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Volume 44 Issue 7
Jul.  2026
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ZHAO Zhenzhen, QIU Junjie, YI Yangmin, HUANG Huimin, JIANG Guihong, YANG Hujun, ZHANG Hongliang, HE Pinjing. Current status of food waste anaerobic digestion and challenges in carbon source production in China[J]. ENVIRONMENTAL ENGINEERING , 2026, 44(7): 78-88. doi: 10.13205/j.hjgc.202607009
Citation: ZHAO Zhenzhen, QIU Junjie, YI Yangmin, HUANG Huimin, JIANG Guihong, YANG Hujun, ZHANG Hongliang, HE Pinjing. Current status of food waste anaerobic digestion and challenges in carbon source production in China[J]. ENVIRONMENTAL ENGINEERING , 2026, 44(7): 78-88. doi: 10.13205/j.hjgc.202607009

Current status of food waste anaerobic digestion and challenges in carbon source production in China

doi: 10.13205/j.hjgc.202607009
  • Received Date: 2025-09-22
    Available Online: 2026-09-01
  • Resource utilization of food waste is a key measure for implementing waste classification and constructing zero-waste cities in China. However, the technical route based on anaerobic digestion currently faces developmental bottlenecks. In this study, engineering-scale facilities located in Northeast, North, Northwest, and Southeast China were selected, and material flow analysis was employed to comprehensively assess the current status of anaerobic digestion of food waste. The results indicated that, during the pretreatment stage, both leachate and organic slurry from all surveyed regions exhibited high COD/TN ratios, and the leachate contained high concentrations of lipids. Following three-phase (oil-water-solid) separation, the oil recovery rate could reach over 98%. Anaerobic digestion of each ton of food waste from the four regions generated approximately 70 to 80 Nm³ of biogas, while simultaneously producing liquid digestate accounting for 69% to 80% of the total mass and solid digestate accounting for 2.7% to 3.6%. However, the annual continuous production of digestate was not aligned with the seasonal demand for land use, thereby restricting the pathway for resource utilization. Converting food waste into an external carbon source can significantly enhance its resource utilization efficiency, with the economic benefits increasing by more than 203% compared to the methanogenesis pathway. The selection of the carbon source production technology route should be comprehensively determined by taking into account factors such as the specific nitrogen removal requirements of the target wastewater treatment process, the quality requirements for the carbon source products, and the substitution rate of commercial carbon sources.
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  • [1]
    LI Y,JIN Y,BORRION A,et al. Current status of food waste generation and management in China[J]. Bioresource Technology,2019,273:654-665.
    [2]
    LIU M,OGUNMOROTI A,LIU W,et al. Assessment and projection of environmental impacts of food waste treatment in China from life cycle perspectives[J]. Science of the Total Environment,2022,807(1):150751.
    [3]
    WANG H X,XU J L,SHENG L X. Study on the comprehensive utilization of city kitchen waste as a resource in China[J]. Energy,2019,173:263-277.
    [4]
    EDWARDS J,OTHMAN M,CROSSIN E,et al. Life cycle assessment to compare the environmental impact of seven contemporary food waste management systems[J]. Bioresource Technology,2018,248:156-173.
    [5]
    ZHANG H,LI G,GU J,et al. Influence of aeration on volatile sulfur compounds(VSCs)and NH3 emissions during aerobic composting of kitchen waste[J]. Waste Management,2016,58:369-375.
    [6]
    LI B,DONG Z,YUE Y,et al. Hydrogen and methane production in a two-stage thermophilic anaerobic digestion system by co-digestion of kitchen waste and municipal sewage sludge with a high solid content[J]. Environmental Engineering Science,2023,40(6):253-261.
    [7]
    LONG T F,LIN Q Y,ZHANG Z L,et al. Screening of oil-degrading bacteria and optimization of enzyme production conditions from perishable organic food waste[J]. Environmental Engineering,2024,42(6):103-110. 龙腾发,林清钰,张忠兰,等. 餐厨易腐有机垃圾中油脂降解菌的筛选和产酶条件优化[J]. 环境工程,2024,42(6):103-110.
    [8]
    PATEL K,SINGH S K. Assessing the sustainability of municipal solid waste management using life-cycle analysis[J]. Proceedings of the Institution of Civil Engineers:Waste and Resource Management,2022,175(3):64-74.
    [9]
    ZOU Q H,YU Z S,WEI C,et al. Ash fusion characteristics during co-combustion of food waste biogas residue and municipal solid waste[J]. Environmental Engineering,2023,41(5):69-74. 邹骑鸿,余昭胜,韦琛,等. 厨余沼渣与城市生活垃圾混合燃烧过程的灰熔融特性[J]. 环境工程,2023,41(5):69-74.
    [10]
    SANKAR C V R,MICHELE J,BRAJESH W D. Environmental impact evaluation of landfill mining of legacy waste with on-site sorting using life cycle assessment[J]. Environmental Science and Pollution Research,2023,30(11):30033-30047.
    [11]
    MUSTAFA A B,DONG H,ZHANG C,et al. Life cycle environmental benefit and waste-to-energy potential of municipal solid waste management scenarios in Indonesia[J]. Journal of Material Cycles and Waste Management,2022,24:1859-1877.
    [12]
    JIN C X,SUN S O,YANG D H,et al. Anaerobic digestion:alternative resource treatment option for food waste in China[J]. Science of the Total Environment,2021,779:146397.
    [13]
    CHEN W H,YUAN H Z,KE S Z,et al. Comparative analysis of carbon compensation and energy recovery potential from different resource utilization methods of food waste[J]. Environmental Engineering,2023,41(7):37-44. 陈文昊,袁辉洲,柯水洲,等. 厨余垃圾资源化处置方式的碳补偿与能源回收潜力对比分析[J]. 环境工程,2023,41(7):37-44.
    [14]
    GONG Y B,YAO J G,TAN J. Biogas production efficiency of food waste anaerobic digestion in mesophilic and thermophilic transition zone[J]. Environmental Engineering,2022,40(3):132-138. 宫亚斌,姚建刚,谭婧. 餐厨垃圾中温与中高温过渡区厌氧产沼效率研究[J]. 环境工程,2022,40(3):132-138.
    [15]
    LU T,LÜ F,LIAO N,et al. Material flow analysis and global warming potential assessment of an industrial insect-based bioconversion plant using housefly larvae[J]. Journal of Environmental Sciences,2023,139:483-495.
    [16]
    LIANG J R,YAN C,WANG D Z,et al. A pilot study on bio-conversion of restaurant food waste by fly maggots and the related equipments[J]. Environmental Engineering,2021,39(12):166-171. 梁剑茹,颜成,王电站,等. 餐厨垃圾渣蝇蛆转化工艺设备及处理效果中试研究[J]. 环境工程,2021,39(12):166-171.
    [17]
    QU Y,ZHU W B,CHANG Y Q,et al. Treatment efficiency of restaurant food waste solid residue by DANO dynamic composting process[J]. Environmental Engineering,2022,40(12):46-52. 屈阳,朱卫兵,常燕青,等. 餐厨垃圾固渣 DANO 动态堆肥处理效果研究[J]. 环境工程,2022,40(12):46-52.
    [18]
    ZHONG M X. Preparation of carbon source from food waste hydrolysis acidification liquid and its denitrification performance[D]. Harbin:Harbin Institute of Technology,2025. 钟美霞. 餐厨垃圾水解酸化液碳源的制备及其反硝化性能研究[D]. 哈尔滨:哈尔滨工业大学,2025.
    [19]
    YANG M X,SHEN P F,CHEN X H. Analysis and suggestions on product-oriented anaerobic fermentation of food waste[J]. Environmental Engineering,2024,42(10):140-146. 杨梦霞,沈鹏飞,陈小欢. 以产物为导向的厨余垃圾厌氧发酵方式分析与建议[J]. 环境工程,2024,42(10):140-146.
    [20]
    ZHOU H Y,ZHANG T,BIAN B,et al. Comprehensive utilization of nutrients during anaerobic digestion of food waste[J]. Journal of Environmental Engineering Technology,2024,14(1):224-230. 周海云,张桐,边博,等. 餐厨垃圾厌氧消化过程养分综合利用研究[J]. 环境工程技术学报,2024,14(1):224-230.
    [21]
    PAN H,LI Y,ZHU W,et al. Oriented bioconversion of food waste to lactic acid for external carbon source production:Microbial communities and comparison of denitrification performance[J]. Bioresource Technology,2025,416:131739.
    [22]
    JOHNSON O O,OLUKAYODE A O,NIHINLOLA O F. Anaerobic co-digestion of kitchen waste and animal manure:a review of operating parameters,inhibiting factors,and pretreatment with their impact on process performance[J]. Biomass Conversion and Biorefinery,2023,13:5515-5531.
    [23]
    WANG K J,WANG J Y,ZUO J E,et al. Analysis and suggestion of current food waste anaerobic digestion technology in China[J]. Chinese Journal of Environmental Engineering,2020,14(7):1735-1742. 王凯军,王婧瑶,左剑恶,等. 我国餐厨垃圾厌氧处理技术现状分析及建议[J]. 环境工程学报,2020,14(7):1735-1742.
    [24]
    Editorial Board of Water and Wastewater Monitoring and Analysis Methods,State Environmental Protection Administration. Water and wastewater monitoring and analysis methods[M]. Beijing:China Environmental Science Press,2002. 国家环境保护总局《水和废水监测分析方法》编委会. 水和废水监测分析方法[M]. 北京:中国环境科学出版社,2002.
    [25]
    ZHANG R,EL-MASHAD H M,HARTMAN,et al. Characterization of food waste as feedstock for anaerobic digestion[J]. Bioresource Technology,2007,98(4):929-935.
    [26]
    LI Y,HUANG W,FANG S,et al. Zinc pyrithione induced volatile fatty acids promotion derived from sludge anaerobic digestion:Interrelating the affected steps with microbial metabolic regulation and adaptive responses[J]. Water Research,2023,234:119816.
    [27]
    DENG J,WEI Y Q,WANG Z Y,et al. Effect of oil on the humification process of food waste aerobic composting[J]. Environmental Engineering,2024,42(6):111-118. 邓杰,魏雨泉,王字蕴,等. 油脂对餐厨废弃物好氧堆肥腐殖化过程的影响[J]. 环境工程,2024,42(6):111-118.
    [28]
    DUTTA S,HE M J,XIONG X N,et al. Sustainable management and recycling of food waste anaerobic digestate:a review[J]. Bioresource Technology,2021,341:125915.
    [29]
    BANDINI F,FRACHE A,FERRARINI A,et al. Fate of biodegradable polymers under industrial conditions for anaerobic digestion and aerobic composting of food waste[J]. Journal of Polymers and the Environment,2020,28:2539-2550.
    [30]
    CASTRO I M P,ROSA A,BORGES A,et al. The effects of microalgae use as a biofertilizer on soil and plant before and after its anaerobic(co-)digestion with food waste[J]. Science of the Total Environment,2024,934:173301.
    [31]
    LIU Y,ZHAO L X,SHEN Y J,et al. Carbon and nitrogen changes during the entire process of anaerobic fermentation of agricultural waste and utilization of biogas fertilizer[J]. China Biogas,2018,36(1):65-70. 刘烨,赵立欣,沈玉君,等. 农业废弃物厌氧发酵及沼肥利用全过程碳氮变化研究[J]. 中国沼气,2018,36(1):65-70.
    [32]
    LIANG M L,YUAN W B,AO D,et al. Optimization of anaerobic fermentation conditions for preparing high-performance denitrification carbon source from food waste[J]. Environmental Sanitation Engineering,2022,30(5):60-66. 梁曼丽,袁维波,敖冬,等. 餐厨垃圾制备高性能反硝化碳源的厌氧发酵条件优化[J]. 环境卫生工程,2022,30(5):60-66.
    [33]
    ZHANG Y M. Study on effective recovery of carbon source from food waste and the principle of enhanced denitrification[D]. Xi'an University of Architecture and Technology,2017. 张永梅. 餐厨垃圾碳源的有效回收与强化脱氮原理的研究[D]. 西安:西安建筑科技大学,2017.
    [34]
    ZHANG Y,WANG X C,CHENG Z,et al. Effect of fermentation liquid from food waste as a carbon source for enhancing denitrification in wastewater treatment[J]. Chemosphere,2016,144:689-696.
    [35]
    DING L K,CHENG J,QIAO D,et al. Investigating hydrothermal pretreatment of food waste for two-stage fermentative hydrogen and methane co-production[J]. Bioresource Technology,2017,241:491-499.
    [36]
    LI Z Y,LI Z Z,DOU Y T,et al. Influence of xenobiotics on anaerobic digestion efficiency of food waste and corresponding regulation strategies[J]. Environmental Engineering,2023,41(6):222-232. 李子瑜,李镇州,窦玉婷,等. 异源物质对餐厨垃圾厌氧消化效能的影响及调控策略[J]. 环境工程,2023,41(6):222-232.
    [37]
    ZHANG L,LI K,ZHU Y P,et al. Preparation of carbon source from food waste by disc separation and its application[J]. Environmental Sanitation Engineering,2024,32(5):62-66. 张力,李科,朱雅萍,等. 餐厨垃圾碟式分离制备碳源及其应用研究[J]. 环境卫生工程,2024,32(5):62-66.
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