首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到18条相似文献,搜索用时 93 毫秒
1.
真菌和细菌对染料吸附脱色的高效共培养体系研究   总被引:10,自引:1,他引:10  
在含有真菌G-1培养液中加入染料厂污水排放口的污泥样品,从发生快速脱色降解染料的混合培养液中分离出2株染料脱色细菌L-1和L-2,经API鉴定系统鉴定,确定菌株L-1为Enterobacter sp.,菌株L-2为Pseudomonas sp.,研究比较了单一和不同组合混合的真菌G-1菌株(Penicillium sp.),细菌L-1菌株(Enterobacter sp.)和L-2菌株(Pseudomonas sp.)对偶氮染料红M-3BE(C.I.Reactive Red 241)和蒽醌染料艳蓝KN-R(C.I.Reactive Blue 19)的去除情况,发现G-1真菌和2种细菌组合的共培养体系对50mg/L红M-3BE和艳蓝KN-R处理5h去除率达100%和97.9%,并且是以脱色降解作用为主,建立了染料脱色降解菌的最佳组合,进一步测定了此最佳共培养体系对另外13种不同结构染料的脱色降解,结果表明,除对蒽醌染料R-478脱色降解较差外,对其他染料均可在1h-3d被完全脱色降解,表现出脱色降解染料的广谱性,向培养4d的共培养体系中依次加入8种染料,菌体可对染料连续脱色,维持脱色能力达8d左右。  相似文献   

2.
在筛选到的染料吸附脱色真菌和细菌的基础上 ,测定了温度和pH值对青霉G 1吸附和与细菌共培养脱色降解染料的影响。结果表明 ,16— 36℃下青霉G 1对艳紫KN B(C .I.Re .Vi.2 2 )和黄M 3RE(C .I.Re .Ye .14 5 )的吸附去除能力受温度影响不大 ,吸附 5h去除率在 97.1%— 98.7% ,而染料的脱色时间受温度影响较大 ,2 8— 36℃下脱色速度快 .青霉G 1对pH 3— 11染料水中染料的吸附去除率高 ,达 94 .9%— 97.8% ,对pH 13的吸附去除率低 ,仅为 5 5 .4 %和 5 6 .2 % ,从pH 5—13染料水中吸附染料的菌丝在与细菌共培养 5— 2 6h即完成了对染料的脱色 ,脱色速度较快  相似文献   

3.
比较了5种真菌对染料水中染料的吸附去除和与脱色降解细菌L-1菌株(Enterobacter sp.)和L-2菌株(Pseudomonas sp.)对吸附染料的脱色降解能力;以吸附去除率和完全脱色时间综合评价,对筛选出的吸附性强并与细菌共培养时染料分子脱色降解速度快的绿曲霉为染料吸附菌,进一步测定了温度和pH值对绿曲霉吸附和与细菌共培养脱色降解活性黄M-3RE(C.I.Re.Ye.145)的影响.结果表明,温度对绿曲霉的吸附能力影响不大,在16~36 ℃下吸附5 h对活性黄M-3RE的去除率在95.1%~97.9%之间,但染料的完全脱色降解时间受温度影响较大,32~36 ℃下染料分子脱色降解较快.pH值对绿曲霉和细菌吸附、脱色降解能力均有一定影响.利用绿曲霉和细菌对印染行业中染料含量较高的染浴废水进行处理,绿曲霉可通过吸附作用快速去除废水中的染料分子,废水经绿曲霉处理5 h,色度、COD去除率分别为85.8%和56.1%,BOD/COD值由处理前的0.238提高到处理后的0.652,吸附在菌丝上的染料分子在细菌的共同作用下脱色降解.  相似文献   

4.
改进Fenton体系处理蒽醌染料的研究   总被引:1,自引:0,他引:1  
以活性艳蓝KN-R作为研究对象,用UV/Fenton和solar/Fenton/草酸(H2C O4)体系对其进行处理,对反应体系的影响因素作综合的评价.得到处理蒽醌染料废水的最佳条件:dye(活性艳蓝KN-R):Fe2 :H2O2:H2C2O4为5:1:15:1.5,pH为3.0,反应时间为40 min.在最佳条件下,solar/Fenton/H2C2O4体系脱色率达到100%,COD和TOC去除率分别达到87%和66%以上.改进的Fenton方法能使难降解有机染料迅速脱色,矿化程度较高.并对此体系处理活性艳蓝KN-R废水的脱色过程进行动力学模拟,得到此反应为拟一级反应.  相似文献   

5.
在筛选到的染料吸附脱色真菌和细菌的基础上,测定了温度和pH值对青霉G-1吸附和与细菌共培养脱色降解染料的影响。结果表明,16—36℃下青霉G-1对艳紫KN-B(C.I.Re.Vi.22)和黄M--3RE(C.I.Re.Ye.145)的吸附去除能力受温度影响不大,吸附5h去除率在97.1%--98.7%,而染料的脱色时间受温度影响较大,28—36℃下脱色速度快.青霉D1对pH3-11染料水中染料的吸附去除率高,达94.9%--97.8%,对pH13的吸附去除率低,仅为55.4%和56.2%,从pH5—13染料水中吸附染料的菌丝在与细菌共培养5—26h即完成了对染料的脱色,脱色速度较快。  相似文献   

6.
高压电晕与臭氧联用对不同结构染料脱色效果的比较研究   总被引:1,自引:0,他引:1  
比较研究了高压电晕与臭氧联用对活性艳红X-3B(单偶氮)、活性艳蓝X-BR(蒽醌)、活性黑KN-GRRC(双偶氮)、酸性红ARL(单偶氮)、酸性蓝BRL(蒽醌)、酸性橙AGT(双偶氮)和分散蓝2BLN(蒽醌)7种染料模拟废水的脱色效果.结果显示,酸性橙AGT模拟废水的脱色速度较慢,而其他6种染料在15 min内都能完全脱色,这表明染料结构本身的差异决定了脱色效果;活性染料模拟废水的脱色效果优于酸性染料;蒽醌染料和单偶氮染料模拟废水的脱色效果明显好于双偶氮染料.  相似文献   

7.
漆酶对活性艳蓝染料废水脱色   总被引:3,自引:2,他引:1  
用白腐真菌漆酶对活性艳蓝X-BR和活性艳蓝K-NR 2种活性染料进行脱色实验。研究了pH、温度、染料浓度和酶活力对脱色率的影响。结果表明,漆酶脱色的适宜条件为:反应温度45℃,pH 6~7,适宜染料浓度为50 mg/L,酶浓度5 U/mL,反应1 h两种染料脱色率可达到75%;通过正交实验确定2种染料的最佳脱色组合分别为:反应温度55℃、pH7、活性艳蓝X-BR浓度50 mg/L、酶浓度5 U/mL和反应温度55℃、pH 6、活性艳蓝K-NR浓度50 mg/L、酶浓度5 U/mL。在所得最优条件下反应1 h,活性艳蓝X-BR和活性艳蓝K-NR的脱色率分别为74.2%和78.6%;反应2 h,脱色率分别为78%和79.5%。  相似文献   

8.
采用Ti/SnO2电极间接阳极氧化法处理直接深棕M和活性艳蓝KNR模拟染料废水,研究电解质种类、pH、电压、NaCl投加量及电解时间对其降解效果的影响;在最佳组合条件下,通过分析uV—Vis光谱以及降解过程中氮元素的存在形式,研究上述2种染料的降解规律。结果表明,在pH为3,电压20V,NaCl投加量为2.5g/L的条件下,电解30min后,直接深棕M和活性艳蓝KNR的脱色率分别达到80%和95%,60min后直接深棕M的COD去除率可达75%,活性艳蓝KNR的COD去除率达到90%;电解60min后,直接深棕M的偶氮双键完全破坏,萘环和苯环结构被逐步降解,活性艳蓝KNR溶液电解2min,其分子结构中的蒽醌共轭体系被破坏,随反应的进行,蒽醌结构逐渐被破坏,染料逐步降解。  相似文献   

9.
杨波  孙也  付安然  杜丹 《环境工程学报》2014,8(4):1475-1481
采用Ti/SnO2电极间接阳极氧化法处理直接深棕M和活性艳蓝KNR模拟染料废水,研究电解质种类、pH、电压、NaCl投加量及电解时间对其降解效果的影响;在最佳组合条件下,通过分析UV-Vis光谱以及降解过程中氮元素的存在形式,研究上述2种染料的降解规律。结果表明,在pH为3,电压20 V,NaCl投加量为2.5 g/L的条件下,电解30 min后,直接深棕M和活性艳蓝KNR的脱色率分别达到80%和95%,60 min后直接深棕M的COD去除率可达75%,活性艳蓝KNR的COD去除率达到90%;电解60 min后,直接深棕M的偶氮双键完全破坏,萘环和苯环结构被逐步降解,活性艳蓝KNR溶液电解2 min,其分子结构中的蒽醌共轭体系被破坏,随反应的进行,蒽醌结构逐渐被破坏,染料逐步降解。  相似文献   

10.
为了提高等离子放电对染料的降解效率,研究了Fenton-like/TiO_2耦合催化介质阻挡放电体系对活性艳蓝(X-BR)的脱色效果及降解机理。结果表明,投加Fe~(2+)或Fe~(3+)与TiO_2组成的耦合催化体系可以显著提高X-BR的脱色率。反应10 min后,紫外可见扫描光谱和阴离子(Cl~-、NO_3~-、SO_4~(2-))产量分析表明,介质阻挡放电体系可以有效破环蒽醌发色基团,耦合催化体系不仅强化了蒽醌结构的破坏,同时更加有效地破坏了苯环和萘环结构从而提高了TOC降解率。最后,比较研究了投加Mn~(2+)和Cu~(2+)对X-BR的脱色效果,在投加浓度均为0.5 mmol/L条件下,两者对X-BR的脱色起到抑制作用,因此,两者不适合作为耦合催化介质阻挡放电体系的添加离子。  相似文献   

11.
中温(35±1)℃条件下,采用上流式厌氧污泥床(upflowanaerobicsludgebed,简称UASB)反应器处理了含蒽醌类-活性艳蓝(c.I.ReactiveBlue5,简称K—GR)或偶氮类-活性艳红(C.I.ReactiveRed20,简称KD-8B;C.I.ReactiveRed2,简称X-3B)模拟染料废水,重点研究了回流比对染料脱色率和COD去除率的影响,在最佳回流比的条件下,探讨HRT(hydraulicretentiontime)对脱色的影响和不同结构染料的脱色效果,并初步分析了脱色机理。结果表明,适宜的回流比有利于提高系统的脱色率;控制回流比和HRT分别为2和24h,当模拟废水中染料的浓度为100mg/L时,COD去除率和脱色率分别为90%~96%和85%~92%;蒽醌和偶氮类染料的脱色是通过偶氮键和葸醌共轭结构的断裂来实现的。  相似文献   

12.
利用青霉菌P 1(Penicilliumsp )对 2种染浴废水中的染料进行吸附去除 ,研究结果表明 ,吸附处理 3h ,黑色和红色染浴废水色度基本被去除 ,去除率分别达 98 0 %和 74 5 % ,但去色处理后废水的CODCr值仍偏高。对去除色度的废水进一步用活性污泥进行深度处理 ,黑色和红色废水的CODCr去除率分别为 75 9%和 89 7%。青霉菌菌丝通过吸附作用从废水中抽提出的染料分子在有染料降解细菌L 1和L 2的降解池中脱色降解 ,菌丝吸附脱色能力得到再生。  相似文献   

13.
Toxicity of two azo dyes (Reactive Orange 16 (RO16); Congo Red (CR)) and two anthraquinone dyes (Remazol Brilliant Blue R (RBBR); Disperse Blue 3 (DB3)) were compared using bacterium Vibrio fischeri, microalga Selenastrum capricornutum and ciliate Tetrahymena pyriformis. The following respective endpoints were involved: acute toxicity measured as bacterial luminescence inhibition, algal growth inhibition, and the effects on the protozoa including viability, growth inhibition, grazing effect and morphometric effects. In addition, mutagenicity of the dyes was determined using Ames test with bacterium Salmonella typhimurium His(-). DB3 dye was the most toxic of all dyes in the bacterial, algal and protozoan tests. In contrast to other dyes, DB3 exhibited mutagenic effects after metabolic activation in vitro in all S. typhimurium strains used. Of the methods applied, the algal test was the most sensitive to evaluate toxicity of the dyes tested.  相似文献   

14.
Decolorization of synthetic dyes using a copper complex with glucaric acid   总被引:1,自引:0,他引:1  
Selected azo, acridine, triphenyl methane, anthraquinone and thiazine-based dyes were decolorized using a catalytic system consisting of Cu(II)/glucaric acid/H(2)O(2). More than 90% decolorization was obtained with 100 ppm Acridine Orange, Azure B, Chicago Sky Blue, Crystal Violet, Methyl Orange, Poly B-411, Reactive Black 5, Reactive Blue 2, and Remazol Brilliant Blue R within 24 h. Seventy to eighty percent decolorization was achieved within the first 6 h. The decolorizaton was not affected by pH. The involvement of hydroxyl radicals produced in the system in the decolorization of the dye molecules was confirmed by electron spin resonance study.  相似文献   

15.
The decolorization of two anthraquinone dyes (Reactive Blue 4 [RB4] and Reactive Blue 19 [RB19]) and two phthalocyanine dyes (Reactive Blue 7 [RB7] and Reactive Blue 21 [RB21]) was investigated at an initial dye concentration of 300 mg/L using an unacclimated, enrichment culture. The culture was fed a mixture of organic compounds and maintained initially under aerobic conditions, and then progressively developed anoxic/ anaerobic conditions. Biotransformation-related decolorization of the dyes did not take place under aerobic conditions, but use of the feed organic mixture and biomass production by the enrichment culture were not affected. Complete ammonia removal occurred in the control and all dye-amended cultures. The development and extent of nitrification were much lower in the latter cultures, in which ammonia removal via air stripping was the dominant mechanism. Prolonged incubation of the culture under anoxic/anaerobic conditions with multiple carbon source additions resulted in a high decolorization extent of anthraquinone dyes (over 84%) and only partial decolorization of phthalocyanine dyes (49 to 66%). Development of significant methanogenic activity took place in the control and, to a lesser extent, in the two phthalocyanine dye-amended cultures, but the anthraquinone dyes severely inhibited the development of methanogenic activity. The RB4 and RB19 decolorization was attributed to nonreversible, microbially mediated dye transformation(s), demonstrated by the accumulation of decolorization products with absorbance maxima in the 420- to 460-nm region. The decolorization of RB4 and RB19 followed Michaelis-Menten kinetics. At an initial dye concentration of 300 mg/L, the observed maximum decolorization rate per unit biomass was 9.1 and 37.5 mg dye/mg volatile suspended solids x day for the RB4 and RB19, respectively. Thus, partial decolorization of reactive phthalocyanine dyes and extensive biological decolorization of reactive anthraquinone dyes is feasible only under anoxic/anaerobic conditions.  相似文献   

16.
In this study, advanced oxidation process utilizing Fenton's reaction was investigated for the decolorization and degradation of two commercial dyes viz., Red M5B, Blue MR and H-acid, a dye intermediate used in chemical industries for the synthesis of direct, reactive and azo dyes. Effect of Fe2 +, H2O2, pH, and contact time on the degradation of the dyes was studied. Maximum color and COD removal was obtained for Red MSB, H-acid and Blue MR at 10-25 mg/l of Fe2+ dose and 400-500 mg/l of H2O2 dose at pH 3.0. The initial oxidation reaction was found to fit into first order rate kinetics and the rate of oxidation of H-acid was higher than the other dyes. Release of chloride and sulfate from the Fenton's treated Red M5B dye and sulfate from H-acid and Blue MR indicates that the dye degradation proceeds through cleavage of the substituent group.  相似文献   

17.
This study investigated the degradation of anthraquinone reactive dye C.I. Reactive Blue 19 (RB-19) with initial concentration of 100 mg L−1 in aqueous solution by ozone oxidation. The results of UV/VIS and FTIR spectra showed that the anthraquinone structures, nitrogen linkages and amino groups of RB-19 were destroyed under direct ozone reaction. The identification by LC–MS and GC–MS analyses indicated that some organic acids (e.g., phthalic acids) and 1,3-indanone could be the primary degradation products, respectively. The Microtox toxicity of the ozonated RB-19 solution initially increased but subsequently decreased when ozonation time increased. This detoxification accompanied biodegradability enhancement revealed by BOD/COD ratio increasing from 0.15 to 0.33 after 10 min of ozonation.  相似文献   

18.
We tried to decolorize mixtures of four reactive textile dyes, including azo and anthraquinone dyes, by a white-rot basidiomycete Phanerochaete sordida. P. sordida decolorized dye mixtures (200 mg l-1 each) by 90% within 48 h in nitrogen-limited glucose-ammonium media. Decolorization of dye mixtures needed Mn2+ and Tween 80 in the media. Manganese peroxidase (MnP) played a major role in dye decolorization by P. sordida. Decolorization of dye mixtures by P. sordida was partially inhibited by polyvinyl alcohol (PVA) that wastewaters from textile industries often contain. This was caused by an inhibitory effect of PVA on the decolorization of Reactive Red 120 (RR120) with MnP reaction system. Second addition of Tween 80 to the reaction mixtures in the presence of PVA improved the decolorization of RR120. These results suggest that PVA could interfere with lipid peroxidation or subsequent attack to the dye.  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