入量为7mmol/L、反应时间为2h,不调节废水初始pH,经Fenton试剂氧化处理后COD去除率为70%以上。经絮凝沉淀-Fenton试剂氧化法处理后,废水COD由1950mg/L降至240mg/L,总的COD去除率为87.7%,废水处理效果良好。  相似文献   

8.
采用酸析—撞击流旋转填料床( IS-RPB)强化Fenton试剂氧化法预处理二硝基甲苯(DNT)生产废水.最佳工艺条件为:酸析工段废水pH 1.0,IS-RPB转速1 500 r/min,FeSO4加入量0.06 mol/L,H2O2加入量0.45mol/L,反应温度40 ℃,反应时间4h.在该条件下处理DNT生产废水,COD去除率可达98.95%,硝基化合物去除率达98.32%,BOD5/COD为 0.65.经该方法预处理后的DNT生产废水可适用于生化法进行后续处理.  相似文献   

9.
Performance evaluation of pilot scale sub-surface constructed wetlands was carried out in treating leachate from Pulau Burung Sanitary Landfill (PBSL). The constructed wetland was planted with Cyperus haspan with sand and gravel used as substrate media. The experiment was operated for three weeks retention time and during the experimentation, the influent and effluent samples were tested for its pH, turbidity, color, total suspended solid (TSS), chemical oxygen demand (COD), biochemical oxygen demand (BOD(5)), ammonia nitrogen (NH(3)-N), Total phosphorus (TP), total nitrogen (TN) and also for heavy metals such as iron (Fe), magnesium (Mg), manganese (Mn) and zinc (Zn) concentrations. The results showed that the constructed wetlands with C. haspan were capable of removing 7.2-12.4% of pH, 39.3-86.6% of turbidity, 63.5-86.6% of color, 59.7-98.8% of TSS, 39.2-91.8% of COD, 60.8-78.7% of BOD(5), 29.8-53.8% of NH(3)-N, 59.8-99.7% of TP, 33.8-67.0% of TN, 34.9-59.0% of Fe, 29.0-75.0% of Mg, 51.2-70.5% of Mn, and 75.9-89.4% of Zn. The significance of removal was manifested in the quality of the effluent obtained at the end of the study. High removal efficiencies in the study proved that leachate could be treated effectively using subsurface constructed wetlands with C. haspan plant.  相似文献   

10.
采用吸附-Fenton氧化-絮凝法处理对硝基苯胺生产废水(简称废水),研究了吸附剂、脱附温度、絮凝剂等因素对处理效果的影响.经实验确定的最佳工艺条件为:DM301大孔树脂加入量5.0 g/L,吸附时间20 h,Fenton氧化pH 3.0,H_20_2加入量0.3 moL/L,m(Fe):m(H_20_2)=6,絮凝阴离子型聚丙烯酰胺加入量20 mg/L.在此条件下对COD为2 780 mg/L、色度为185倍和pH为12.2的废水进行处理,出水的COD、色度和pH分别为169 mg/L、10倍和6.5,COD去除率和色度去除率分别达到93.9%和94.5%.DM301树脂在10~25次重复使用后对硝基苯胺的平均总去除率为47.7%,对硝基苯胺的平均回收率为37.9%.  相似文献   

11.
采用Fenton试剂氧化—SBR工艺处理阿莫西林制药废水生化处理出水。实验结果表明:当初始废水pH为3.0、H2O2加入量为10 mL/L、V(H2O2):m(FeSO4.7H2O)为5(mL):1(g)、Fenton试剂氧化反应时间为3 h时,Fenton试剂氧化COD去除率达72.25%,色度由100倍降为2倍,BOD5/COD由0.06提高到0.38,可生化性显著提高。经Fenton试剂氧化—SBR工艺处理后,出水COD为72.7 mg/L,达到国家排放标准。  相似文献   

12.
Advanced oxidation processes (AOPs) such as Fenton, electro-Fenton and photo-Fenton have been applied effectively to remove refractory organics from landfill leachate. The Fenton reaction is based on the addition of hydrogen peroxide to the wastewater or leachate in the presence of ferrous salt as a catalyst. The use of this technique has proved to be one of the best compromises for landfill leachate treatment because of its environmental and economical advantages. Fenton process has been used successfully to mineralize wide range of organic constituents present in landfill leachate particularly those recalcitrant to biological degradation. The present study reviews the use of Fenton and related processes in terms of their increased application to landfill leachate. The effects of various operating parameters and their optimum ranges for maximum COD and color removal are reviewed with the conclusion that the Fenton and related processes are effective and competitive with other technologies for degradation of both raw and pre-treated landfill leachate.  相似文献   

13.
采用混凝—热固化联合空气吹脱法处理高浓度水性油墨废水。混凝—热固化法处理高浓度水性油墨废水的优化工艺条件为混凝剂NS-1投加量7.36 g/L,热固化温度75 ℃,热固化时间30 min,在此条件下COD去除率达91.00%,色度去除率达99.00%。空气吹脱法处理混凝—热固化出水,初始ρ(氨氮)对氨氮去除率影响较小;气液比增大、废水pH升高、吹脱次数增加、废水温度升高均能提高氨氮去除率。在废水初始ρ(氨氮)为1 406.25 mg/L、气液比为2 667、废水pH为11.50、废水温度为25 ℃、连续吹脱4次的条件下,氨氮去除率达95.34%。  相似文献   

14.
胡绍伟  王飞  陈鹏  王永  徐伟 《化工环保》2014,34(4):344-347
采用内电解—Fenton氧化—絮凝沉淀的化学集成技术预处理焦化废水,优化了各工段的运行参数。实验结果表明:在钢铁铁屑与活性炭的体积比为1∶1的条件下,内电解工段的优化参数为进水pH 2.6~3.1、HRT=1.0 h;Fenton氧化工段的优化参数为Fe2+加入量200 mg/L、H2O2加入量1 000 mg/L、进水pH 3.0左右、反应时间1.0 h;絮凝沉淀工段的设定参数为进水pH 9.5~10.0、聚丙烯酰胺加入量1 mg/L、静置沉降0.5 h。在上述工艺条件下,该集成技术对废水的总COD去除率大于55%,处理后的废水BOD5/COD大于0.28,不添加稀释新水即可进入后续生化处理系统。该工艺占地面积小、系统结构简单、易于工业化,废水预处理成本为4~5元/t。  相似文献   

15.
采用微电解—Fenton氧化—絮凝组合工艺处理油田压裂废水,优化了工艺条件。实验结果表明:最佳工艺条件为初始废水pH 3.0、铁屑加入量1.5 g/L(铁屑与活性炭的质量比1∶1)、微电解时间80 min、Fenton氧化时间120 min、H2O2加入量940 mg/L,阳离子聚丙烯酰胺加入量120 mg/L;在最佳工艺条件下处理废水后,COD由3 116.0 mg/L降至681.3 mg/L,总COD去除率达78.1%,3个工段的COD去除率依次为33.1%,37.9%,7.1%,出水水质满足现场回注标准(SY/T 5329—2012《碎屑岩油藏注水水质推荐指标及分析方法》);该组合工艺对废水的处理效果远优于单独微电解、Fenton氧化或絮凝工艺,且方法简单易行、药剂利用率高。  相似文献   

16.
采用Fenton氧化法处理石化含油废水生化出水,通过正交实验和单因素实验优化了反应工艺条件。正交实验得到各因素对COD去除率的影响大小顺序为:溶液初始pHH_2O_2投加量n(H_2O_2)∶n(Fe~(2+))反应温度。实验最佳工艺条件为:初始溶液pH 4.0,H_2O_2投加量3.00 mL/L,n(H_2O_2)∶n(Fe~(2+))=10,反应温度35℃,反应时间60 min。在此最佳工艺条件下COD可降至60.33 mg/L,COD去除率达61.33%。在最佳工艺条件下,分别采用超声(US)-Fenton氧化和紫外光(UV)-Fenton氧化技术处理含油废水生化出水,COD去除率分别达76.77%和80.23%。但单一Fenton氧化、US-Fenton氧化和UV-Fenton氧化工艺对NH_3-N的去除效果均并不明显。  相似文献   

17.
针对传统Fenton体系Fe(Ⅲ)累积和pH适用范围过窄等缺点,采用羟胺(HA)强化的HA-Fenton体系,以对氯苯酚(4-CP)为目标污染物进行降解实验,考察了Fe(Ⅱ)投加量、H2O2投加量、HA投加量和溶液pH等工艺条件对4-CP去除率的影响。实验结果表明:HA-Fenton体系适用于酸性和弱酸性条件,最佳pH范围为3.0~4.0;在溶液pH为3.0、Fe(Ⅱ)投加量为5.0 μmol/L、H2O2投加量为0.4 mmol/L、HA投加量为0.20 mmol/L的最适条件下,反应10 min, 4-CP去除率达64.25 %。  相似文献   

18.
分别采用臭氧氧化和Fenton氧化两种高级氧化法对毛皮加工工业园区集中废水处理厂的进水进行了预处理,考察了各工艺条件对废水COD去除效果的影响,并比较了两种方法对废水可生化性的改善情况。实验结果表明:在初始废水pH为8、臭氧投加速率为1.2 g/h的最适宜条件下,臭氧氧化法的COD去除率最高达72.7%,废水的可生化性显著提高,废水BOD5/COD由初始的0.06提高至0.12;在,n(Fe~(2+)):月(H_2O_2)=1:10、H_2O_2投加量为1.5 mL/L,、初始废水pH为2.5的最适宜条件下,Fenton氧化的COD去除率最高达33.4%,但废水可生化性不大;经臭氧氧化和Fenton氧化处理后,废水中的不饱和结构物质均得到了有效降解。  相似文献   

19.
This study investigated the electrochemical oxidation of stabilized leachate from Pulau Burung semi-aerobic sanitary landfill by conducting laboratory experiments with sodium sulfate Na2SO4 (as electrolyte) and graphite carbon electrodes. The control parameters were influent COD, current density and reaction time, while the responses were BOD removal, COD removal, BOD:COD ratio, color and pH. Na2SO4 concentration was 1 g/L. Experiments were conducted based on a three-level factorial design and response surface methodology (RSM) was used to analyze the results. The optimum conditions were obtained as 1414 mg/L influent COD concentration, 79.9 mA/cm2 current density and 4 h reaction time. This resulted in 70% BOD removal, 68% COD removal, 84% color removal, 0.04 BOD/COD ratio and 9.1 pH. Electrochemical treatment using graphite carbon electrode was found to be effective in BOD, COD and color removal but was not effective in increasing the BOD/COD ratio or enhancing biodegradability of the leachate. The color intensity of the treated samples increased at low influent COD and high current density due to corrosion of electrode material.  相似文献   

20.
以粉煤灰为主要原料制备了免烧结粉煤灰陶粒,并将其作为曝气生物滤池(BAF)的填料用于深度处理乙烯化工厂二级生化出水。实验结果表明,在平均进水COD为54.62mg/L、平均SS为33.93mg/L、平均ρ(NH3-N)为1.33mg/L的条件下,自制免烧结粉煤灰陶粒BAF平均COD去除率为57.14%,平均SS去除率为68.64%,平均NH3-N去除率为74.89%,均略高于普通商业陶粒BAF。自制免烧结粉煤灰陶粒BAF最佳反冲洗周期为2d,并具有反冲洗耗水量小、反冲洗效果好的优势。  相似文献   

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