Coupling hydrothermal carbonization with anaerobic digestion: an evaluation based on energy recovery and hydrochar utilization

被引:21
作者
Al Ramahi, Mahmood [1 ]
Keszthelyi-Szabo, Gabor [2 ]
Beszedes, Sandor [3 ]
机构
[1] Univ Szeged, Doctoral Sch Environm Sci, Dugonics Ter 13, H-6724 Szeged, Hungary
[2] Gabor Denes Coll, Fejer Lipot U 70, H-1119 Budapest, Hungary
[3] Univ Szeged, Fac Engn, Dept Proc Engn, Moszkvai Krt 9, H-6725 Szeged, Hungary
来源
BIOFUEL RESEARCH JOURNAL-BRJ | 2021年 / 8卷 / 03期
关键词
Hydrothermal carbonization; Anaerobic digestion; Sludge biodegradability; Steam gasification; Liquid fertilizer; Energy balance; RICH GAS-PRODUCTION; SEWAGE-SLUDGE; STEAM GASIFICATION; SOLID-FUEL; BIOMASS; WASTE; CARBON; COMBUSTION; POSTTREATMENT; TEMPERATURE;
D O I
10.18331/BRJ2021.8.3.4
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
This work evaluates the effect of hydrothermal carbonization (HTC) as a pretreatment and post-treatment technique to anaerobic digestion (AD) of dairy sludge. HTC's effect on AD was evaluated based on energy recovery, nutrient transformation, and hydrochar utilization. The first approach was executed by performing HTC under a range of temperatures before mesophilic AD. HTC optimal pretreatment temperature was 210 degrees C for 30 min residence time. HTC pretreatment significantly increased the methane yield potential by 192%, the chemical oxygen demand removal by 18%, and the sludge biodegradability during AD by 30%. On the other hand, the application of HTC after AD (post-treatment) increased the total energy production, i.e., in addition to methane, a hydrochar with a caloric value of 10.2 MJ/kg was also obtained. Moreover, HTC post-treatment improved the steam gasification performance of the AD digestate. From the fertilizer quality point of view, HTC implementation generally boosted the concentrations of macro, micro, and secondary nutrients, suggesting its suitability for use as a liquid fertilizer. Overall, the findings of the present study indicate that if bioenergy production were the main target, HTC post-treatment following AD would lead to the most promising outcomes. (C) 2021 BRTeam. All rights reserved.
引用
收藏
页码:1444 / 1453
页数:10
相关论文
共 45 条
[1]   Improving biogas production performance of dairy activated sludge via ultrasound disruption prior to microwave disintegration [J].
Al Ramahi, M. ;
Keszthelyi-Szabo, G. ;
Beszedes, S. .
WATER SCIENCE AND TECHNOLOGY, 2020, 81 (06) :1231-1241
[2]   Evaluation and comparison of product yields and bio-methane potential in sewage digestate following hydrothermal treatment [J].
Aragon-Briceno, C. ;
Ross, A. B. ;
Camargo-Valero, M. A. .
APPLIED ENERGY, 2017, 208 :1357-1369
[3]   The effect of temperature, residence time, and water-sludge ratio on hydrothermal carbonization of DAF dairy sludge [J].
Atallah, Emile ;
Zeaiter, Joseph ;
Ahmad, Mohammad N. ;
Kwapinska, Marzena ;
Leahy, James J. ;
Kwapinski, Witold .
JOURNAL OF ENVIRONMENTAL CHEMICAL ENGINEERING, 2020, 8 (01)
[4]   Characterization and utilization of hydrothermal carbonization aqueous phase as nutrient source for microalgal growth [J].
Belete, Yonas Zeslase ;
Leu, Stefan ;
Boussiba, Sammy ;
Zorin, Boris ;
Posten, Clemens ;
Thomsen, Laurenz ;
Wang, Song ;
Gross, Amit ;
Bernstein, Roy .
BIORESOURCE TECHNOLOGY, 2019, 290
[5]   Upgrading of moist agro-industrial wastes by hydrothermal carbonization [J].
Benavente, Veronica ;
Calabuig, Emilio ;
Fullana, Andres .
JOURNAL OF ANALYTICAL AND APPLIED PYROLYSIS, 2015, 113 :89-98
[6]   Characterization of char from biomass gasification and its similarities with activated carbon in adsorption applications [J].
Benedetti, Vittoria ;
Patuzzi, Francesco ;
Baratieri, Marco .
APPLIED ENERGY, 2018, 227 :92-99
[7]   Study on carbonization of lignin by TG-FTIR and high-temperature carbonization reactor [J].
Cao, Jun ;
Xiao, Gang ;
Xu, Xiao ;
Shen, Dekui ;
Jin, Baosheng .
FUEL PROCESSING TECHNOLOGY, 2013, 106 :41-47
[8]   Hydrothermal carbonisation of sewage sludge: Effect of process conditions on product characteristics and methane production [J].
Danso-Boateng, E. ;
Shama, G. ;
Wheatley, A. D. ;
Martin, S. J. ;
Holdich, R. G. .
BIORESOURCE TECHNOLOGY, 2015, 177 :318-327
[9]   Hydrogen rich fuel gas production from the pyrolysis of wet sewage sludge at high temperature [J].
Dominguez, A. ;
Menendez, J. A. ;
Pis, J. J. .
JOURNAL OF ANALYTICAL AND APPLIED PYROLYSIS, 2006, 77 (02) :127-132
[10]   Hydrothermal Carbonization as an Energy-Efficient Alternative to Established Drying Technologies for Sewage Sludge: A Feasibility Study on a Laboratory Scale [J].
Escala, M. ;
Zumbuehl, T. ;
Koller, Ch. ;
Junge, R. ;
Krebs, R. .
ENERGY & FUELS, 2013, 27 (01) :454-460