首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到19条相似文献,搜索用时 390 毫秒
1.
聚合氯化铝与粉末活性炭联合强化混凝处理垃圾渗滤液   总被引:1,自引:0,他引:1  
研究了联合粉末活性炭与聚合氯化铝(PAC)强化混凝对垃圾渗滤液原水的处理效果。结果表明,在原水COD为4 100 mg/L、浊度为147 NTU、UV254为20的条件下,粉末活性炭的加入可以有效增加垃圾渗滤液中有机物的去除率,PAC投加量为0.6 g/L时,投加0.6 g/L粉末活性炭,COD的去除率由21.6%提高到29.1%,UV254去除率由29.8%提高到39.9%,剩余浊度由138 NTU降到133 NTU。该强化混凝过程使原水中溶解性小分子有机物的去除率提高显著,PAC投加量为0.6 g/L时,投加0.6 g/L粉末活性炭,在分子量小于1 kDa的范围内,UV254去除率由2.9%上升为10%。  相似文献   

2.
传统活性污泥法工艺投加粉末活性炭的生产试验性应用   总被引:1,自引:0,他引:1  
为提高系统的脱氮效率,对南通某污水处理厂一期工程的传统活性污泥法工艺,进行投加粉末活性炭的生产试用性试验。试验结果表明,PAC的投加,均明显提高了有机物和SS的去除率,脱氮效率明显改善,试验期间的污泥浓度和沉降性能有所提高。通过统计计算,PACT法的处理成本约为0.12元/m3。  相似文献   

3.
研究了使用单混凝剂聚合氯化铝(PAC)混凝、助凝剂阴离子型聚丙烯酰胺(APAM)-PAC复配混凝和粉末活性炭联合APAM-PAC强化混凝对窖水的处理效果。结果表明,在PAC质量浓度为15.0mg/L,APAM质量浓度为0.15mg/L,粉末活性炭投加量为20mg/L的强化混凝条件下,微污染窖水中的UV_(254)、COD和浊度的去除率可分别达到66%、54%、97%。APAM对有机物的去除效果提升没有分子量选择性,而粉末活性炭对小分子有机物的去除效果更为明显。  相似文献   

4.
为了系统研究聚合氯化铝(PAC)和聚丙烯酰胺(PAM)对生物造粒流化床颗粒污泥生理生态的影响,对投加PAC或PAM后活性污泥的特性和硝化菌群的空间分布进行了对比研究,同时考察了投加混凝剂后的污染物去除效果.结果表明,与不投加混凝剂相比,投加PAC后,运行60 d时反应器中混合液悬浮固体(MLSS)、混合液挥发性悬浮固体(MLVSS)浓度分别提高了73%、29%;通过平板计数法计算结果可知,未投加混凝剂、投加PAC、投加PAM的反应器中微生物的增长是非常稳定的,投加PAC或PAM都促进了细菌的生长和繁殖;荧光原位杂交鉴定结果表明,各个反应器中亚硝化菌(AOB)或硝化菌(NOB)所占比例均基本相当,且AOB数量均略高于NOB数量;投加PAC或PAM都能够提高COD的去除率;投加PAC可大大提高TP的去除率;3个反应器中各种形态氮的去除效果非常接近,脱氮主要靠硝化菌群的生物降解作用,投加PAC或PAM对微生物的硝化作用没有抑制.  相似文献   

5.
廖伟  陆少鸣 《环境工程学报》2011,5(9):2013-2017
在给水曝气生物滤池内置粉末活性炭,对比分析其对各工艺单元水质净化效果的影响,确定给水曝气生物滤池内置粉末活性炭的作用与最佳投加量,研究表明,给水曝气生物滤池将活性炭截留在滤池内,大幅度提高了粉末活性炭利用率,部分未饱和粉末活性炭通过反冲洗排入后续常规处理系统,作为生物载体仍能够进一步发挥生物强化作用。当粉末活性炭的投加量为8 mg/L时,砂滤出水氨氮、CODMn、浊度和色度均值分别为:0.02 mg/L,1.82 mg/L0,.46 NTU和6度,去除率分别达到99.6%、71.2%、99.1%和80.6%,出水指标达到《生活饮用水卫生标准(》GB5749-2006)和《饮用净水水质标准(》CJ94-2005)规定的标准。与常规工艺相比,投加量降低了20%~60%。  相似文献   

6.
采用活性炭吸附和两级Fenton氧化组合工艺对高盐度对氨基苯酚生产废水进行了处理实验研究。结果表明,p H值对活性炭去除有机物的影响较小。当活性炭投加量为4 g/L时,TOC去除率61%。分级加药可以有效提高Fenton氧化对有机物的去除效率。在温度为25℃、p H为3、30%H2O2投加量为3%(V/V)、Fe2+/H2O2摩尔比为0.05时,两级Fenton氧化处理后,出水TOC降至150 mg/L以下。此外,Fenton氧化后形成氢氧化铁污泥颗粒粒径为4.5μm,经过聚丙烯酰胺(PAM)絮凝之后,污泥的粒径明显增加,过滤特性改善。PAM絮凝效果依赖于溶液的p H值,当p H超过10后会失去作用,故在使用过程中需要严格控制溶液的p H值。  相似文献   

7.
在室温条件下,分别选用聚合氯化铝(PAC)、聚合氯化铝铁(PAFC)及三氯化铁(FeCl3)对玉米深加工废水进行混凝实验。综合考虑各种混凝剂对磷、COD以及SS的去除效果,最终选取PAC作为混凝剂。采用PAC和聚丙烯酰胺(PAM)作为复合混凝剂,对其去除效果做进一步研究,并确定了最佳投加量及pH值。实验结果表明,在PAC投加量25mg/L,PAM投加量0.5 mg/L,pH为8条件下,混凝效果最佳。磷、COD、SS去除率可分别达到90.1%、53.3%和88.2%,对应的出水质量浓度分别为0.41、26.8和2 mg/L。  相似文献   

8.
硫铁矿烧渣催化类Fenton法深度处理维生素C废水   总被引:1,自引:0,他引:1  
采用硫铁矿烧渣协同Fe2+催化H2O2的类Fenton法深度处理维生素C制药废水,通过正交实验考察FeSO4投加量、H2O2投加量、搅拌反应时间、曝气时间等因素对低浓度难降解有机物去除的影响程度,并结合单因素实验确定最佳反应条件。结果表明:(1)正交实验中,各因素对催化氧化反应效果的影响程度依次为H2O2投加量搅拌反应时间曝气时间FeSO4投加量;(2)单因素实验中,最佳反应条件为烧渣投加量10g/L、H2O2投加量4.9mmol/L、FeSO4投加量3.9mmol/L、搅拌反应时间20min、曝气时间20min、絮凝沉淀部分聚丙烯酰胺(PAM)投加量5mg/L。在此条件下,COD去除率最高达63.21%。  相似文献   

9.
通过投加不同混凝剂、助凝剂和氧化剂,对含溴氰菊酯农药的某水库原水进行强化混凝-氧化处理,探讨了不同条件下对原水的处理效果.结果表明,当对水样仅作常规混凝处理时,聚合氯化铝(PAC)的处理效果优于其他混凝剂,最佳投加量为18mg/L,最佳pH为9,最高去除率可达64.5%.投加助凝剂可提高混凝效果,聚丙烯酰胺(PAM)助凝效果优于水玻璃.混凝后水样再用高锰酸钾(KMnO4)氧化处理,结果表明,在水样pH为5,KMnO4投加量为0.6mg/L,氧化时间为25 min的条件下,溴氰菊酯去除率最高可达82.4%.  相似文献   

10.
采用紫外(UV)/TiO_2/H_2O_2去除水中聚丙烯酰胺(PAM),研究了H_2O_2投加量、TiO_2投加量、UV光照强度以及PAM初始浓度等因素对PAM去除效果的影响,并对降解体系是否产生丙烯酰胺单体(AM)进行验证。试验结果表明,在20℃、H_2O_2投加量为20mmol/L、催化剂TiO_2投加量为10mg/L、PAM初始质量浓度为100mg/L,UV光照强度为140μW/cm~2时,反应120min后的PAM去除率达97.4%,且无AM产生。  相似文献   

11.
The objectives of this study were to evaluate the performance of powdered activated carbon treatment (PACT) process based on the adsorption capacity of powdered activated carbon (PAC) in activated sludge and the effect of dissolved organic substances in activated sludge on the adsorption capacity of PAC. The DCP adsorption capacity of three PACs originated from different raw materials (coal, soft coal and sawdust) in activated sludge were 29%, 34% and 17% of that of new PAC, respectively. The performance of PACT process for shock loading of 3,5-dichlorophenol (3,5-DCP) was different among PACs in spite of the same adsorption capacity in new PAC. The performance of PACT process for removal of DCP is dependent not on the adsorption capacity of new PAC but on the adsorption capacity of PAC in the aeration tank. Dissolved organic matter (DOM) with molecular weight smaller than 50kDa did not affect the adsorption capacity of PAC for 3,5-DCP in the activated sludge reactor. DOM with molecular weight larger than 50kDa and biofilm developed on the surface of PAC seemed to be responsible for the decreased adsorption capacity of PAC for the DCP.  相似文献   

12.
低曝气下PAC强化SBR工艺同步脱氮除磷   总被引:1,自引:0,他引:1  
采用序批式反应器(SBR)处理模拟生活污水,研究不同曝气量(30、24、18和12 L/h)下活性污泥同步脱氮除磷规律,并在最佳曝气量下,比较了粉末活性炭-序批式反应器(PAC-SBR)和SBR的脱氮除磷效率,分析了低曝气下PAC-SBR的运行特性和优越性。实验结果表明,当曝气量为24 L/h时,SBR内出水效果较好,其COD、TN和TP的平均去除率分别可以达到90.02%、81.13%和88.12%。在这个最佳曝气量下,PAC-SBR具有明显的优势,其COD、TN和TP的平均去除率均高于SBR,并且PAC-SBR具有较好的污泥沉降性能和较高的活性污泥浓度。在PAC-SBR中,活性污泥以PAC作为微生物载体强化了生物降解效果,并改善了低曝气下污泥絮体的结构,促使反应器内先后形成缺氧-厌氧-微氧/缺氧-缺氧的环境,利于同步硝化反硝化和反硝化聚磷,提高了PAC-SBR的同步脱氮除磷效率。  相似文献   

13.
以养猪场废水作为研究对象,采用序列间歇式活性污泥法SBR,通过实验研究了供气量、pH、排泥量、原水稀释倍数、水力停留时间(HRT)对SBR出水水质的影响。结果表明,供气量为375 L/(min·m3)、pH为8.0,并添加排泥100 mL的操作,可使SBR处理效果明显提高,COD、磷和凯氏氮去除率最高分别可达96.37%、94.14%、99.38%。逐步降低进水稀释倍数有利于培养出处理高浓度有机养猪废水的活性污泥,可将平均COD、磷和凯氏氮含量高达9 161.24、33.41和1 502.77 mg/L的养猪废水处理至出水的490.11、5.35和17.84 mg/L。降低HRT对SBR去除率影响不大。  相似文献   

14.
The simultaneous action of powdered activated carbon and several coagulant agents on the removal of the fungicide dodine from spiked distilled water, was studied. As coagulants, ferric chloride (FeCl3) and basic polyaluminium chlorosulfate ([Al(OH)xCly(SO4)z]n) were examined, using polyacrylamide, in certain cases, as coagulant aid (polyelectrolyte). The efficiency of dodine removal was investigated with respect to the added amount of powdered activated carbon (PAC), the pH value, as well as the type and dose of coagulant and polyelectrolyte. The experiments were performed applying the standard jar-test procedure. The initial concentration of dodine was 250 μg/L. At this concentration and pH range 5–8 it was found that a dose of 100 mg/L PAC was necessary to achieve more than 98% removal of dodine, whereas lower removal (91–93%) was obtained applying half the dose of PAC under the same conditions. However, when 10–100 mg/L FeCl3 were simultaneously added with PAC, the removal efficiency increased to >98%, even with the half PAC dose.  相似文献   

15.
污泥活性炭对次甲基蓝废水的吸附   总被引:1,自引:0,他引:1  
立足于污泥的资源化,利用化学活化法制得的污泥基活性炭,处理次甲基蓝染料废水.考察了污泥活性炭的粒径以及染料废水的pH值对染料脱色效果以及活性炭的吸附量的影响,并对吸附过程进行等温吸附线和吸附动力学分析.结果表明,在本研究的范围内,污泥活性炭的粒径越小、染料废水的pH值越高,则污泥活性炭对染料废水的吸附效果越好.当粒径在200目以上时,去除率及吸附量分别为88.2%和136.7 mg/g;当pH值为11时,去除率和吸附量分别为90.4%和91.9 mg/g.污泥活性炭对次甲基蓝染料的吸附脱除符合Langmuir吸附等温线和Lagergren准二级动力学方程.  相似文献   

16.
Co-treatment of acid mine drainage (AMD) with municipal wastewater (MWW) using the activated sludge process is a novel treatment technology offering potential savings over alternative systems in materials, proprietary chemicals and energy inputs. The impacts of AMD on laboratory-scale activated sludge units (plug-flow and sequencing batch reactors) treating synthetic MWW were investigated. Synthetic AMD containing Al, Cu, Fe, Mn, Pb, Zn and SO4 at a range of concentrations and pH values was formulated to simulate three possible co-treatment processes, i.e., (1) adding raw AMD to the activated sludge aeration tank, (2) pre-treating AMD prior to adding to the aeration tank by mixing with digested sludge and (3) pre-treating AMD by mixing with screened MWW. Continuous AMD loading to the activated sludge reactors during co-treatment did not cause a significant decrease in chemical oxygen demand (COD), 5-day biochemical oxygen demand, or total organic carbon removal; average COD removal rates ranged from 87–93 %. Enhanced phosphate removal was observed in reactors loaded with Fe- and Al-rich AMD, with final effluent TP concentrations <2 mg/L. Removal rates for dissolved Al, Cu, Fe and Pb were 52–84 %, 47–61 %, 74–86 % and 100 %, respectively, in both systems. Manganese and Zn removal were strongly linked to acidity; removal from net-acidic AMD was <10 % for both metals, whereas removal from circum-neutral AMD averaged 93–95 % for Mn and 58–90 % for Zn. Pre-mixing with screened MWW was the best process option in terms of AMD neutralization and metal removal. However, significant MWW alkalinity was consumed, suggesting an alkali supplement may be necessary.  相似文献   

17.
微波法制备污泥活性炭研究   总被引:4,自引:0,他引:4  
采用微波加热法,以污水厂剩余污泥为原料,磷酸为污泥活化剂制备污泥活性炭.微波功率、辐照时间和磷酸浓度对污泥活性炭吸附性能具有显著影响,在最佳工艺条件微波功率480 W、辐照时间315 s和磷酸浓度40%条件下制得的活性炭碘值301 mg/g,比表面积168 m2/g,污泥中重金属绝大部分被固化.与传统商品炭相比,污泥炭孔隙结构以中孔为主.利用该活性炭处理城市生活污水处理厂出水,COD去除率可达87%以上,污泥炭的吸附等温线用Langmuir等温吸附模型进行描述.  相似文献   

18.
采用臭氧曝气法、粉末活性炭吸附法、颗粒活性炭过滤法、臭氧曝气-粉末活性炭吸附联用法、空气曝气-粉末活性炭吸附联用法对沼液中的氨气、硫化氢、吲哚、挥发酚类等主要致嗅物质的去除情况进行了研究,同时分析了不同方法对沼液中营养物质TN、DN、TP、DP等的影响。结果表明,采用粉末活性炭吸附法处理沼液,臭味物质的去除情况以及营养物质的保留效果最好,当粉末活性炭投加量为15 000 mg/L时,沼液中的硫化氢、吲哚、挥发酚已经完全去除,氨氮、氨气的去除率分别为11.42%、13.98%;DN、DP含量分别减少了10.46%、19.53%,但是TN、TP含量分别增加了6.26%、9.63%。  相似文献   

19.

Wastewater treatment plants (WWTPs) have been recognized as important sources for anthropogenic greenhouse gas (GHG) emission. The objective of the study was to thoroughly investigate a typical industrial WWTP in southern Taiwan in winter and summer which possesses the emission factors close to those reported values, with the analyses of emission factors, mass fluxes, fugacity, lab-scale in situ experiments, and impact assessment. The activated sludge was the important source in winter and summer, and nitrous oxide (N2O) was the main contributor (e.g., 57 to 91 % of total GHG emission in a unit of kg carbon dioxide-equivalent/kg chemical oxygen demand). Albeit important for the GHGs in the atmosphere, the fractional contribution of the GHG emission to the carbon or nitrogen removal in wastewater treatment was negligible (e.g., less than 1.5 %). In comparison with the sludge concentration or retention time, adjusting the aeration rate was more effective to diminish the GHG emission in the activated sludge without significantly affecting the treated water quality. When the aeration rate in the activated sludge simulation was reduced by 75 %, the mass flux of N2O could be diminished by up to 53 % (from 9.6 to 4.5 mg/m2-day). The total emission in the WWTP (including carbon dioxide, methane, and N2O) would decrease by 46 % (from 0.67 to 0.36 kg CO2-equiv/kg COD). However, the more important benefit of changing the aeration rate was lowering the energy consumption in operation of the WWTP, as the fractional contribution of pumping to the total emission from the WWTP ranged from 46 to 93 % within the range of the aeration rate tested. Under the circumstance in which reducing the burden of climate change is a global campaign, the findings provide insight regarding the GHG emission from treatment of industrial wastewater and the associated impact on the treatment performance and possible mitigation strategies by operational modifications.

  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号