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Recent advances in anaerobic co-digestion of excess sludge and food waste |
ZHANG Xing-xing1, JIAO Peng-bo1, YANG Hui-ying1, WU Rui-min1, LI Yong-mei2, MA Li-ping1 |
1. School of Ecological and Environmental Sciences, East China Normal University, Shanghai 200241, China; 2. School of Environmental Science and Engineering, Tongji University, Shanghai 200092, China |
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Abstract In order to promote the industrial-scale application of anaerobic co-digestion (AcoD) of sewage excess sludge (ES) with food waste (FW) and enhance its energy recovery efficiency, this study systematically summarized the mechanisms of AcoD process, the distribution of co-digestive products and the factors that may affect the AcoD performance, the important research advances of direct interspecific electron transfer in AcoD were then reviewed, followed by the novel perspectives of AcoD process were proposed, such as developing efficient and economic methods for feedstock pretreatment, characterizing substrates degradation, understanding metabolic regulation by omics technologies, mitigating the effect of potential inhibitors in the AcoD systems, and in-situ coupling with other wastes, to improve digestion performance and stability. This study may provide a guidance and reference for efficient energy recovery of urban organic solid wastes.
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Received: 19 October 2021
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|
[1] |
Xu Y, Gong H, Dai X. High-solid anaerobic digestion of sewage sludge: achievements and perspectives [J]. Frontiers of Environmental Science & Engineering, 2021,15(4):71-88.
|
[2] |
Jang H M, Ha J H, Kim M, et al. Effect of increased load of high-strength food wastewater in thermophilic and mesophilic anaerobic co-digestion of waste activated sludge on bacterial community structure [J]. Water Research, 2016,99:140-148.
|
[3] |
Braguglia C M, Gallipoli A, Gianico A, et al. Anaerobic bioconversion of food waste into energy: A critical review [J]. Bioresource Technology, 2018,248:37-56.
|
[4] |
Gong X, Wu M, Jiang Y, et al. Effects of different temperatures and pH values on volatile fatty acids production during codigestion of food waste and thermal-hydrolysed sewage sludge and subsequent volatile fatty acids for polyhydroxyalkanoates production [J]. Bioresource Technology, 2021,333:125149.
|
[5] |
Mu L, Zhang L, Zhu K, et al. Anaerobic co-digestion of sewage sludge, food waste and yard waste: Synergistic enhancement on process stability and biogas production [J]. Science of The Total Environment, 2020,704:135429.
|
[6] |
Azarmanesh R, Zonoozi M H, Ghiasinejad H. Characterization of food waste and sewage sludge mesophilic anaerobic co-digestion under different mixing ratios of primary sludge, secondary sludge and food waste [J]. Biomass and Bioenergy, 2020,139:105610.
|
[7] |
Wang C, Wang Y, Wang Y, et al. Genome-centric microbiome analysis reveals solid retention time (SRT)-shaped species interactions and niche differentiation in food waste and sludge co-digesters [J]. Water Research, 2020,181:115858.
|
[8] |
Li Q, Li H, Wang G, et al. Effects of loading rate and temperature on anaerobic co-digestion of food waste and waste activated sludge in a high frequency feeding system, looking in particular at stability and efficiency [J]. Bioresource Technology, 2017,237:231-239.
|
[9] |
Wang Z, Wang T, Si B, et al. Accelerating anaerobic digestion for methane production: Potential role of direct interspecies electron transfer [J]. Renewable and Sustainable Energy Reviews, 2021,145: 111069.
|
[10] |
Lovley D R. Syntrophy Goes Electric: Direct Interspecies Electron Transfer [J]. Annual Review of Microbiology, 2017,71(1):643-664.
|
[11] |
Liang J, Luo L, Li D, et al. Promoting anaerobic co-digestion of sewage sludge and food waste with different types of conductive materials: Performance, stability, and underlying mechanism [J]. Bioresource Technology, 2021,337:125384.
|
[12] |
Lee E, Oliveira D S B L, Oliveira L S B L, et al. Comparative environmental and economic life cycle assessment of high solids anaerobic co-digestion for biosolids and organic waste management [J]. Water Research, 2020,171:115443.
|
[13] |
Zhou M, Yan B, Wong J W C, et al. Enhanced volatile fatty acids production from anaerobic fermentation of food waste: A mini-review focusing on acidogenic metabolic pathways [J]. Bioresource Technology, 2018,248:68-78.
|
[14] |
鲁 斌,龚 凯,蒋红与,等.AnMBR用于餐厨垃圾和剩余污泥共发酵的性能研究 [J]. 中国环境科学, 2021,41(5):2290-2298. Lu B, Gong K, Jiang H Y, et al. Performance of AnMBR for the co-digestion of food waste and waste activated sludge [J]. China Environmental Science, 2021,41(5):2290-2298.
|
[15] |
Cao S, Sun F, Lu D, et al. Characterization of the refractory dissolved organic matters (rDOM) in sludge alkaline fermentation liquid driven denitrification: Effect of HRT on their fate and transformation [J]. Water Research, 2019,159:135-144.
|
[16] |
Jang H M, Kim M, Ha J H, et al. Reactor performance and methanogenic archaea species in thermophilic anaerobic co-digestion of waste activated sludge mixed with food wastewater [J]. Chemical Engineering Journal, 2015,276:20-28.
|
[17] |
Jang H M, Cho H U, Park S K, et al. Influence of thermophilic aerobic digestion as a sludge pre-treatment and solids retention time of mesophilic anaerobic digestion on the methane production, sludge digestion and microbial communities in a sequential digestion process [J]. Water Research, 2014,48:1-14.
|
[18] |
Meena R A A, Rajesh Banu J, Yukesh Kannah R, et al. Biohythane production from food processing wastes – Challenges and perspectives [J]. Bioresource Technology, 2020,298:122449.
|
[19] |
Kurade M B, Saha S, Salama E, et al. Acetoclastic methanogenesis led by Methanosarcina in anaerobic co-digestion of fats, oil and grease for enhanced production of methane [J]. Bioresource Technology, 2019, 272:351-359.
|
[20] |
Karki R, Chuenchart W, Surendra K C, et al. Anaerobic co-digestion: Current status and perspectives [J]. Bioresource Technology, 2021, 330:125001.
|
[21] |
Khatami K, Atasoy M, Ludtke M, et al. Bioconversion of food waste to volatile fatty acids: Impact of microbial community, pH and retention time [J]. Chemosphere, 2021,275:129981.
|
[22] |
Jiang J, Zhang Y, Li K, et al. Volatile fatty acids production from food waste: Effects of pH, temperature, and organic loading rate [J]. Bioresource Technology, 2013,143:525-530.
|
[23] |
Chen H, Meng H, Nie Z, et al. Polyhydroxyalkanoate production from fermented volatile fatty acids: Effect of pH and feeding regimes [J]. Bioresource Technology, 2013,128:533-538.
|
[24] |
Chen Y, Li X, Zheng X, et al. Enhancement of propionic acid fraction in volatile fatty acids produced from sludge fermentation by the use of food waste and Propionibacterium acidipropionici [J]. Water Research, 2013,47(2):615-622.
|
[25] |
Cheng J, Ding L, Lin R, et al. Physicochemical characterization of typical municipal solid wastes for fermentative hydrogen and methane co-production [J]. Energy Conversion and Management, 2016,117: 297-304.
|
[26] |
Pan X, Zhao L, Li C, et al. Deep insights into the network of acetate metabolism in anaerobic digestion: focusing on syntrophic acetate oxidation and homoacetogenesis [J]. Water Research, 2021,190: 116774.
|
[27] |
Lü F, Hao L, Guan D, et al. Synergetic stress of acids and ammonium on the shift in the methanogenic pathways during thermophilic anaerobic digestion of organics [J]. Water Research, 2013,47(7):2297- 2306.
|
[28] |
Li Y, Tang Y, Xiong P, et al. High-efficiency methanogenesis via kitchen wastes served as ethanol source to establish direct interspecies electron transfer during anaerobic Co-digestion with waste activated sludge [J]. Water Research, 2020,176:115763.
|
[29] |
Chen X, Yuan H, Zou D, et al. Improving biomethane yield by controlling fermentation type of acidogenic phase in two-phase anaerobic co-digestion of food waste and rice straw [J]. Chemical Engineering Journal, 2015,273:254-260.
|
[30] |
Yuan Y, Hu X, Chen H, et al. Advances in enhanced volatile fatty acid production from anaerobic fermentation of waste activated sludge [J]. Science of The Total Environment, 2019,694:133741.
|
[31] |
Dinesh G K, Chauhan R, Chakma S. Influence and strategies for enhanced biohydrogen production from food waste [J]. Renewable and Sustainable Energy Reviews, 2018,92:807-822.
|
[32] |
Li Z, Chen Z, Ye H, et al. Anaerobic co-digestion of sewage sludge and food waste for hydrogen and VFA production with microbial community analysis [J]. Waste Management, 2018,78:789-799.
|
[33] |
Wang D, Duan Y, Yang Q, et al. Free ammonia enhances dark fermentative hydrogen production from waste activated sludge [J]. Water Research, 2018,133:272-281.
|
[34] |
Cesaro A. The valorization of the anaerobic digestate from the organic fractions of municipal solid waste: Challenges and perspectives [J]. Journal of Environmental Management, 2021,280:111742.
|
[35] |
Guilayn F, Jimenez J, Martel J, et al. First fertilizing-value typology of digestates: A decision-making tool for regulation [J]. Waste Management, 2019,86:67-79.
|
[36] |
Tampio E, Ervasti S, Rintala J. Characteristics and agronomic usability of digestates from laboratory digesters treating food waste and autoclaved food waste [J]. Journal of Cleaner Production, 2015, 94:86-92.
|
[37] |
Grigatti M, Barbanti L, Hassan M U, et al. Fertilizing potential and CO2emissions following the utilization of fresh and composted food- waste anaerobic digestates [J]. Science of The Total Environment, 2020,698:134198.
|
[38] |
Ma Y, Yin Y, Liu Y. New insights into co-digestion of activated sludge and food waste: Biogas versus biofertilizer [J]. Bioresource Technology, 2017,241:448-453.
|
[39] |
Cao J, Wu Y, Zhao J, et al. Phosphorus recovery as vivianite from waste activated sludge via optimizing iron source and pH value during anaerobic fermentation [J]. Bioresource Technology, 2019,293: 122088.
|
[40] |
Wu Y, Cao J, Zhang Q, et al. Continuous waste activated sludge and food waste co-fermentation for synchronously recovering vivianite and volatile fatty acids at different sludge retention times: Performance and microbial response [J]. Bioresource Technology, 2020,313: 123610.
|
[41] |
Wu Y, Cao J, Zhang T, et al. A novel approach of synchronously recovering phosphorus as vivianite and volatile fatty acids during waste activated sludge and food waste co-fermentation: Performance and mechanisms [J]. Bioresource Technology, 2020,305:123078.
|
[42] |
Cheng H, Li Y, Guo G, et al. Advanced methanogenic performance and fouling mechanism investigation of a high-solid anaerobic membrane bioreactor (AnMBR) for the co-digestion of food waste and sewage sludge [J]. Water Research, 2020,187:116436.
|
[43] |
Prabhu M S, Mutnuri S. Anaerobic co-digestion of sewage sludge and food waste [J]. Waste Management & Research, 2016,34(4):307-315.
|
[44] |
Pan Y, Zhi Z, Zhen G, et al. Synergistic effect and biodegradation kinetics of sewage sludge and food waste mesophilic anaerobic co-digestion and the underlying stimulation mechanisms [J]. Fuel, 2019,253:40-49.
|
[45] |
Hagos K, Zong J, Li D, et al. Anaerobic co-digestion process for biogas production: Progress, challenges and perspectives [J]. Renewable and Sustainable Energy Reviews, 2017,76:1485-1496.
|
[46] |
Chowdhury B, Lin L, Dhar B R, et al. Enhanced biomethane recovery from fat, oil, and grease through co-digestion with food waste and addition of conductive materials [J]. Chemosphere, 2019,236:124362.
|
[47] |
Campuzano R, González-Martínez S. Characteristics of the organic fraction of municipal solid waste and methane production: A review [J]. Waste Management, 2016,54:3-12.
|
[48] |
Elsamadony M, Mostafa A, Fujii M, et al. Advances towards understanding long chain fatty acids-induced inhibition and overcoming strategies for efficient anaerobic digestion process [J]. Water Research, 2021,190:116732.
|
[49] |
Jiang J, Li L, Cui M, et al. Anaerobic digestion of kitchen waste: the effects of source, concentration, and temperature [J]. Biochemical Engineering Journal, 2018,135:91-97.
|
[50] |
Mehariya S, Patel A K, Obulisamy P K, et al. Co-digestion of food waste and sewage sludge for methane production: Current status and perspective [J]. Bioresource Technology, 2018,265:519-531.
|
[51] |
Elsamadony M, Tawfik A. Dry anaerobic co-digestion of organic fraction of municipal waste with paperboard mill sludge and gelatin solid waste for enhancement of hydrogen production. [J]. Bioresource Technology, 2015,191:157-165.
|
[52] |
Pang H, Chen Y, He J, et al. Cation exchange resin-induced hydrolysis for improving biodegradability of waste activated sludge: Characterization of dissolved organic matters and microbial community [J]. Bioresource Technology, 2020,302:122870.
|
[53] |
Pang H, Li L, He J, et al. New insight into enhanced production of short-chain fatty acids from waste activated sludge by cation exchange resin-induced hydrolysis [J]. Chemical Engineering Journal, 2020, 388:124235.
|
[54] |
Yue L, Cheng J, Tang S, et al. Ultrasound and microwave pretreatments promote methane production potential and energy conversion during anaerobic digestion of lipid and food wastes [J]. Energy, 2021,228:120525.
|
[55] |
Dai X, Duan N, Dong B, et al. High-solids anaerobic co-digestion of sewage sludge and food waste in comparison with mono digestions: Stability and performance [J]. Waste Management, 2013,33(2):308- 316.
|
[56] |
Zhao J, Liu Y, Wang D, et al. Potential impact of salinity on methane production from food waste anaerobic digestion [J]. Waste Management, 2017,67:308-314.
|
[57] |
Ye C, Cheng J J, Creamer K S. Inhibition of anaerobic digestion process: A review [J]. Bioresour Technol, 2008,99(10):4044-4064.
|
[58] |
Sarkar O, Kiran Katari J, Chatterjee S, et al. Salinity induced acidogenic fermentation of food waste regulates biohydrogen production and volatile fatty acids profile [J]. Fuel, 2020,276:117794.
|
[59] |
Li X, Sadiq S, Zhang W, et al. Salinity enhances high optically active L-lactate production from co-fermentation of food waste and waste activated sludge: Unveiling the response of microbial community shift and functional profiling [J]. Bioresource Technology, 2021,319: 124124.
|
[60] |
Kim D H, Kim S H, Shin H S. Sodium inhibition of fermentative hydrogen production [J]. International Journal of Hydrogen Energy, 2009,34(8):3295-3304.
|
[61] |
Yin Y, Liu Y, Meng S, et al. Enzymatic pretreatment of activated sludge, food waste and their mixture for enhanced bioenergy recovery and waste volume reduction via anaerobic digestion [J]. Applied Energy, 2016,179:1131-1137.
|
[62] |
Li J, Zhang W, Li X, et al. Production of lactic acid from thermal pretreated food waste through the fermentation of waste activated sludge: Effects of substrate and thermal pretreatment temperature [J]. Bioresource Technology, 2018,247:890-896.
|
[63] |
宋青青,任宏宇,孔凡英,等.不同预处理方法促进剩余污泥发酵制氢研究进展 [J]. 中国环境科学, 2021,41(10):4736-4744. Song Q Q, Ren H Y, Kong F Y, et al. Research progress on enhanced hydrogen production from waste sludge by different pretreatment methods [J]. China Environmental Science, 2021,41(10):4736-4744.
|
[64] |
Devlin D C, Esteves S R R, Dinsdale R M, et al. The effect of acid pretreatment on the anaerobic digestion and dewatering of waste activated sludge [J]. Bioresource Technology, 2011,102(5):4076- 4082.
|
[65] |
Wu L, Zhang C, Hu H, et al. Phosphorus and short-chain fatty acids recovery from waste activated sludge by anaerobic fermentation: Effect of acid or alkali pretreatment [J]. Bioresource Technology, 2017,240:192-196.
|
[66] |
Saha S, Jeon B, Kurade M B, et al. Optimization of dilute acetic acid pretreatment of mixed fruit waste for increased methane production [J]. Journal of Cleaner Production, 2018,190:411-421.
|
[67] |
Cao S, Qian T, Zhou Y. New insights on the sludge fermentation liquid driven denitrification: Evaluation of the system performance and effluent organic matter (EfOM) [J]. Bioresource Technology, 2019,289:121621.
|
[68] |
Elalami D, Monlau F, Carrere H, et al. Effect of coupling alkaline pretreatment and sewage sludge co-digestion on methane production and fertilizer potential of digestate [J]. Science of The Total Environment, 2020,743:140670.
|
[69] |
Wang J, Li Y. Synergistic pretreatment of waste activated sludge using CaO2in combination with microwave irradiation to enhance methane production during anaerobic digestion [J]. Applied Energy, 2016,183: 1123-1132.
|
[70] |
Wang D, He D, Liu X, et al. The underlying mechanism of calcium peroxide pretreatment enhancing methane production from anaerobic digestion of waste activated sludge [J]. Water Research, 2019,164: 114934.
|
[71] |
Ma J, Mu L, Zhang Z, et al. Influence of thermal assistance on the biodegradation of organics during food waste bio-drying: Microbial stimulation and energy assessment [J]. Chemosphere, 2021,272: 129875.
|
[72] |
Toutian V, Barjenbruch M, Loderer C, et al. Pilot study of thermal alkaline pretreatment of waste activated sludge: Seasonal effects on anaerobic digestion and impact on dewaterability and refractory COD [J]. Water Research, 2020,182:115910.
|
[73] |
Veluchamy C, Kalamdhad A S. Influence of pretreatment techniques on anaerobic digestion of pulp and paper mill sludge: A review [J]. Bioresource Technology, 2017,245:1206-1219.
|
[74] |
Liu J, Zhao M, Lv C, et al. The effect of microwave pretreatment on anaerobic co-digestion of sludge and food waste: Performance, kinetics and energy recovery [J]. Environmental Research, 2020,189: 109856.
|
[75] |
Zou L, Wan Y, Zhang S, et al. Valorization of food waste to multiple bio-energies based on enzymatic pretreatment: A critical review and blueprint for the future [J]. Journal of Cleaner Production, 2020,277: 124091.
|
[76] |
Ma Y, Cai W, Liu Y. An integrated engineering system for maximizing bioenergy production from food waste [J]. Applied Energy, 2017,206:83-89.
|
[77] |
Ma Y, Liu Y. Turning food waste to energy and resources towards a great environmental and economic sustainability: An innovative integrated biological approach [J]. Biotechnology Advances, 2019,37 (7):107414.
|
[78] |
Kariyama I D, Zhai X, Wu B. Influence of mixing on anaerobic digestion efficiency in stirred tank digesters: A review [J]. Water Research, 2018,143:503-517.
|
[79] |
Lindmark J, Thorin E, Bel Fdhila R, et al. Effects of mixing on the result of anaerobic digestion: Review [J]. Renewable and Sustainable Energy Reviews, 2014,40:1030-1047.
|
[80] |
Zhang J, Mao L, Nithya K, et al. Optimizing mixing strategy to improve the performance of an anaerobic digestion waste-to-energy system for energy recovery from food waste [J]. Applied Energy, 2019, 249:28-36.
|
[81] |
Wang Y, Zhang J, Sun Y, et al. Effects of intermittent mixing mode on solid state anaerobic digestion of agricultural wastes [J]. Chemosphere, 2020,248:126055.
|
[82] |
Zhang J, Qi Q, Mao L, et al. Mixing strategies – Activated carbon nexus: Rapid start-up of thermophilic anaerobic digestion with the mesophilic anaerobic sludge as inoculum [J]. Bioresource Technology, 2020,310:123401.
|
[83] |
Ge H, Jensen P D, Batstone D J. Temperature phased anaerobic digestion increases apparent hydrolysis rate for waste activated sludge [J]. Water Research, 2011,45(4):1597-1606.
|
[84] |
Fernández-Domínguez D, Astals S, Peces M, et al. Volatile fatty acids production from biowaste at mechanical-biological treatment plants: Focusing on fermentation temperature [J]. Bioresource Technology, 2020,314:123729.
|
[85] |
Cavinato C, Da Ros C, Pavan P, et al. Influence of temperature and hydraulic retention on the production of volatile fatty acids during anaerobic fermentation of cow manure and maize silage [J]. Bioresource Technology, 2017,223:59-64.
|
[86] |
Arelli V, Mamindlapelli N K, Begum S, et al. Solid state anaerobic digestion of food waste and sewage sludge: Impact of mixing ratios and temperature on microbial diversity, reactor stability and methane yield [J]. Science of The Total Environment, 2021,793:148586.
|
[87] |
Lindner J, Zielonka S, Oechsner H, et al. Effect of different pH-values on process parameters in two-phase anaerobic digestion of high-solid substrates [J]. Environmental Technology, 2015,36(2):198-207.
|
[88] |
Wu Q, Guo W, Zheng H, et al. Enhancement of volatile fatty acid production by co-fermentation of food waste and excess sludge without pH control: The mechanism and microbial community analyses [J]. Bioresource Technology, 2016,216:653-660.
|
[89] |
Angeriz-Campoy R, álvarez-Gallego C J, Romero-García L I. Thermophilic anaerobic co-digestion of organic fraction of municipal solid waste (OFMSW) with food waste (FW): Enhancement of bio- hydrogen production [J]. Bioresource Technology, 2015,194:291-296.
|
[90] |
Li X, Chen Y, Zhao S, et al. Efficient production of optically pure l-lactic acid from food waste at ambient temperature by regulating key enzyme activity [J]. Water Research, 2015,70:148-157.
|
[91] |
Wang Y, Wang C, Wang Y, et al. Investigation on the anaerobic co-digestion of food waste with sewage sludge [J]. Applied Microbiology and Biotechnology, 2017,101(20):7755-7766.
|
[92] |
Fernando-Foncillas C, Varrone C. Effect of reactor operating conditions on carboxylate production and chain elongation from co- fermented sludge and food waste [J]. Journal of Cleaner Production, 2021,292:126009.
|
[93] |
De Groof V, Coma M, Arnot T, et al. Selecting fermentation products for food waste valorisation with HRT and OLR as the key operational parameters [J]. Waste Management, 2021,127:80-89.
|
[94] |
Li L, He Q, Ma Y, et al. Dynamics of microbial community in a mesophilic anaerobic digester treating food waste: Relationship between community structure and process stability [J]. Bioresource Technology, 2015,189:113-120.
|
[95] |
Abbas Y, Yun S, Wang Z, et al. Recent advances in bio-based carbon materials for anaerobic digestion: A review [J]. Renewable and Sustainable Energy Reviews, 2021,135:110378.
|
[96] |
Kumar M, Dutta S, You S, et al. A critical review on biochar for enhancing biogas production from anaerobic digestion of food waste and sludge [J]. Journal of Cleaner Production, 2021,305:127143.
|
[97] |
Zhao Z, Wang J, Li Y, et al. Why do DIETers like drinking: Metagenomic analysis for methane and energy metabolism during anaerobic digestion with ethanol [J]. Water Research, 2020,171: 115425.
|
[98] |
Morita M, Malvankar N S, Franks A E, et al. Potential for direct interspecies electron transfer in methanogenic wastewater digester aggregates [J]. mBio, 2011,2(4):111-159.
|
[99] |
Rotaru A, Shrestha P M, Liu F, et al. A new model for electron flow during anaerobic digestion: direct interspecies electron transfer to Methanosaeta for the reduction of carbon dioxide to methane [J]. Energy & Environmental Science, 2014,7(1):408-415.
|
[100] |
Zhao Z, Zhang Y, Yu Q, et al. Communities stimulated with ethanol to perform direct interspecies electron transfer for syntrophic metabolism of propionate and butyrate [J]. Water Research, 2016,102:475-484.
|
[101] |
Kaur G, Johnravindar D, Wong J W C. Enhanced volatile fatty acid degradation and methane production efficiency by biochar addition in food waste-sludge co-digestion: A step towards increased organic loading efficiency in co-digestion [J]. Bioresource Technology, 2020,308:123250.
|
[102] |
Muratçobanoğlu H, Gökçek Ö B, Mert R A, et al. Simultaneous synergistic effects of graphite addition and co-digestion of food waste and cow manure: Biogas production and microbial community [J]. Bioresource Technology, 2020,309:123365.
|
[103] |
Chen S, Tao Z, Yao F, et al. Enhanced anaerobic co-digestion of waste activated sludge and food waste by sulfidated microscale zerovalent iron: Insights in direct interspecies electron transfer mechanism [J]. Bioresource Technology, 2020,316:123901.
|
[104] |
Zhang W, Li X, Zhang T, et al. High-rate lactic acid production from food waste and waste activated sludge via interactive control of pH adjustment and fermentation temperature [J]. Chemical Engineering Journal, 2017,328:197-206.
|
[105] |
Duan X, Chen Y, Feng L, et al. Metagenomic analysis reveals nonylphenol-shaped acidification and methanogenesis during sludge anaerobic digestion [J]. Water Research, 2021,196:117004.
|
[106] |
Ariunbaatar J, Scotto Di Perta E, Panico A, et al. Effect of ammoniacal nitrogen on one-stage and two-stage anaerobic digestion of food waste [J]. Waste Management, 2015,38:388-398.
|
[107] |
Du M, Liu X, Wang D, et al. Understanding the fate and impact of capsaicin in anaerobic co-digestion of food waste and waste activated sludge [J]. Water Research, 2021,188:116539.
|
[108] |
Tao Z, Chen C, Yang Q, et al. Understanding the impact of allicin for organic matter release and microorganism community in anaerobic co-digestion of food waste and waste activated sludge [J]. Science of The Total Environment, 2021,776:145598.
|
[109] |
Shin J, Rhee C, Shin J, et al. Determining the composition of bacterial community and relative abundance of specific antibiotics resistance genes via thermophilic anaerobic digestion of sewage sludge [J]. Bioresource Technology, 2020,311:123510.
|
[110] |
Feng Y, Duan J, Sun X, et al. Insights on the inhibition of anaerobic digestion performances under short-term exposure of metal-doped nanoplastics via Methanosarcina acetivorans [J]. Environmental Pollution, 2021,275:115755.
|
[111] |
李金平,崔维栋,黄娟娟,等.多元混合物料协同促进厌氧消化产甲烷性能试验研究 [J]. 中国环境科学, 2018,38(3):1024-1032. Li J P, Cui W D, Huang J J, et al. Synergistic effect of multiple raw materials anaerobic digestion on methane production performances [J]. China Environmental Science, 2018,38(3):1024-1032.
|
[112] |
Zhou Y, Selvam A, Wong J W C. Chinese medicinal herbal residues as a bulking agent for food waste composting [J]. Bioresource Technology, 2018,249:182-188.
|
[113] |
Zhang L, Guo B, Zhang Q, et al. Co-digestion of blackwater with kitchen organic waste: Effects of mixing ratios and insights into microbial community [J]. Journal of Cleaner Production, 2019,236: 117703.
|
[114] |
Monino P, Aguado D, Barat R, et al. A new strategy to maximize organic matter valorization in municipalities: Combination of urban wastewater with kitchen food waste and its treatment with AnMBR technology [J]. Waste Management, 2017,62:274-289.
|
[115] |
Zan F, Dai J, Jiang F, et al. Ground food waste discharge to sewer enhances methane gas emission: A lab-scale investigation [J]. Water Research, 2020,174:115616.
|
|
|
|