Efficiency of integrated electrooxidation and anaerobic digestion of waste activated sludge

被引:13
|
作者
Barrios, J. A. [1 ]
Cano, A. [1 ]
Rivera, F. F. [2 ]
Cisneros, M. E. [1 ]
Duran, U. [1 ]
机构
[1] Univ Nacl Autonoma Mexico, Inst Ingn, POB 70-186, Mexico City 04510, DF, Mexico
[2] CONACYT Ctr Invest & Desarrollo Tecno Electroquim, Parque Tecnol Queretaro S-N, Mexico City 76703, DF, Mexico
关键词
Anaerobic digestion; Waste activated sludge; Pre-treatment; Electrooxidation; Energy analysis; ELECTROCHEMICAL OXIDATION; SEWAGE-SLUDGE; TREATMENT TECHNOLOGIES; WATER; PRETREATMENT; DISINTEGRATION; SOLUBILIZATION; FEASIBILITY; DYE;
D O I
10.1186/s13068-021-01929-7
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Background: Most of the organic content of waste activated sludge (WAS) comprises microbial cells hard to degrade, which must be pre-treated for energy recovery by anaerobic digestion (AD). Electrooxidation pre-treatment (EOP) with boron-doped diamond (BDD) electrode have been considered a promising novel technology that increase hydrolysis rate, by the disintegrating cell walls from WAS. Although electrochemical oxidation could efficiently solubilize organic substances of macromolecules, limited reports are available on EOP of WAS for improving AD. In this endeavour, the mathematical optimization study and the energy analysis of the effects of initial total solids concentrations [TS] of WAS and current density (CD) during EOP on the methane production and removal of chemical oxygen demand (COD) and volatile solids (VS) were investigated. Because limited reports are available on EOP of WAS for improving biogas production, it is not well understood; however, it has started to attract interest of scientists and engineers. Results: In the present work, the energy recovery as biogas and WAS conversion were comprehensively affected by CD and [TS], in an integrated EOP and AD system. When working with WAS at 3% of [TS] pre-treated at current density of 24.1 mA/cm(2), the highest COD and VS removal were achieved, making it possible to obtain the maximum methane (CH4) production of 305 N-L/kg VS and a positive energy balance of 1.67 kWh/kg VS. Therefore, the current densities used in BDD electrode are adequate to produce the strong oxidant (hydroxyl radical, (OH)-O-center dot) on the electrode surface, allow the oxidation of organic compounds that favours the solubilization of particulate matter and VS from WAS. Conclusions: The improvement of VS removal and COD solubilization were due to the effects of pre-treatments, which help to break down the microbial cells for faster subsequent degradation; this allows a decomposition reaction that leads to biodegrade more compounds during AD. The balance was positive, suggesting that even without any optimization the energy used as electricity could be recovered from the increased methane production. It is worth noting that this kind of analysis have not been sufficiently studied so far. It is therefore important to understand how operational parameters can influence the pre-treatment and AD performances. The current study highlights that the mathematical optimization and energy analysis can make the whole process more convenient and feasible.
引用
收藏
页数:9
相关论文
共 50 条
  • [41] Understanding the impact of cationic polyacrylamide on anaerobic digestion of waste activated sludge
    Wang, Dongbo
    Liu, Xuran
    Zeng, Guangming
    Zhao, Jianwei
    Liu, Yiwen
    Wang, Qilin
    Chen, Fei
    Li, Xiaoming
    Yang, Qi
    WATER RESEARCH, 2018, 130 : 281 - 290
  • [42] The effect of acid pretreatment on the anaerobic digestion and dewatering of waste activated sludge
    Devlin, D. C.
    Esteves, S. R. R.
    Dinsdale, R. M.
    Guwy, A. J.
    BIORESOURCE TECHNOLOGY, 2011, 102 (05) : 4076 - 4082
  • [43] A mechanical pretreatment of waste activated sludge for improvement of anaerobic digestion system
    Hwang, KY
    Shin, EB
    Choi, HB
    WATER SCIENCE AND TECHNOLOGY, 1997, 36 (12) : 111 - 116
  • [44] Live Steam-Pretreatment and Anaerobic Digestion of Waste Activated Sludge
    Gao, Zhedong
    Zhang, Cunsheng
    Su, Haijia
    Tan, Tianwei
    ENVIRONMENTAL ENGINEERING SCIENCE, 2013, 30 (09) : 546 - 554
  • [45] Prediction of thermal hydrolysis pretreatment on anaerobic digestion of waste activated sludge
    Phothilangka, P.
    Schoen, M. A.
    Huber, M.
    Luchetta, P.
    Winkler, T.
    Wett, B.
    WATER SCIENCE AND TECHNOLOGY, 2008, 58 (07) : 1467 - 1473
  • [46] Process performance of anaerobic co-digestion of waste activated sludge and aquaculture sludge
    Wu, Yuqi
    Song, Kang
    AQUACULTURAL ENGINEERING, 2020, 90
  • [47] Sludge electrooxidation as pre-treatment for anaerobic digestion
    Barrios, J. A.
    Duran, U.
    Cano, A.
    Cisneros-Ortiz, M.
    Hernandez, S.
    WATER SCIENCE AND TECHNOLOGY, 2017, 75 (04) : 775 - 781
  • [48] Anaerobic co-digestion of oil refinery waste activated sludge and food waste
    Silva de Castro, Tayane Miranda
    Cammarota, Magali Christe
    Vasques Pacheco, Elen Beatriz Acordi
    ENVIRONMENTAL TECHNOLOGY, 2022, 43 (27) : 4279 - 4290
  • [49] Winery waste recycling through anaerobic co-digestion with waste activated sludge
    Da Ros, C.
    Cavinato, C.
    Pavan, P.
    Bolzonella, D.
    WASTE MANAGEMENT, 2014, 34 (11) : 2028 - 2035
  • [50] Anaerobic Co-digestion of the Liquid Fraction of Food Waste with Waste Activated Sludge
    Kanellos, Gerasimos
    Tremouli, Asimina
    Kondylis, Antonios
    Stamelou, Antigoni
    Lyberatos, Gerasimos
    WASTE AND BIOMASS VALORIZATION, 2024, 15 (06) : 3339 - 3350