化学
脱水
污水污泥
胞外聚合物
生物炭
稻草
环境化学
生态毒性
浸出(土壤学)
生物利用度
活性污泥
制浆造纸工业
污水处理
废物管理
环境工程
环境科学
土壤水分
毒性
热解
有机化学
无机化学
生物
细菌
工程类
遗传学
生物信息学
岩土工程
生物膜
土壤科学
作者
He Li,Jiaao Chen,Jiaxing Zhang,Tenglong Dai,Yi Han,Fangyuan Chen,Min Zhou,Haobo Hou
标识
DOI:10.1016/j.jenvman.2022.115210
摘要
In this study, Fe-rich biochar (RMRS-BC) was prepared from red mud and reed straw to improve sludge dewatering and transformation of heavy metals (HMs, including Cd, Cr, Cu, Pb, and Zn). The optimal concentrations of RMRS-BC, Fe2+, and H2O2 to promote sludge dewaterability were identified by response surface methodology (RSM). The optimal dosages of RMRS-BC, Fe2+, and H2O2 were 74.0, 104.9, and 75.7 mg/g dry solids (DS), respectively. The corresponding capillary suction time (CST) and water content of sludge cake were 14.3 s and 51.25 wt%. For the improvement mechanism, heterogeneous and homogeneous Fenton reactions occurred due to RMRS-BC and Fe2+ activating H2O2. The extracellular polymeric substances (EPS) decomposed into dissolved organic matter (proteins and polysaccharides), thereby promoting the transformation of bound water to free water and further reducing the water content of the sludge cake. The research quantitatively assessed the environmental risk of heavy metals in the conditioned sludge cake based on bioavailability and ecotoxicity, pollution levels and potential ecological risks. Compound conditioning using RMRS-BC, Fe2+, and H2O2 could significantly improve the solubility and reduce the leaching toxicity of HMs. In general, RMRS-BC combined with Fe2+ to activate H2O2 provided an effective method to enhance sludge dewaterability and reduce HMs risk.
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