Kong Wang-sheng, Liu Yan
Department of Environmental Science and Engineering, Fudan University, Shanghai 200433, China.
Huan Jing Ke Xue. 2007 Dec;28(12):2716-21.
This paper investigated the adsorption of a dye, acid turquoise blue A, by four kinds of sludges including activated sludge, anaerobic sludge, dried activated sludge, and dried anaerobic sludge, respectively. The roles of extracellular polymeric substances (EPS) including the soluble EPS (SEPS) and bound EPS (BEPS) for the biosorption of activated sludge and anaerobic sludge were further studied. Results show that the relation between four kinds of sludge adsorption amount and remained concentration of the dye fitted well both Freundlich model (R2: 0.921-0.995) and Langmuir model (R2: 0.958-0.993), but not quite fitted BET model (R2: 0.07-0.863). The adsorption capability of dried anaerobic sludge ranked the highest, and dried activated sludge was the lowest. According to Langmuir isotherm, the maximum adsorption amount of dried anaerobic, anaerobic, activated, and dried activated sludge was 104 mg/g, 86 mg/g, 65 mg/g, 20 mg/g, respectively. The amount of the dye found in EPS for both activated sludge and anaerobic sludge were over 50%, illustrating that EPS adsorption was predominant in adsorption of the dye by sludge. The amount of adsorbed dye by BEPS was greater than that by SEPS for anaerobic sludge, but for activated sludge the result was quite opposite. The amount of adsorbed dye by unit mass SEPS was much higher than the corresponding values of BEPS for both sludges. The average amount of adsorbed dye by unit mass SEPS was 52 times of the corresponding value of BEPS for activated sludge, and 10 times for anaerobic sludge. The relation between adsorption amount of dye by BEPS from anaerobic sludge and remained concentration of the dye in mixed liquor was best fitted to Langmuir model (R2: 0.9986).
本文分别研究了活性污泥、厌氧污泥、干活性污泥和干厌氧污泥这四种污泥对酸性翠蓝A染料的吸附作用。进一步研究了包括可溶性胞外聚合物(SEPS)和结合态胞外聚合物(BEPS)在内的胞外聚合物(EPS)在活性污泥和厌氧污泥生物吸附中的作用。结果表明,四种污泥对染料的吸附量与染料残留浓度之间的关系,弗伦德里希模型(R²:0.921 - 0.995)和朗缪尔模型(R²:0.958 - 0.993)拟合效果良好,但与BET模型(R²:0.07 - 0.863)拟合效果不佳。干厌氧污泥的吸附能力最强,干活性污泥的吸附能力最弱。根据朗缪尔等温线,干厌氧污泥、厌氧污泥、活性污泥和干活性污泥对染料的最大吸附量分别为104 mg/g、86 mg/g、65 mg/g、20 mg/g。活性污泥和厌氧污泥中EPS对染料的吸附量均超过50%,说明EPS吸附在污泥对染料的吸附中占主导地位。对于厌氧污泥,BEPS对染料的吸附量大于SEPS,但对于活性污泥,结果相反。两种污泥中单位质量SEPS对染料的吸附量远高于相应的BEPS值。活性污泥中单位质量SEPS对染料的平均吸附量是相应BEPS值的52倍,厌氧污泥是10倍。厌氧污泥中BEPS对染料的吸附量与混合液中染料残留浓度之间的关系最符合朗缪尔模型(R²:0.9986)。