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Frontiers of Environmental Science & Engineering

ISSN 2095-2201

ISSN 2095-221X(Online)

CN 10-1013/X

邮发代号 80-973

2018 Impact Factor: 3.883

Frontiers of Environmental Science & Engineering  2024, Vol. 18 Issue (11): 138   https://doi.org/10.1007/s11783-024-1898-y
  本期目录
Three-dimensional electro-Fenton system with iron-carbon packing as a particle electrode for nitrobenzene wastewater treatment
Baoshan Wang1(), Peiyu Zhao1, Xiaona Zhang2, Yang Zhang1, Yingming Liu1
1. School of Environmental and Municipal Engineering, Lanzhou Jiaotong University, Lanzhou 730070, China
2. Lanzhou Institute of Industrial Research, Lanzhou 730070, China
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Abstract

● A novel 3D electro-Fenton method was developed to treat nitrobenzene wastewater.

● Electrochemical oxidation combined with Fenton improves degradation efficiency.

● The new method is cost-effective and produces less sludge than conventional Fenton.

Traditional Fenton oxidation is an effective method for reducing pollutants that are difficult to degrade. Owing to the large amounts of Fe(II), acids, and alkalis added in the reaction, large amounts of Fenton sludge are produced, increasing treatment costs and restricting the method’s application. In this study, we developed a three-dimensional electro-Fenton system by adding iron-carbon filler and investigated the effects of different electrolytic cell structure arrangements, particle electrode dosages, sponge iron (SI) to granular activated carbon (GAC) dosage ratios, current densities, H2O2 dosages, and cathodic aeration on nitrobenzene (NB) wastewater treatment. The optimal system conditions were a particle electrode dosage of 100 g/L, SI:GAC mass ratio of 3:1, current density of 30 mA/cm2, H2O2 dosage of 50 mmol/L, cathodic aeration of 0.8 L/min, and hydraulic retention time of 120 min. The average NB removal rate and chemical oxygen demand reached 67.38%±1.05% and 70.60%±1.15%, respectively, for which the increase in Fenton sludge was 891.8 mg/L. Different from the traditional Fenton process, additional Fe(II) was not required in the process used herein, reducing iron sludge accumulation and lowering the operating costs of using Fenton sludge as a hazardous waste treatment. In addition, the process applied in this study was able to reduce the chemical amounts used and increase the treatment efficiency. The reductions in sludge treatment costs and secondary pollutants make the proposed process an efficient and sustainable alternative for treating NB wastewater.

Key wordsElectro-Fenton process    Iron-carbon packing    Fenton sludge    Highly concentrated nitrobenzene wastewater
收稿日期: 2024-03-26      出版日期: 2024-09-13
Corresponding Author(s): Baoshan Wang   
 引用本文:   
. [J]. Frontiers of Environmental Science & Engineering, 2024, 18(11): 138.
Baoshan Wang, Peiyu Zhao, Xiaona Zhang, Yang Zhang, Yingming Liu. Three-dimensional electro-Fenton system with iron-carbon packing as a particle electrode for nitrobenzene wastewater treatment. Front. Environ. Sci. Eng., 2024, 18(11): 138.
 链接本文:  
https://academic.hep.com.cn/fese/CN/10.1007/s11783-024-1898-y
https://academic.hep.com.cn/fese/CN/Y2024/V18/I11/138
Parameter Value
CODa) (mg/L) 4750.96–5068.56
Nitrobenzene (mg/L) 90.15–129.18
Aniline (mg/L) 50.37–129.28
pH 6.0–7.5
TDSb) 22000±1000
Tab.1  
Fig.1  
Fig.2  
Fig.3  
Fig.4  
Fig.5  
Sample 3DEF influent (μg/L) 3DEF effluent (μg/L) Removal (%)
Aminobenzene 70790.9 28.32 99.96
2-Nitroaniline 8049.1 36.05 99.55
3-Nitroaniline 39419.9 551.68 98.6
Nitrobenzene (mono- + dinitro) 94870 30940 67.38
Tab.2  
Fig.6  
Fig.7  
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