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利用太阳能光芬顿反应在活性污泥法中实现剩余污泥的溶解

Solubilization of excess sludge in activated sludge process using the solar photo-Fenton reaction.

作者信息

Tokumura M, Katoh H, Katoh T, Znad H T, Kawase Y

机构信息

Research Center for Biochemical and Environmental Engineering, Department of Applied Chemistry, Toyo University, Kawagoe, Saitama 350-8585, Japan.

出版信息

J Hazard Mater. 2009 Mar 15;162(2-3):1390-6. doi: 10.1016/j.jhazmat.2008.06.026. Epub 2008 Jun 17.

Abstract

The solubilization of excess sludge by the solar photo-Fenton reaction has been investigated for the reduction of excess sludge in the activated sludge process. The solubilization kinetics depended on the dosages of the Fenton reagents, Fe and H(2)O(2). Increases of initial Fe and H(2)O(2) concentrations in their ranges studied in this work continuously enhanced the sludge solubilization. Cell lysis by the photo-Fenton reaction caused the increase in dissolved chemical oxygen demand (COD) in the first step of sludge solubilization. The further oxidative decomposition of the discharged organic compounds by the photo-Fenton reaction led to the decrease in the dissolved COD as the second step of sludge solubilization. The increase of dissolved COD in the first step of sludge solubilization and the consumption of H(2)O(2) could be described by the pseudo-zero order kinetics based on the accumulated light energy. About 40% reduction of mixed-liquor suspended solids (MLSS) by the solar photo-Fenton reaction was found. It was found that solar light used as a light energy source instead of costly and hazardous artificial UV light was very effective. The dissolved COD for solar photo-Fenton reaction increased faster and by 1.5 times as compared with that by artificial UV light.

摘要

为了减少活性污泥法中的剩余污泥,研究了通过太阳能光芬顿反应对剩余污泥进行溶解。溶解动力学取决于芬顿试剂、铁和过氧化氢的用量。在本研究范围内,初始铁和过氧化氢浓度的增加持续增强了污泥的溶解。光芬顿反应引起的细胞裂解在污泥溶解的第一步导致溶解化学需氧量(COD)增加。光芬顿反应对排放的有机化合物的进一步氧化分解导致溶解COD减少,这是污泥溶解的第二步。污泥溶解第一步中溶解COD的增加和过氧化氢的消耗可以用基于累积光能的伪零级动力学来描述。发现太阳能光芬顿反应可使混合液悬浮固体(MLSS)减少约40%。结果表明,使用太阳光作为光源代替昂贵且有害的人工紫外光非常有效。与人工紫外光相比,太阳能光芬顿反应的溶解COD增加得更快,且增加了1.5倍。

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