Environmental Sanitation Engineering ›› 2024, Vol. 32 ›› Issue (3): 47-53.doi: 10.19841/j.cnki.hjwsgc.2024.03.007

Previous Articles     Next Articles

Comparative Study on Anaerobic Digestion of Food Waste Enhanced by Biogas Residue Hydrochar and Biogas Residue Pyrochar

OUYANG Chuang, ZHANG Yurong, TAI Jun, XU Xianbao, XUE Gang, LI Xiang   

  1. 1. Shanghai Environmental Sanitation Engineering Design Institute Co.Ltd.; 2. College of Environmental Science and Engineering, Donghua University
  • Online:2024-07-02 Published:2024-07-02

Abstract: Anaerobic digestion (AD) of food waste could result in a large amount of biogas residue generation, which needs to be properly disposed. Biogas residue was prepared into hydrochar and pyrochar by hydrothermal and pyrolysis reaction, respectively. The effects of hydrochar and pyrochar on AD of food waste were compared. The results showed that compared with the control group (23.8 mL/g), the methane production of hydrochar group (dosage of 1, 5 and 10 g/L) was 24.0, 38.9 and 34.9 mL/g, which increased by 0.8%, 63.4% and 46.6%, respectively. The methane yield of pyrochar group (dosage of 1,5 and 10 g/L) was 29.7, 35.7 and 31.1 mL/g, which increased by 24.8%, 50.0% and 30.7%, respectively. Hydrochar and pyrochar amendment promoted the solubilization of organic matter. While the total relative abundance of hydrolytic acid-producing bacteria of Fastidiosipila, W5053, Propioniciclava, Actinomyces, and Norank_f__ST-12K33 increased from 73.0% to 84.6% and 82.0%, respectively. After adding hydrochar and pyrochar, the relative abundance of Methanosaeta was as high as 60.3% and 50.6% respectively, while the relative abundance of Methanobacterium was only 26.5% and 36.9%. Biochar from biogas residue could strengthen the AD of food waste, with the increase of dosage, methane production first increased and then decreased, the optimal dosage was 5 g/L. And the hydrochar performed better than pyrochar.

Key words: biogas residue, hydrochar, pyrochar, food waste, anaerobic digestion

[1] WANG Huihui, WANG Ling, ZHU Minhang, LIAN Songjian. Analysis on Current Situation and Processing Costs of Food Waste Treatment Facilities in China [J]. Environmental Sanitation Engineering, 2025, 33(3): 12-18.
[2] WANG Yujie, QIU Junjie, LYU Fan, ZHANG Hua, HE Pinjing. Bottlenecks in Scaling up Lactate-mediated Carbon Chain Elongation for Caproate Production [J]. Environmental Sanitation Engineering, 2025, 33(3): 27-36,48.
[3] ZHANG Xiaoxing, WANG Wei, ZHANG Xianhua. Analysis of the Operation Safety and Economic Efficiency of Oil Extraction for Anaerobic Resource Utilization of Household Kitchen Waste [J]. Environmental Sanitation Engineering, 2025, 33(3): 49-55.
[4] XIA Qing, XU Xiaojian, ZHANG Yuting, ZHOU Chengya, LIU Haichun. Occurrence Characteristic and Risk Assessment of Heavy Metals in Yangzhou Household Food Waste [J]. Environmental Sanitation Engineering, 2025, 33(2): 50-54.
[5] PAN Jiayu, LI Mei, LI Yang. Enhancing Anaerobic Methanogenesis of Urban Organic Solid Waste by Granular Activated Carbon-supplemented Electrodes Coupled with Intermittent Power Supply [J]. Environmental Sanitation Engineering, 2025, 33(2): 42-49,54.
[6] XU Jiahui, LIU Chao, LE Liangliang, SU Xing, CHEN Weihua, WU Jian. Application Study of Gas-liquid Jet Stirring Technology in Anaerobic Digestion Engineering of Kitchen Waste [J]. Environmental Sanitation Engineering, 2025, 33(1): 78-84.
[7] ZUO Zhuang, ZHANG Chenyue, YU Wu, MIN Jiadong, WANG Yuanyue. Cross Flow Filtration Performance of Disk Ceramic Membrane from Different Sludge [J]. Environmental Sanitation Engineering, 2025, 33(1): 32-39.
[8] WANG Yiran, MENG Xingyao, LI Jinglin, WANG Pan, REN Lianhai. Research Status of Malodorous Gas Emissions During the Aerobic Composting Process of Food Waste [J]. Environmental Sanitation Engineering, 2025, 33(1): 40-49,56.
[9] LI Guoqing. Optimization of Breeding and Economic Benefit Analysis Based on Self-supply of Black Soldier Fly Eggs [J]. Environmental Sanitation Engineering, 2024, 32(6): 50-56.
[10] SHANG Yijun, LI Xunan, LIU Yan, CHEN Yongjie, YUAN Wei, LU Jianhong. Research Progress on the Growth and Reduction of Antibiotic Resistance Genes in Aerobic Compost of Food Waste [J]. Environmental Sanitation Engineering, 2024, 32(6): 80-89.
[11] WANG Lei , LIU Yuanjie, CHEN Dan. Techno-economic Analysis of Anaerobic Biogas Resource Utilization of Wet Waste [J]. Environmental Sanitation Engineering, 2024, 32(5): 55-61.
[12] ZHANG Li, LI Ke, ZHU Yaping, WU Yuan, YANG Hujun. Preparation of Carbon Source by Food Waste Dish Separation and Its Application [J]. Environmental Sanitation Engineering, 2024, 32(5): 62-66.
[13] MA Xiang, CHEN Ping, LIANG Jing. A Study on the Physical and Chemical Characteristics of Biochar from Two Kinds of Municipal Organic Solid Waste [J]. Environmental Sanitation Engineering, 2024, 32(4): 29-35.
[14] ZHOU Yongquan, LI Xiaowei, TAI Jun. The Effects of Low-dosage Paper Addition on Co-Digestion of Food Waste and Kitchen Waste [J]. Environmental Sanitation Engineering, 2024, 32(4): 36-43.
[15] XU Wei, GAO Ting, YIN Jin. Characterization and Kinetic Analysis of Pyrolysis of Anaerobic Digestate from Kitchen Waste [J]. Environmental Sanitation Engineering, 2024, 32(1): 37-44.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!
Copyright © Environmental Sanitation Engineering
Address: 107#, Weidi Road, Tianjin, P.R.C.    Postcode: 300201
Telephone: 022-28365069   Fax: 022-28365080 E-mail: csglwyjs10@tj.gov.cn
Supported by:Beijing Magtech