Utilization of food waste for biocrude production: A review
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[1] Jillian L. Goldfarb,et al. Uncovering the transition between hydrothermal carbonization and liquefaction via secondary char extraction: A case study using food waste. , 2023, Waste management.
[2] B. L. F. Chin,et al. Techno-economic assessment of co-pyrolyzed kitchen waste and rice straw for co-generation of heat and power , 2023, Sustainable Production and Consumption.
[3] M. Bassyouni,et al. Aqueous Phase from Hydrothermal Liquefaction: Composition and Toxicity Assessment , 2023, Water.
[4] D. Bianchi,et al. Production of biocrude from organic waste: Influence of feedstock composition on hydrodenitrogenation reactivity in biocrude upgrading , 2023, Fuel.
[5] Andrew R. Teixeira,et al. Emergent Chemical Behavior in Mixed Food and Lignocellulosic Green Waste Hydrothermal Liquefaction , 2022, ACS Sustainable Chemistry & Engineering.
[6] Yuanhui Zhang,et al. Diesel blends produced via emulsification of hydrothermal liquefaction biocrude from food waste , 2022, Fuel.
[7] Wei-hsin Chen,et al. Advanced technologies on the sustainable approaches for conversion of organic waste to valuable bioproducts: Emerging circular bioeconomy perspective , 2022, Fuel.
[8] Andrew R. Teixeira,et al. Hydroxyapatite catalyzed hydrothermal liquefaction transforms food waste from an environmental liability to renewable fuel , 2022, iScience.
[9] N. Remya,et al. Techno-economic analysis and life cycle assessment of microwave co-pyrolysis of food waste and low-density polyethylene , 2022, Sustainable Energy Technologies and Assessments.
[10] O. Scialdone,et al. Hydrothermal liquefaction of wet biomass in batch reactors: critical assessment of the role of operating parameters as a function of the nature of the feedstock , 2022, The Journal of Supercritical Fluids.
[11] G. Govindasamy,et al. Hydrothermal liquefaction of food waste to bio-oil over hierarchical Fe-Co-ZSM-5 catalyst for the circular economy , 2022, Materials Today: Proceedings.
[12] R. Vinu,et al. Optimal use of glycerol co-solvent to enhance product yield and its quality from hydrothermal liquefaction of refuse-derived fuel , 2022, Biomass conversion and biorefinery.
[13] Cindy Isenhour,et al. Composition and contamination of source separated food waste from different sources and regulatory environments. , 2022, Journal of environmental management.
[14] A. Sapre,et al. Design and scale-up challenges in hydrothermal liquefaction process for biocrude production and its upgradation , 2022, Energy Conversion and Management: X.
[15] Dadi V. Suriapparao,et al. A Review on Role of Process Parameters on Pyrolysis of Biomass and Plastics: Present Scope and Future Opportunities in Conventional and Microwave-Assisted Pyrolysis Technologies , 2022, Process Safety and Environmental Protection.
[16] S. Idrus,et al. Performance Monitoring of Anaerobic Digestion at Various Organic Loading Rates of Commercial Malaysian Food Waste , 2022, Frontiers in Bioengineering and Biotechnology.
[17] A. F. Mohedano,et al. Energy recovery from food waste and garden and park waste: Anaerobic co-digestion versus hydrothermal treatment and anaerobic co-digestion. , 2022, Chemosphere.
[18] R. Paffenroth,et al. Accuracy of Predictions Made by Machine Learned Models for Biocrude Yields Obtained from Hydrothermal Liquefaction of Organic Wastes , 2022, Chemical Engineering Journal.
[19] Nazia Hossain,et al. Progress in biohythane production from microalgae-wastewater sludge co-digestion: An integrated biorefinery approach. , 2022, Biotechnology advances.
[20] Joshua S. Heyne,et al. Sustainable Aviation Fuel from Hydrothermal Liquefaction of Wet Wastes , 2022, Energies.
[21] Jillian L. Goldfarb,et al. Impact of Co-Hydrothermal carbonization of animal and agricultural waste on hydrochars’ soil amendment and solid fuel properties , 2022, Biomass and Bioenergy.
[22] D. Zuzolo,et al. Circular economy and secondary raw materials from fruits as sustainable source for recovery and reuse. A review , 2022, Trends in Food Science & Technology.
[23] A. Pugazhendhi,et al. Processing of Household Waste Via Hydrothermal Gasification and Hydrothermal Liquefaction For Bio-oil and Bio-hydrogen Production: Comparison with RSM Studies , 2022, Journal of Environmental Chemical Engineering.
[24] M. Tabatabaei,et al. Wet wastes to bioenergy and biochar: A critical review with future perspectives , 2022, Science of The Total Environment.
[25] K. Rajendran,et al. Comparative study of pyrolysis and hydrothermal liquefaction of microalgal species: Analysis of product yields with reaction temperature , 2021, Fuel.
[26] A. Dalai,et al. Emulsification of bio-crude produced from agricultural waste via hydrothermal liquefaction process , 2021 .
[27] Yuanhui Zhang,et al. Towards transportation fuel production from food waste: Potential of biocrude oil distillates for gasoline, diesel, and jet fuel , 2021 .
[28] Marie S. Swita,et al. Extended Catalyst Lifetime Testing for HTL Biocrude Hydrotreating to Produce Fuel Blendstocks from Wet Wastes , 2021, ACS Sustainable Chemistry & Engineering.
[29] A. Milbrandt,et al. Food waste disposal and utilization in the United States: A spatial cost benefit analysis , 2021 .
[30] Cinzia Passerini,et al. Co-processing of Hydrothermal Liquefaction Sewage Sludge Biocrude with a Fossil Crude Oil by Codistillation: A Detailed Characterization Study by FTICR Mass Spectrometry , 2021, Energy & Fuels.
[31] Zhidan Liu,et al. Elemental migration and transformation during hydrothermal liquefaction of biomass. , 2021, Journal of hazardous materials.
[32] G. Robertson,et al. Understanding the nature of bio-asphaltenes produced during hydrothermal liquefaction , 2021 .
[33] D. Chiaramonti,et al. Towards a better understanding of the HTL process of lignin-rich feedstock , 2021, Scientific Reports.
[34] A. Dalai,et al. Taguchi-based process optimization for activation of agro-food waste biochar and performance test for dye adsorption. , 2021, Chemosphere.
[35] Longlong Ma,et al. Two-Step Esterification–Hydrogenation of Bio-Oil to Alcohols and Esters over Raney Ni Catalysts , 2021, Catalysts.
[36] A. Dalai,et al. Slow pyrolysis of agro-food wastes and physicochemical characterization of biofuel products. , 2021, Chemosphere.
[37] N. Tippayawong,et al. Conversion of tobacco processing waste to biocrude oil via hydrothermal liquefaction in a multiple batch reactor , 2021, Clean Technologies and Environmental Policy.
[38] Shuzhong Wang,et al. Biocrude Upgrading in Different Solvents after Microalgae Hydrothermal Liquefaction , 2021 .
[39] Yimin Zeng,et al. Advancing the application of bio-oils by co-processing with petroleum intermediates: A review , 2021, Energy Conversion and Management: X.
[40] R. Bhandari,et al. Life cycle assessment on the treatment of organic waste streams by anaerobic digestion, hydrothermal carbonization and incineration. , 2021, Waste management.
[41] C. Brewer,et al. Hydrothermal Liquefaction of Food Waste: Effect of Process Parameters on Product Yields and Chemistry , 2021, Frontiers in Sustainable Food Systems.
[42] J. Kulczycka,et al. Quantification of material recovery from meat waste incineration - An approach to an updated food waste hierarchy. , 2021, Journal of hazardous materials.
[43] Sirshendu Chatterjee,et al. Comparative Analysis of Nutritional Constituents, Antioxidant and Antimicrobial Activities of Some Common Vegetable Wastes , 2021 .
[44] Hafiz M.N. Iqbal,et al. Socio-Economic and Environmental Impacts of Biomass Valorisation: A Strategic Drive for Sustainable Bioeconomy , 2021, Sustainability.
[45] Yujie Zhao,et al. Catalytic hydrothermal liquefaction of peanut shell for the production aromatic rich monomer compounds , 2021, Journal of the Energy Institute.
[46] Alex D. Paulsen,et al. Metal oxide supported Ni-impregnated bifunctional catalysts for controlling char formation and maximizing energy recovery during catalytic hydrothermal liquefaction of food waste , 2021, Sustainable Energy & Fuels.
[47] Yuanhui Zhang,et al. Development of a mobile, pilot scale hydrothermal liquefaction reactor: Food waste conversion product analysis and techno-economic assessment , 2021 .
[48] P. Savage,et al. Effect of Process Variables on Food Waste Valorization via Hydrothermal Liquefaction , 2021 .
[49] V. Orsat,et al. Assessment of carrot rejects and wastes for food product development and as a biofuel , 2020, Biomass Conversion and Biorefinery.
[50] Gopalakrishnan Kumar,et al. Food waste valorization: Biofuels and value added product recovery , 2020, Bioresource Technology Reports.
[51] A. Pugazhendhi,et al. Wastewater based microalgal biorefinery for bioenergy production: Progress and challenges. , 2020, The Science of the total environment.
[52] R. Solera,et al. Enhanced hydrogen production from sewage sludge by cofermentation with wine vinasse , 2020, International Journal of Hydrogen Energy.
[53] Wei Hsin Chen,et al. Optimization of food waste hydrothermal liquefaction by a two-step process in association with a double analysis , 2020 .
[54] J. Arun,et al. An insight into carbon balance of product streams from hydrothermal liquefaction of Scenedesmus abundans biomass , 2020 .
[55] Paul E. Yelvington,et al. Synergistic Effects of Inexpensive Mixed Metal Oxides for Catalytic Hydrothermal Liquefaction of Food Wastes , 2020 .
[56] B. Zhang,et al. Hydrothermal liquefaction of fresh lemon-peel and Spirulina platensis blending -operation parameter and biocrude chemistry investigation , 2020 .
[57] Amit Kumar,et al. The Upgrading of Bio‐Oil via Hydrodeoxygenation , 2020 .
[58] Xun Hu. Stabilization of Bio‐oil via Esterification , 2020 .
[59] Xun Hu,et al. Biomass pyrolysis: A review of the process development and challenges from initial researches up to the commercialisation stage , 2019, Journal of Energy Chemistry.
[60] P. Savage,et al. Biocrude Production from Fast and Isothermal Hydrothermal Liquefaction of Chitin , 2019, Energy & Fuels.
[61] B. Wehrli,et al. Nutrient Behavior in Hydrothermal Carbonization Aqueous Phase following Recirculation and Reuse. , 2019, Environmental science & technology.
[62] Yuanhui Zhang,et al. Experimental and model enhancement of food waste hydrothermal liquefaction with combined effects of biochemical composition and reaction conditions. , 2019, Bioresource technology.
[63] C. Chu,et al. Liquefaction of Biomass and Upgrading of Bio-Oil: A Review , 2019, Molecules.
[64] Lasse Rosendahl,et al. Continuous Hydrothermal Liquefaction of Biomass: A Critical Review , 2018, Energies.
[65] Yuanhui Zhang,et al. Renewable diesel blendstocks produced by hydrothermal liquefaction of wet biowaste , 2018, Nature Sustainability.
[66] Y. Demirel,et al. Integration of biology, ecology and engineering for sustainable algal-based biofuel and bioproduct biorefinery , 2018, Bioresources and Bioprocessing.
[67] Patrick Biller,et al. Continuous Hydrothermal Liquefaction of Biomass in a Novel Pilot Plant with Heat Recovery and Hydraulic Oscillation , 2018, Energies.
[68] S. Baroutian,et al. Physicochemical, structural and combustion characterization of food waste hydrochar obtained by hydrothermal carbonization. , 2018, Bioresource technology.
[69] Yuping Xu,et al. Hydrotreatment of bio-oil distillates produced from pyrolysis and hydrothermal liquefaction of duckweed: A comparison study. , 2018, The Science of the total environment.
[70] F. Donsì,et al. Effect of pulsed electric fields and high pressure homogenization on the aqueous extraction of intracellular compounds from the microalgae Chlorella vulgaris , 2018 .
[71] Michael T. Timko,et al. Catalytic Hydrothermal Liquefaction of Food Waste Using CeZrOx , 2018 .
[72] J. Tester,et al. Acid and Alkali Catalyzed Hydrothermal Liquefaction of Dairy Manure Digestate and Food Waste , 2017 .
[73] Mark D. Bearden,et al. Conceptual Biorefinery Design and Research Targeted for 2022: Hydrothermal Liquefacation Processing of Wet Waste to Fuels , 2017 .
[74] Chiu-Yue Lin,et al. Research perspectives on constraints, prospects and opportunities in biohydrogen production , 2017 .
[75] Sheila Samsatli,et al. Biorefineries and the food, energy, water nexus — towards a whole systems approach to design and planning , 2017 .
[76] Jack Y K Cheng,et al. Effects of moisture content of food waste on residue separation, larval growth and larval survival in black soldier fly bioconversion. , 2017, Waste management.
[77] D. Chadwick,et al. Effects of adding bulking agents on the biodrying of kitchen waste and the odor emissions produced. , 2017, Journal of environmental sciences.
[78] J. Tester,et al. Characterization of the solid products from hydrothermal liquefaction of waste feedstocks from food and agricultural industries , 2017 .
[79] C. Xu,et al. Investigation of an alternative cell disruption approach for improving hydrothermal liquefaction of microalgae , 2017 .
[80] Yen Yee Chong,et al. Emulsification of Bio-oil and Diesel , 2017 .
[81] Stella Bezergianni,et al. Hydrothermal liquefaction of various biomass and waste feedstocks for biocrude production: a state of the art review. , 2017 .
[82] B. Reeder,et al. Enzymatic pre‐treatment of microalgae cells for enhanced extraction of proteins , 2017, Engineering in life sciences.
[83] Marie S. Swita,et al. Quantitative Characterization of Aqueous Byproducts from Hydrothermal Liquefaction of Municipal Wastes, Food Industry Wastes, and Biomass Grown on Waste , 2017 .
[84] Wei Hsin Chen,et al. Emulsification analysis of bio-oil and diesel under various combinations of emulsifiers , 2016 .
[85] A. Roubaud,et al. Analysis and comparison of bio-oils obtained by hydrothermal liquefaction and fast pyrolysis of beech wood , 2016 .
[86] Zhanying Zhang,et al. Biofuels from food processing wastes. , 2016, Current opinion in biotechnology.
[87] Geert Haarlemmer,et al. Energy valorisation of food processing residues and model compounds by hydrothermal liquefaction , 2016 .
[88] L. Rosendahl,et al. Co-processing potential of HTL bio-crude at petroleum refineries. Part 2: A parametric hydrotreating study , 2016 .
[89] S. Shanthakumar,et al. Challenges and opportunities in application of microalgae (Chlorophyta) for wastewater treatment: a review. , 2015 .
[90] Raymond R. Tan,et al. Effect of process parameters on hydrothermal liquefaction of oil palm biomass for bio-oil production and its life cycle assessment. , 2015 .
[91] Gursong Yoo,et al. Lipid content in microalgae determines the quality of biocrude and Energy Return On Investment of hydrothermal liquefaction , 2015 .
[92] V. Kakani,et al. Industrial sugar beets to biofuel: Field to fuel production system and cost estimates , 2015 .
[93] Ji-Lu Zheng,et al. Alkaline hydrothermal liquefaction of swine carcasses to bio-oil. , 2015, Waste management.
[94] Oswer,et al. Sustainable Management of Food Basics , 2015 .
[95] E. Dinjus,et al. Influence of the heating rate and the potassium concentration of the feed solution on the hydrothermal liquefaction of used yeast and apple pomace under reducing conditions , 2015 .
[96] Swaptik Chowdhury,et al. The incorporation of wood waste ash as a partial cement replacement material for making structural grade concrete: An overview , 2015 .
[97] Bo B. Iversen,et al. Construction and Commissioning of a Continuous Reactor for Hydrothermal Liquefaction , 2015 .
[98] D. W. Dhar,et al. Cell disruption methods for improving lipid extraction efficiency in unicellular microalgae , 2015 .
[99] N. Qureshi,et al. Ethanol production from food waste at high solids content with vacuum recovery technology. , 2015, Journal of agricultural and food chemistry.
[100] B. Haynes,et al. Two-stage hydrothermal liquefaction of a high-protein microalga , 2015 .
[101] Susanne B. Jones,et al. Hydrothermal liquefaction of biomass: developments from batch to continuous process. , 2015, Bioresource technology.
[102] Phillip E. Savage,et al. Hydrothermal Treatment of Protein, Polysaccharide, and Lipids Alone and in Mixtures , 2014 .
[103] Jeeban Poudel,et al. A study on torrefaction of food waste , 2014 .
[104] W. Jong,et al. Introduction: Socioeconomic Aspects of Biomass Conversion , 2014 .
[105] Zhengang Liu,et al. Enzyme-assisted hydrothermal treatment of food waste for co-production of hydrochar and bio-oil. , 2014, Bioresource technology.
[106] M. Irfan,et al. Ethanol production from agricultural wastes using Sacchromyces cervisae , 2014, Brazilian journal of microbiology : [publication of the Brazilian Society for Microbiology].
[107] Zhanyou Chi,et al. Sequential hydrothermal fractionation of yeast Cryptococcus curvatus biomass. , 2014, Bioresource technology.
[108] Jeramie J. Adams. Asphaltene Adsorption, a Literature Review , 2014 .
[109] Juan Miao,et al. Hydrothermal liquefaction of Litsea cubeba seed to produce bio-oils. , 2013, Bioresource technology.
[110] Øyvind Skreiberg,et al. Comparative Assessment of Wet Torrefaction , 2013 .
[111] Jalal Abedi,et al. Adding value to onion (Allium cepa L.) waste by subcritical water treatment , 2013 .
[112] Guangming Zeng,et al. Comparative studies of thermochemical liquefaction characteristics of microalgae, lignocellulosic biomass and sewage sludge. , 2013 .
[113] Amber L. Milliren,et al. Kinetics of soybean oil hydrolysis in subcritical water , 2013 .
[114] Héctor A. Ruiz,et al. Hydrothermal processing, as an alternative for upgrading agriculture residues and marine biomass according to the biorefinery concept: A review , 2013 .
[115] Phillip E. Savage,et al. Fast Hydrothermal Liquefaction of Nannochloropsis sp. To Produce Biocrude , 2013 .
[116] Michael Kornaros,et al. Optimization of thermo-chemical hydrolysis of kitchen wastes. , 2013, Waste management.
[117] Carol Sze Ki Lin,et al. Valorisation of bakery waste for succinic acid production. , 2013 .
[118] Lei Zhang,et al. Long-term anaerobic digestion of food waste stabilized by trace elements. , 2012, Waste management.
[119] R. Hernandez,et al. Screening of industrial wastewaters as feedstock for the microbial production of oils for biodiesel production and high-quality pigments , 2012 .
[120] Razif Harun,et al. Microalgal cell disruption for biofuel development , 2012 .
[121] A. Bridgwater. Review of fast pyrolysis of biomass and product upgrading , 2012 .
[122] Jun Wang,et al. Characterization of products from hydrothermal liquefaction and carbonation of biomass model compounds and real biomass , 2011 .
[123] Himadri Roy Ghatak,et al. Biorefineries from the perspective of sustainability: Feedstocks, products, and processes , 2011 .
[124] Shu-lin Chen,et al. Lipid Production by Culturing Oleaginous Yeast and Algae with Food Waste and Municipal Wastewater in an Integrated Process , 2011, Applied biochemistry and biotechnology.
[125] Shu-lin Chen,et al. Oil production by oleaginous yeasts using the hydrolysate from pretreatment of wheat straw with dilute sulfuric acid. , 2011, Bioresource technology.
[126] L. Rosendahl,et al. Hydrothermal liquefaction of biomass: A review of subcritical water technologies , 2011 .
[127] J. Akhtar,et al. A review on process conditions for optimum bio-oil yield in hydrothermal liquefaction of biomass , 2011 .
[128] Deniz Cekmecelioglu,et al. Cost-effective approach to ethanol production and optimization by response surface methodology. , 2011, Waste management.
[129] Jie Chang,et al. Upgrading of Bio-oil by Catalytic Esterification and Determination of Acid Number for Evaluating Esterification Degree , 2010 .
[130] Y. Romero,et al. Hydrodeoxygenation of benzofuran and its oxygenated derivatives (2,3-dihydrobenzofuran and 2-ethylphenol) over NiMoP/Al2O3 catalyst , 2009 .
[131] Yue-qin Tang,et al. Ethanol production from kitchen waste using the flocculating yeast Saccharomyces cerevisiae strain KF-7 , 2008 .
[132] Thallada Bhaskar,et al. Hydrothermal upgrading of wood biomass: Influence of the addition of K2CO3 and cellulose/lignin ratio , 2008 .
[133] Qunhui Wang,et al. ETHANOL PRODUCTION FROM KITCHEN GARBAGE USING RESPONSE SURFACE METHODOLOGY , 2008 .
[134] W. Suntornsuk,et al. Optimization of beta-carotene production by Rhodotorula glutinis DM28 in fermented radish brine. , 2008, Bioresource technology.
[135] M. Balat,et al. Mechanisms of Thermochemical Biomass Conversion Processes. Part 3: Reactions of Liquefaction , 2008 .
[136] Y. Ohkouchi,et al. Direct production of L+-lactic acid from starch and food wastes using Lactobacillus manihotivorans LMG18011. , 2006, Bioresource technology.
[137] Kunio Arai,et al. Water density effect on lignin gasification over supported noble metal catalysts in supercritical water , 2006 .
[138] Fernando M. Lanças,et al. Hydrolysis of corn oil using subcritical water , 2006 .
[139] C. Ratledge,et al. Regulation of lipid accumulation in oleaginous micro-organisms. , 2002, Biochemical Society transactions.
[140] Devinder Singh,et al. Improving yields, compatibility and tailoring the properties of hydrothermal liquefaction bio-crude using yellow grease , 2023, Fuel.
[141] G. Robertson,et al. Catalytic hydrothermal liquefaction of food waste: Influence of catalysts on bio-crude yield, asphaltenes, and pentane soluble fractions , 2022, Fuel.
[142] K. Jaiswal,et al. Recent advances and viability in sustainable thermochemical conversion of sludge to bio-fuel production , 2022, Fuel.
[143] Xuebin Feng,et al. Food waste pyrolysis by traditional heating and microwave heating: A review , 2022, Fuel.
[144] Andrew R. Teixeira,et al. Elucidating the role of reactive nitrogen intermediates in hetero-cyclization during hydrothermal liquefaction of food waste , 2022, Green Chemistry.
[145] Wei Hsin Chen,et al. Analysis of physicochemical properties of liquefaction bio-oil from food waste , 2019, Energy Procedia.
[146] Shikha Dahiya,et al. Food waste biorefinery: Sustainable strategy for circular bioeconomy. , 2018, Bioresource technology.
[147] Nanda Kishore,et al. A review on hydrothermal liquefaction of biomass , 2018 .
[148] E. Muzenda,et al. Torrefaction of landfill food waste for possible application in biomass co-firing. , 2018, Waste management.
[149] Y. Zhang,et al. 5 - Hydrothermal liquefaction of protein-containing feedstocks , 2018 .
[150] M. Eppink,et al. Energy efficient bead milling of microalgae: Effect of bead size on disintegration and release of proteins and carbohydrates. , 2017, Bioresource technology.
[151] J. Tester,et al. Biomass conversion to bio-oil using sub-critical water: Study of model compounds for food processing waste , 2017 .
[152] Sanjib Kumar Karmee,et al. Liquid biofuels from food waste: Current trends, prospect and limitation , 2016 .
[153] É. Latrille,et al. Anaerobic digestate as substrate for microalgae culture: the role of ammonium concentration on the microalgae productivity. , 2014, Bioresource technology.
[154] M. Škerget,et al. Subcritical Water – a Perspective Reaction Media for Biomass Processing to Chemicals : Study on Cellulose Conversion as a Model for Biomass , 2013 .
[155] Xiujin Li,et al. Influence of Temperature on Hydrolysis Acidification of Food Waste , 2012 .
[156] S. Bhatia,et al. Subcritical water liquefaction of oil palm fruit press fiber for the production of bio-oil: effect of catalysts. , 2010, Bioresource technology.
[157] Anastasia Zabaniotou,et al. Utilization of sewage sludge in EU application of old and new methods--A review , 2008 .
[158] B. Zhang,et al. Anaerobic digestion of kitchen wastes in a single-phased anaerobic sequencing batch reactor (ASBR) with gas-phased absorb of CO2. , 2005, Journal of environmental sciences.
[159] Akiyoshi Sakoda,et al. Liquid-phase thermogravimetric measurement of reaction kinetics of the conversion of biomass wastes in pressurized hot water: a kinetic study , 2003 .
[160] Mostafa A. Warith,et al. SOLID WASTE MANAGEMENT: NEW TRENDS IN LANDFILL DESIGN , 2003 .
[161] Hiroyuki Yoshida,et al. Production of Organic Acids and Amino Acids from Fish Meat by Sub‐Critical Water Hydrolysis , 1999, Biotechnology progress.
[162] Yutaka Dote,et al. Studies on the direct liquefaction of protein-contained biomass: The distribution of nitrogen in the products , 1996 .
[163] Lei Luo,et al. Technical progress and perspective on the thermochemical conversion of kitchen waste and relevant applications: A comprehensive review , 2022, Fuel.