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 共查询到17条相似文献,搜索用时 93 毫秒
1.
陈良杰  王京刚 《化工环保》2007,27(5):409-412
采用kc-4.0型颗粒活性炭对甲苯、对二甲苯、乙酸甲酯、乙酸乙酯、乙醇、正丙醇进行吸附实验,研究挥发性有机物的物化性质与活性炭饱和吸附量之间的相关性。实验结果表明,活性炭对乙酸甲酯、乙醇和正丙醇的吸附性能较差,对乙酸乙酯、甲苯和对二甲苯的的吸附性能较好,饱和吸附量最大的是甲苯(达312.92mg/g),饱和吸附量最小的是乙酸甲酯(为224.93mg/g)。6种挥发性有机物的吸附等温线用Langmuir方程进行拟合,效果良好。挥发性有机物的比蒸发速度、饱和蒸气压和电离势能与活性炭饱和吸附量具有显著的相关性。比蒸发速度越快、饱和蒸气压越高或电离势能越大,活性炭饱和吸附量越小。  相似文献   

2.
以活性炭为载体负载溶液中的Cu^2+,Cu^2+改性活性炭对溶液中CN^-的去除效果较好。cu。’改性活性炭的最佳制备条件:活性炭加入量为1g,质量浓度为5∥L的CuSO。溶液加入量为50mL,溶液pH为4,负载时间为5.0h.在此最佳条件下活性炭的最大Cu^2+负载量为25.90mg(以每克活性炭计)。Cu^2+改性后活性炭的CN^-去除率明显提高,由22.10%提高至94.07%。Cu^2+改性活性炭吸附CN^-的最佳实验条件:溶液pH为12~13,吸附时间为9h。Cu^2+改性活性炭对CN^-的饱和吸附量为22mg/g。Mg^2+,K^+,Ca^2+,Cl^-,SO4^2-,CO3^2-,AsO3^-对Cu^2+改性活性炭的CN^-去除率基本没有影响。Cu^2+改性活性炭的动态吸附实验表明,开始一段时间流出液中CN^-含量几乎为零,远低于国家排放标准(0.5mg/L)。  相似文献   

3.
吸附回收法处理甲硫醚废气   总被引:5,自引:0,他引:5  
平树水 《化工环保》2003,23(1):22-24
采用吸附回收法处理高浓度小排放量的甲硫醚废气,以活性炭不吸附剂,废气中甲硫醚的质量浓度可从处理前的151g/m^3降至0.06g/m^3,甲硫醚的去除率大于99%,处理后的废气可达标排放,将吸附饱和后的活性炭用水蒸气解吸再生,解吸得到的甲硫醚回用于生产。  相似文献   

4.
活性炭吸附分离-生物再生法处理高盐苯胺废水   总被引:3,自引:0,他引:3  
采用活性炭吸附分离-生物再生法处理高盐苯胺废水,对活性炭吸附分离效果、生物再生的影响因素及其原理和稳定性进行了考察。当NaCl质量分数为15%时,活性炭对苯胺的饱和吸附量为320~380mg/g,对NaCl的分离效率大于99%。在25℃、接种量为25%的条件下,吸附饱和的活性炭经过120h生物再生,再生效率达80%以上。该方法处理效果稳定,4次循环运行后对NaCl的分离效率和生物再生效率均无明显变化。  相似文献   

5.
用微孔填充理论研究活性炭对有机气体的吸附性能   总被引:1,自引:1,他引:1  
用微孔填充理论研究了活性炭C40/4对丙酮、甲苯、二氯甲烷有机气体的吸附性能,测试了该活性炭对3种有机气体在不同温度下(288.15,293.15,298.15K)的吸附结果。用D—R方程处理了实验数据,建立了3种有机气体在活性炭C40/4上的等温吸附模型,并将实验测试值与理论预测值进行了比较。实验结果表明:微孔填充理论及D—R方程可很好地描述活性炭C40/4对有机气体的吸附性能,理论预测值与实验测试值的平均相对误差小于3%;有机气体分压较高时,由于发生毛细凝聚,理论预测值较实验测试值偏低。  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.
微波辐照法再生载硫活性炭的研究   总被引:12,自引:1,他引:12  
用活性炭对低浓度SO2气体进行物理吸附,饱和后用微波辐照解吸。结果显示,载硫活性炭在微波场中升温很快,210s能达到温度最大值;吸附在活性炭上的S02气体在570s以后基本解吸完全;解吸产物SO2气体的体积分数最高可达25%以上;微波功率和载气量对再生后活性炭的质量损耗影响较大,在微波功率为300w和载气量为0.06m^3/h条件下,活性炭的质量损耗约为6.21%。  相似文献   

8.
氯化锌活化法制备甘蔗渣活性炭吸附剂   总被引:2,自引:0,他引:2  
采用氯化锌活化法制备了甘蔗渣活性炭吸附剂,并考察了活化剂氯化锌溶液浓度、活化温度和活化时间对吸附剂吸附性能的影响。实验结果表明,氯化锌活化法制备甘蔗渣活性炭吸附剂的最佳工艺条件为:活化温度800℃、氯化锌溶液质量浓度190g/L、活化时间60min。所得甘蔗渣活性炭吸附剂的得率为30.3%,碘吸附值为1070mg/g,亚甲基蓝吸附值(以0.1g吸附剂吸附的亚甲基蓝体积计)为15.0mL,达到了GB/T13803.2—1999《木质净水用活性炭》一级品标准(碘吸附值1000mg/g,亚甲基蓝吸附值9mL)。  相似文献   

9.
焦粉活性炭的制备及其应用   总被引:2,自引:0,他引:2  
用废弃焦粉制备焦粉活性炭,通过正交实验考察了各种因素对焦粉活性炭性能的影响。实验结果表明:在活化时间80min、活化温度900℃、碱炭比(氢氧化钾与废弃焦粉的质量比)4、废弃焦粉粒径小于0.05mm的最佳条件下,制备的焦粉活性炭的亚甲基蓝吸附值为304.8mg/g,产率为35.6%;废弃焦粉的活化是活化剂刻蚀其颗粒形成丰富孔结构的氧化还原反应过程;用最佳条件下制备的焦粉活性炭处理质量浓度为60mg/t.的模拟含Cr^6+废水,在废水pH为3—4、焦粉活性炭加入量为4g/L、吸附时间为50min的条件下,Cr^6+去除率达93.2%。  相似文献   

10.
用活性炭纤维处理炼油厂环烷酸中和废水的研究   总被引:4,自引:0,他引:4  
肖月竹  赵光 《化工环保》1992,12(2):70-74
探讨了活性炭纤维对炼油厂环烷酸中和废水处理的可行性;研究了用活性炭纤维从废水中吸附浓集有机物使废水得以净化的规律。在进水pH1、COD_(cr)5000毫克/升条件下,用活性炭纤维一次性处理,可使出水指标达到国家排放标准。吸附饱和的活性炭纤维以热空气及过热蒸汽混合脱附后,可循环使用。  相似文献   

11.
Adsorption studies for phenol removal from aqueous solution on activated palm seed coat carbon (PSCC) were carried out under varying experimental conditions of contact time, phenol concentration, adsorbent dose and pH. Adsorption equilibrium was reached within 3 h for phenolic concentrations 10-60 mg l(-1). Kinetics of adsorption obeyed a first order rate equation. The percent removal remained constant over the pH range 4-9 for a phenolic concentration of 25 mg (l-1). The equilibrium data could be described well by the Freundlich isotherm equation. The adsorption of phenol on PSCC follows the film diffusion process. A comparative study with a commercial activated carbon showed that PSCC is two times more effective than commercial activated carbon. The studies showed that the palm seed coat carbon can be used as an efficient adsorbent material for the removal of phenolics from water and wastewater.  相似文献   

12.
生物炭对铅离子的吸附性能   总被引:3,自引:0,他引:3       下载免费PDF全文
以废弃松木屑为原料,采用控制热分解法制备了生物炭。运用BET和FTIR等技术对生物炭进行了表征,考察了生物炭对铅离子的吸附效果,并探讨了吸附机理。表征结果显示,700℃氨气处理的生物炭,其比表面积和总孔体积显著增大。实验结果表明:生物炭对铅离子的吸附效果优于普通活性炭,且以700℃氨气处理的生物炭为最佳;随溶液pH的升高生物炭对铅离子的去除率增大,当pH为4~6时去除效果较好;在溶液pH为6、初始铅离子质量浓度为50 mg/L、吸附剂加入量为1 g/L、吸附时间为6 h的条件下,700℃氨气处理的生物炭对铅离子的去除率达99%以上;700℃氨气处理的生物炭的Langmuir吸附常数和Freundlich吸附常数远大于普通活性炭和其他工艺的生物炭;铅离子在生物炭上的吸附过程符合拟二级动力学方程。  相似文献   

13.
核桃壳吸附剂对水中Pb2+的吸附   总被引:1,自引:0,他引:1       下载免费PDF全文
采用自制核桃壳吸附剂,利用静态吸附法,处理模拟含Pb2+废水。实验结果表明:当初始Pb2+的质量浓度20.00 mg/L、初始废水pH=5.5、吸附剂加入量12 g/L、吸附剂粒径1.60~2.50 mm、吸附时间120 min时,核桃壳吸附剂对Pb2+的去除率为91.7%;吸附剂对Pb2+的吸附行为满足拟二级吸附动力学方程,吸附等温线满足Langmuir等温方程,饱和吸附量达到3.903 mg/g;吸附饱和的吸附剂可用浓度 0.1 mol/L的硝酸解吸,经解吸后的吸附剂可重复利用3次。  相似文献   

14.
采用过硫酸钾(KSP)氧化法对有序介孔碳FDU-15进行了改性处理,制备了羧基化改性有序介孔碳FDU-15-KSP,对其进行了表征,并将其用于典型难降解染料罗丹明B的吸附。表征结果显示:KSP氧化处理可提高介孔碳上的羧基含量,但并未破坏其二维六方有序结构。实验结果表明:与FDU-15相比,FDU-15-KSP对罗丹明B的吸附性能显著提高,常温下的饱和吸附量由136.99 mg/g提高到196.08 mg/g;吸附p H为7时吸附效果最好,经60 min吸附后吸附过程基本达到平衡,温度升高有利于吸附的进行;FDU-15-KSP对罗丹明B的吸附过程较符合Langmuir等温吸附模型,是一个自发的、吸热的熵驱动过程;FDU-15-KSP对罗丹明B的吸附行为遵循Lagergren准二级动力学方程,吸附过程以化学吸附为主。  相似文献   

15.
Biogas utilized for energy production needs to be free from organic silicon compounds, as their burning has damaging effects on turbines and engines; organic silicon compounds in the form of siloxanes can be found in biogas produced from urban wastes, due to their massive industrial use in synthetic product, such as cosmetics, detergents and paints.Siloxanes removal from biogas can be carried out by various methods (Mona, 2009, Ajhar et al., 2010, Schweigkofler and Niessner, 2001); aim of the present work is to find a single practical and economic way to drastically and simultaneously reduce both the hydrogen sulphide and the siloxanes concentration to less than 1 ppm. Some commercial activated carbons previously selected (Monteleone et al., 2011) as being effective in hydrogen sulfide up taking have been tested in an adsorption measurement apparatus, by flowing the most volatile siloxane (hexamethyldisiloxane or L2) in a nitrogen stream, typically 100–200 ppm L2 over N2, through an activated carbon powder bed; the adsorption process was analyzed by varying some experimental parameters (concentration, grain size, bed height). The best activated carbon shows an adsorption capacity of 0.1 g L2 per gram of carbon. The next thermogravimetric analysis (TGA) confirms the capacity data obtained experimentally by the breakthrough curve tests.The capacity results depend on L2 concentration. A regenerative carbon process is then carried out by heating the carbon bed up to 200 °C and flushing out the adsorbed L2 samples in a nitrogen stream in a three step heating procedure up to 200 °C. The adsorption capacity is observed to degrade after cycling the samples through several adsorption–desorption cycles.  相似文献   

16.
This paper presents the experimental research process and results about flue gas purifying of municipal solid wastes (MSW) incineration using in-pipe jet adsorption techniques. MSW incineration was carried out in a fluidized bed test rig, and the flue gas purifying was carried out in an in-pipe jet adsorption test rig. The experimental results are as follows: when the feedstock of activated carbon is 1.6g/Nm(3), the desulfurization efficiency is 83%, the denitrification efficiency is 41%, and the dechlorination efficiency is 27%. The order of purifying effect of the three kinds of adsorbents on acidic gases from MSW incineration is activated carbon>activated bauxite>kaolin. Comparison of adsorption capabilities of the three kinds of adsorbents to heavy metals shows that activated carbon is the best additive to remove Cd, Pb and Cu, kaolin is inferior, and activated bauxite is the worst one. However, activated bauxite is the best additive to remove Hg, and it can remove Cd effectively. PAHs in fly ash are dominated by three-, four-, and five-ringed PAHs, and PAHs in the flue gas mainly include three- and four-ringed PAHs. When the injected quantity of additive is constant, the order of cleaning effect on PAHs is kaolin>activated carbon>activated bauxite. These three kinds of adsorbents have different purifying effects on acidic gases, heavy metals and PAHs in the flue gas from MSW incineration. In general, activated carbon has a better adsorption capability.  相似文献   

17.
用活性炭纤维吸附处理十三吗啉农药废水的研究   总被引:15,自引:0,他引:15  
赵光  肖月竹 《化工环保》1995,15(3):131-135
介绍用活性炭纤维处理十三吗啉农药废水的工艺过程。研究了活性碳纤维对该种有机废水的吸附规律及脱附再生方法,并探索了其使用寿命。实验表明,用活性炭纤维处理十三吗啉农药废水,CODcr由2462mg/L可降至150mg/L以下,净化率达94%。  相似文献   

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