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1.
采用粘结剂聚乙烯醇(PVA)、造孔剂碳酸氢钠(NaHCO3)和微波强化Al改性膨润土(以下简称M-Al-Bt)制备改性膨润土颗粒(以下简称MBG),研究MBG对微污染水中有机物和氨氮(NH4-N)的吸附效果,考察了不同投加量、反应时间、pH值对腐殖酸(HA)和NH4-N的去除效果影响.结果表明,投加量3 g/L,反应时间20 min,pH =7时,MBG对微污染水中20 mg/L HA和5mg/L NH4-N的去除率分别可达98%和20%以上.HA和NH4-N共存时,存在竞争吸附,HA影响了MBG对NH4-N的去除.  相似文献   

2.
采用掺Al-TiO2作为改性剂制备改性膨润土,考察了微波辐射功率、辐射时间、TiO2改性剂用量、铝盐掺杂量、pH值对微污染水中COD和NH4-N去除效果的影响。实验表明,微波辐射功率为460 W,辐射时间为8 min,TiO2改性剂用量为1.3 mmol/g,铝盐掺杂量为0.2 mmol/g为最佳制备条件。pH值为6.0,改性膨润土投加量为40 mg/L,沉淀时间为30min时,对微污染水中初始浓度15 mg/L的COD和5 mg/L的NH4-N去除率分别达到92%和59%以上。  相似文献   

3.
垃圾渗滤液是一种成分复杂、毒性较强且难处理的废水之一。实验采用混凝沉淀-厌氧-电解-好氧一体化组合工艺处理垃圾渗滤液,探索了混凝沉淀池和电解池的运行参数对垃圾渗滤液处理效果的影响,并分析了组合工艺对于6种重金属(Cu、Zn、Cd、Cr和Ni)的去除效果。实验结果表明,以PAC为混凝剂PAM为助凝剂时,投加量分别为1.2 g/L和1mg/L,COD去除率可达57%。电化学工艺阶段,在p H为6.0,电流密度15 m A/cm2,Cl-浓度2 200~2 400 mg/L,电解2.5h,垃圾渗滤液的COD去除率达55.4%。一体化电生物滤池对于重金属的去除具有明显的效果,Cu、Cd和Zn去除率达100%,Ni去除率超过90%,Cr去除率超过80%,COD整体去除率达94%;NH+4-N去除率达97.2%;TN去除率达73.6%。混凝沉淀-厌氧-电化学-好氧的组合工艺来处理垃圾渗滤液,能够有效地去除水体中的重金属及COD、NH+4-N。  相似文献   

4.
为快速去除富营养化水体中的磷和藻类,制备了絮凝剂-镧复合改性膨润土(聚合氯化铝铁-镧复合改性膨润土(PAFC-La)、聚合硫酸铝-镧复合改性膨润土(PAS-La)、聚合硫酸铁-镧复合改性膨润土(PFS-La)、聚合氯化铝-镧复合改性膨润土(PAC-La)),对材料进行表征,通过吸附动力学和等温吸附模型比较4种复合改性膨润土的除磷性能,并探究投药量和pH对复合改性膨润土除磷除藻的影响。结果表明,4种材料吸附磷的过程均能由准二级动力学模型和Langmuir等温吸附模型描述。其中,PAC-La的磷吸附容量最大(44.677 mg/g);投药量为300 mg/L时,总磷(TP)去除率最高的是PAC-La(94.1%),叶绿素a(Chla)去除率最高的是PFS-La(78.2%);在pH为5~10时,PAC-La除磷除藻效果受pH影响最小。实验结果表明,采用絮凝剂-镧复合改性膨润土能够同步去除富营养化水体中的磷和藻类,尤其是采用PAC-La性能最优。  相似文献   

5.
AS-SMBR工艺处理垃圾渗滤液实验研究   总被引:2,自引:0,他引:2  
采用AS-SMBR工艺处理城市生活垃圾填埋场渗滤液,选择DO 2~4 mg/L、HRT50~60 h,在常温环境下运行结果表明:AS-SMBR工艺对垃圾渗滤液中COD和氨氮具有高效的去除效果,COD总去除率在50%~60%,NH3-N去除效率在95%以上;COD和NH3-N运行负荷分别为0.2~0.3 kg COD/(kg MLSS.d)和0.06~0.18 g NH3-N/(g MLSS.d);垃圾渗滤液生化系统对大分子物质的降解程度对膜去除效率有重要影响,两者对COD去除效率呈现波浪式交替变化。  相似文献   

6.
在静态水培实验条件下,对不同浓度垃圾渗滤液条件下凤眼莲的生长状况及其净化效果进行了研究。结果表明,在高浓度(COD 3 546.7 mg/L、NH3-N 527.5 mg/L、TP 8.02 mg/L)垃圾渗滤液条件下(HCL)凤眼莲全部被毒害致死,在中浓度(COD 1 233.3 mg/L、NH3-N 182.9 mg/L、TP 2.83 mg/L)垃圾渗滤液条件下(MCL)生长状况差,生物量减少为实验前的32.6%。在低浓度(COD 660.0 mg/L、NH3-N 99.7 mg/L、TP 1.59 mg/L)垃圾渗滤液条件下(LCL)能够正常生长,且对低浓度垃圾渗滤液有较好的净化效果。24 d后COD、NH3-N和TP的去除率分别为85.9%,99.8%和84.8%。COD与NH3-N均达到《生活垃圾填埋场污染控制标准(GB16889-2008)》排放标准,TP达到《地表水环境质量标准(GB 3838-2002)》Ⅳ类排放标准。  相似文献   

7.
在静态水培实验条件下,对不同浓度垃圾渗滤液条件下凤眼莲的生长状况及其净化效果进行了研究。结果表明,在高浓度(COD 3 546.7 mg/L、NH3-N 527.5 mg/L、TP 8.02 mg/L)垃圾渗滤液条件下(HCL)凤眼莲全部被毒害致死,在中浓度(COD 1 233.3 mg/L、NH3-N 182.9 mg/L、TP 2.83 mg/L)垃圾渗滤液条件下(MCL)生长状况差,生物量减少为实验前的32.6%。在低浓度(COD 660.0 mg/L、NH3-N 99.7 mg/L、TP 1.59 mg/L)垃圾渗滤液条件下(LCL)能够正常生长,且对低浓度垃圾渗滤液有较好的净化效果。24 d后COD、NH3-N和TP的去除率分别为85.9%,99.8%和84.8%。COD与NH3-N均达到《生活垃圾填埋场污染控制标准(GB16889-2008)》排放标准,TP达到《地表水环境质量标准(GB 3838-2002)》Ⅳ类排放标准。  相似文献   

8.
通过实地钻取阿苏卫填埋场陈腐垃圾,真实模拟填埋场压实工艺,制作2种不同压实密度的陈腐垃圾模拟柱,对比研究其对渗滤液COD、NH3-N处理效果。结果表明,当模拟柱压实密度为1.09 t/m3时,渗滤液垂直运动明显;回灌此模拟柱水力负荷分别为18.6、28、37.2和46.5 L/t时,COD去除效果稳定,平均去除率达82.4%,最高去除率可达90.1%;出水NH3-N浓度均值为549.3 mg/L,且介于415~700 mg/L间变化。自循环回灌COD去除率最高仅为11.5%,NH3-N去除率最高仅为11.8%,两者去除效果不明显。因此,北方平原型填埋场进一步完善填埋工艺,使填埋场垂直方向渗透系数分布均匀,充分利用陈腐垃圾堆体的自降解能力,才是处理渗滤液污染的关键。  相似文献   

9.
为研究建筑废物红砖和工业废物煤渣用作人工湿地脱氮基质的可行性,分别通过静态吸附实验和动态NH+4-N去除效果实验进行考察。结果表明,红砖和煤渣对NH+4-N最大静态吸附量分别为0.2533 mg/g和0.0533 mg/g,其吸附等温曲线均符合Freundlich型吸附方程,吸附常数分别为0.0419和0.0091;红砖煤渣组合对污水中NH+4-N平均动态脱除率达到41.18%,高于红砖的37.63%和煤渣的30.92%。  相似文献   

10.
庄雯  罗建中 《环境工程学报》2013,7(5):1797-1802
为减轻和消除含高浓度KMnO4的牛仔服加工废水对生物处理系统的毒害作用,采用模拟序批式活性污泥法,研究KMnO4对活性污泥微生物生长的影响及COD和NH4+-N的降解规律。结果表明,当处理进水COD浓度500 mg/L,NH4+-N浓度23.5 mg/L,污泥浓度为2 000 mg/L时,曝气时间为4 h,KMnO4质量浓度增加对COD和NH4+-N的降解影响很大;同样条件下曝气时间改为8 h,对NH4+-N的降解影响显著减小,但对COD的降解影响减少不多;并且,高浓度KMnO4对NH4+-N去除效果的抑制作用比对COD的大。因此,处理含高浓度KMnO4的废水需要延长一倍曝气时间,可以获得良好的COD和NH4+-N的降解效果。同时,KMnO4对活性污泥的抑制影响较好地吻合非竞争性抑制机理修正莫若特方程的规律。  相似文献   

11.
Leachate samples with a high strength of ammonium-nitrogen (NH4+-N) were collected from a local landfill site in Hong Kong. Two experiments were carried out to study (1) the inhibition of microbial activity of activated sludge by NH4+-N and (2) the chemical precipitation of NH4+-N from leachate as a preliminary treatment prior to the activated sludge process. The experimental results demonstrated that the efficiency of COD removal decreased from 97.7% to 78.1%, and the dehydrogenase activity of activated sludge decreased from 9.29 to 4.93 microg TF/mg MLSS, respectively, when the NH4+-N concentration increased from 53 to 800 mg/l. The experiment also demonstrated that the NH4+-N in the leachate can be quickly precipitated as MgNH4PO4 x 6H2O after addition of MgCl2 x 6H2O + Na2HPO4 x 12H2O. The NH4+-N concentration was reduced from 5618 to 112 mg/l within 15 min when a molar ratio of Mg2+:NH+:PO4(3-) = 1:1:1 was used. The optimum pH to reach the minimum solubility of MgNH4PO4 x 6H2O was found to be in the range of 8.5-9.0. Attention should be given to the high salinity formed in the treated leachate by using MgCl2 x 6H2O + Na2HPO4 x 12H2O, which may affect microbial activity in the following biological treatment processes. Using two other combinations of chemicals [MgO + 85%H3PO4 and Ca(H2PO4)2 x H2O + MgSO4 x 7H2O] could minimise salinity generation after precipitation, while they were less efficient for NH4+-N removal.  相似文献   

12.
The removal capacity of carbon and nitrogen from an artificial leachate was evaluated by using laboratory-scale columns, and a design was proposed to remove nitrogen more efficiently from a semiaerobic landfill. Five columns (i.e., two artificial municipal waste columns under anaerobic and semiaerobic conditions, an artificial construction waste column under semiaerobic conditions, and two crushed stone columns under anaerobic and semiaerobic conditions) were used. The influent load rates of organics [g chemical oxygen demand (COD)/m3 x day], NH4+, NO3- and aeration conditions for the columns were varied, and the removal capacities of the columns for COD, NH4+-N, and NO3--N were measured. Among the packed column materials, crushed stone was shown to be most effective in removing COD, NH4+ N, and NO3--N from artificial leachate. Average removal rates of crushed column under the semiaerobic condition (column D) for COD and NH4+-N were estimated at about 150 g COD/m3 x day and 20 g COD/m3 x day, while those of crushed column under anaerobic condition (column E) for COD and NO3--N at about 400 and 150 g COD/m3 x day, respectively. It also was found that denitrification and nitrification reactions in column D occurred at the same time, and the ratio of denitrification to nitrification was estimated to be about 80%. Therefore, an anaerobic structure, which could be attached to the bottom of a main pipe in a semiaerobic landfill, is suggested to remove nitrogen and organic substances more effectively.  相似文献   

13.
以传统卫生填埋柱R2为对照,通过往生物反应器填埋柱R1内加载可渗透反应介质层1和2进行模拟试验,主要探讨了填埋柱R1垃圾渗滤液COD、总氮、氨氮及总磷的变化趋势,探索一种新型的加载介质层垃圾填埋处理方法。试验结果表明,填埋20周后, R1柱COD浓度基本维持在40 000~45 000 mg/L间,约为R2柱的20%~30%;第24周,R1柱总氮和氨氮分别为206.5 mg/L和167.3 mg/L,在16~24周内,R1总氮和氨氮分别约为R2的14.5%~17.5%和36.2%~43.6%;18周时,R1柱总磷达最大值1.704 mg/L,至第24周降为0.673 mg/L, 整个实验过程R1柱总磷约为R2的0.15%~0.56%。  相似文献   

14.
改性钢渣吸附氨氮和磷的特性研究   总被引:5,自引:0,他引:5  
利用钢渣与氢氧化铝以4∶3质量配比混合,在700℃下进行2 h煅烧,得到改性钢渣。通过批次吸附实验,研究了改性钢渣在不同初始pH值、振荡时间和温度下对水溶液中氨氮和磷酸根的吸附情况,进而分析了改性钢渣对氨氮和磷酸根的吸附等温线、热力学和动力学特性。结果表明,改性钢渣脱氮除磷能力比原钢渣显著增强,且最适pH值为4~8。改性沸石对氨氮和磷酸盐的吸附均符合Langmuir等温吸附方程,氨氮(以N计)最大吸附量在10、20和30℃下分别为1.67、2.59和3.24 mg/g,磷酸根(以P计)的最大吸附量在10、20和30℃下分别为1.02、1.19和1.37 mg/g。热力学参数ΔG0、ΔH0和ΔS0表明,该吸附是一个自发、吸热、熵增型反应过程,且磷的吸附是化学吸附为主,氨氮的吸附是以离子交换吸附和物理吸附为主。改性钢渣对磷和氨氮的吸附动力学符合伪二级方程(R2>0.999)。  相似文献   

15.
Coal bottom ashes produced from three thermal power plants were used in column and batch experiments to investigate the adsorption capacity of the coal ash. Hydrogen sulfide and leachates collected from three sanitary landfill sites were used as adsorbate gas and solutions, respectively. Experimental results showed that coal bottom ash could remove H2S from waste gas or reduce the concentrations of various pollutants in the leachate. Each gram of bottom ash could remove up to 10.5 mg of H2S. In treating the landfill leachate, increasing ash dosage increased the removal efficiency but decreased the adsorption amount per unit mass of ash. For these tested ashes, the removal efficiencies of chemical oxygen demand (COD), NH3-N, total Kjeldhal nitrogen (TKN), P, Fe3+, Mn2+, and Zn2+ were 36.4-50, 24.2-39.4, 27.0-31.1, 82.2-92.9, 93.8-96.5, 93.7-95.4, and 80.5-82.2%, respectively; the highest adsorption capacities for those parameters were 3.5-5.6, 0.22-0.63, 0.36-0.45, 0.027-0.034, 0.050-0.053, 0.029-0.032, and 0.006 mg/g of bottom ash, respectively. The adsorption of pollutants in the leachate conformed to Freundlich's adsorption model.  相似文献   

16.
Animal wastes are a major contributor of nutrients and enteric microorganisms to surface water and ground water. Polyacrylamide (PAM) mixtures are an effective flocculent, and we hypothesized that they would reduce transport of microorganisms in flowing water. After waste water running at 60.0 1 min(-1) flowed over PAM + Al2(SO4)3, or PAM + CaO in furrows, total coliform bacteria (TC) and fecal coliform bacteria (FC) were reduced by 30-50% at 1 and 50 m downstream of the treatments compared to the control. In a column study, PAM + Al2(SO4)3, and PAM + CaO applied to sandy, sandy loam, loam, and clay soils reduced NH4+ and ortho-P concentrations in leachate compared to the source waste water and the control. PAM + Al2(SO4)3 and PAM + CaO applied to sandy, sandy loam and loam soils reduced both total and ortho-P, concentrations in leachate compared to he source wastewater and control treatment. In a field study, PAM + Al2(SO4)3, or PAM + CaO treatments did not consistently reduce NH4+, NO3-, ortho-P, and total P concentrations in wastewater flowing over any soil compared to inflow wastewater or the control treatment. With proper application PAM + Al2(SO4)3 and PAM + CaO may be able to reduce the numbers of enteric bacteria in slowly flowing wastewater running off animal confinement areas, reducing the amount of pollutants entering surface water and groundwater.  相似文献   

17.
超声波-TiO_2光催化联合处理垃圾渗滤液   总被引:4,自引:0,他引:4  
采用超声波强化TiO2光催化技术处理垃圾渗滤液。研究了TiO2催化剂用量、光照作用、超声波作用、pH值、曝气作用等因素对垃圾渗滤液中COD和氨氮去除率的影响。结果表明,在TiO2粉末的投加量为2 g/L、pH值为11时,先采用功率为292.5 W的超声波辐射3 min,再以高压汞灯(250 W)照射3 min,垃圾渗滤液中的COD和NH3-N去除率分别达到50.1%和75%。若在同一条件下进行饱和曝气可以使NH3-N去除率进一步达到85.3%,但会降低COD的去除率。  相似文献   

18.
以稳定渗滤液为处理对象,通过对其在山谷型填埋场覆盖层进行亚表面灌溉,研究了不同植被条件下植物的适应性、渗滤液水量削减负荷、COD和氨氮的去除率,以及灌溉对大气环境的影响。研究表明:夹竹桃是最适合进行渗滤液灌溉处理的植被;高羊茅作为草本植物,可作为夹竹桃的替代,也可与夹竹桃复种,形成双层植被;在渗滤液灌溉水力负荷为6mm/d、COD平均值为890mg/L、氨氮平均值为240mg/L的情况下,各灌溉区灌溉水量可削减50%~80%,COD平均去除率在90%以上,氨氮平均去除率在96%以上。  相似文献   

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