Organic waste biorefineries: Looking towards implementation.
暂无分享,去创建一个
Thomas F. Astrup | Alberto Pivato | Lidia Lombardi | Alessandra Polettini | Raffaella Pomi | Luca Alibardi | Maria Cristina Lavagnolo | Aldo Muntoni | William P. Clarke | Paolo Dessì | Piet N.L. Lens | T. Astrup | L. Lombardi | P. Lens | A. Spagni | W. Clarke | L. Alibardi | M. Lavagnolo | G. De Gioannis | A. Muntoni | A. Polettini | R. Pomi | D. Spiga | A. Pivato | Daniela Spiga | Alessandro Spagni | F. Asunis | Fabiano Asunis | Giorgia De Gioannis | Andreina Rossi | A. Rossi | P. Dessì
[1] A Soares,et al. Biological carbon dioxide utilisation in food waste anaerobic digesters. , 2015, Water research.
[2] G. De Gioannis,et al. Control of fermentation duration and pH to orient biochemicals and biofuels production from cheese whey. , 2019, Bioresource technology.
[3] Stefano Rebecchi,et al. Volatile fatty acids recovery from the effluent of an acidogenic digestion process fed with grape pomace by adsorption on ion exchange resins , 2016 .
[4] S. Kersten,et al. Extraction of volatile fatty acids from fermented wastewater , 2016 .
[5] G. Cappai,et al. Biomass ash characterisation for reuse as additive in composting process , 2019, Biomass and Bioenergy.
[6] R Sarc,et al. Digitalisation and intelligent robotics in value chain of circular economy oriented waste management - A review. , 2019, Waste management.
[7] Steven Van Passel,et al. Environmental assessment of waste feedstock mono-dimensional and bio-refinery systems: Combining manure co-digestion and municipal waste anaerobic digestion , 2018 .
[8] W P Clarke,et al. The uptake of anaerobic digestion for the organic fraction of municipal solid waste - Push versus pull factors. , 2017, Bioresource technology.
[9] S. Cattle,et al. The character and distribution of physical contaminants found in soil previously treated with mixed waste organic outputs and garden waste compost. , 2019, Waste management.
[10] S. Chakraborty,et al. Rapid assessment of algal biomass and pigment contents using diffuse reflectance spectroscopy and chemometrics , 2017 .
[11] E. Trably,et al. The environmental biorefinery: state-of-the-art on the production of hydrogen and value-added biomolecules in mixed-culture fermentation , 2018 .
[12] M. Awasthi,et al. Organic solid waste biorefinery: Sustainable strategy for emerging circular bioeconomy in China , 2020 .
[13] Damon S. Hartley,et al. Distributed biomass supply chain cost optimization to evaluate multiple feedstocks for a biorefinery , 2019, Applied Energy.
[14] A Polettini,et al. A review of dark fermentative hydrogen production from biodegradable municipal waste fractions. , 2013, Waste management.
[15] G. Cappai,et al. Biomass ash reutilisation as an additive in the composting process of organic fraction of municipal solid waste. , 2017, Waste management.
[16] Matthias Wessling,et al. Membrane processes in biorefinery applications , 2013 .
[17] M. Boni,et al. Fermentative H2 production from food waste: Parametric analysis of factor effects. , 2019, Bioresource technology.
[18] M. Pidou,et al. Chemically reactive membrane crystallisation reactor for CO2–NH3 absorption and ammonium bicarbonate crystallisation: Kinetics of heterogeneous crystal growth , 2020 .
[19] Huajiang Huang,et al. A review of separation technologies in current and future biorefineries , 2008 .
[20] Merlin Alvarado-Morales,et al. GHG emission factors for bioelectricity, biomethane, and bioethanol quantified for 24 biomass substrates with consequential life-cycle assessment. , 2016, Bioresource technology.
[21] R. Tyagi,et al. Bioconversion of waste (water)/residues to bioplastics- A circular bioeconomy approach. , 2019, Bioresource technology.
[22] R. P. Rastogi,et al. Microalgal hydrogen production - A review. , 2017, Bioresource technology.
[23] R. Dinsdale,et al. Increased biohydrogen yields, volatile fatty acid production and substrate utilisation rates via the electrodialysis of a continually fed sucrose fermenter. , 2017, Bioresource technology.
[24] Jianjun Hu,et al. Photo-fermentative hydrogen production from crop residue: A mini review. , 2017, Bioresource technology.
[25] A. Muntoni. WASTE BIOREFINERIES: OPPORTUNITIES AND PERSPECTIVES , 2019, Detritus.
[26] Omprakash Sarkar,et al. Waste biorefinery models towards sustainable circular bioeconomy: Critical review and future perspectives. , 2016, Bioresource technology.
[27] P. Sgarbossa,et al. Storage potential and residual emissions from fresh and stabilized waste samples from a landfill simulation experiment. , 2018, Waste management.
[28] M. J. Allen,et al. Organic waste as a sustainable feedstock for platform chemicals , 2017, Faraday discussions.
[29] Monika,et al. Recycling of Organic Wastes in Agriculture: An Environmental Perspective , 2019, International Journal of Environmental Research.
[30] Ludo Diels,et al. Biowaste biorefinery in Europe: opportunities and research & development needs. , 2015, New biotechnology.
[31] Yu Qin,et al. Nutrient recovery technologies integrated with energy recovery by waste biomass anaerobic digestion. , 2018, Bioresource technology.
[32] P. Pavan,et al. Optimization of urban waste fermentation for volatile fatty acids production. , 2019, Waste management.
[33] Raffaello Cossu,et al. Composition variability of the organic fraction of municipal solid waste and effects on hydrogen and methane production potentials. , 2015, Waste management.
[34] C. Buisman,et al. Production of Caproic Acid from Mixed Organic Waste: An Environmental Life Cycle Perspective , 2017, Environmental science & technology.
[35] Tom L. Richard,et al. Integrated acidogenic digestion and carboxylic acid separation by nanofiltration membranes for the lignocellulosic carboxylate platform , 2015 .
[36] P. Hennebert. Proposal of concentration limits for determining the hazard property HP 14 for waste using ecotoxicological tests. , 2017, Waste management.
[37] A. Koutinas,et al. A roadmap towards a circular and sustainable bioeconomy through waste valorization , 2017 .
[38] Chen-Yeon Chu,et al. Fermentative biohydrogen production and its byproducts: A mini review of current technology developments , 2018 .
[39] Veronica Martinez-Sanchez,et al. Material resources, energy, and nutrient recovery from waste: are waste refineries the solution for the future? , 2013, Environmental science & technology.
[40] G. Zeeman,et al. Mitigation of micropollutants for black water application in agriculture via composting of anaerobic sludge. , 2016, Journal of hazardous materials.
[41] M Rehan,et al. Waste biorefineries: Enabling circular economies in developing countries. , 2017, Bioresource technology.
[42] A. Matharu,et al. Opportunity for high value-added chemicals from food supply chain wastes. , 2016, Bioresource technology.
[43] Knut Conradsen,et al. Importance of waste composition for Life Cycle Assessment of waste management solutions , 2017 .
[44] Dong-Woo Lee,et al. Biohydrogen Production: Strategies to Improve Process Efficiency through Microbial Routes , 2015, International journal of molecular sciences.
[45] Raffaello Cossu,et al. Food waste generation and industrial uses: A review. , 2015, Waste management.
[46] A. Gallipoli,et al. Anaerobic bioconversion of food waste into energy: A critical review. , 2018, Bioresource technology.
[47] P. Alvarenga,et al. Sewage sludge, compost and other representative organic wastes as agricultural soil amendments: Benefits versus limiting factors. , 2015, Waste management.
[48] Christos Galanopoulos,et al. An integrated methodology for the economic and environmental assessment of a biorefinery supply chain , 2020 .
[49] Jiří Jaromír Klemeš,et al. Circular Integration of processes, industries, and economies , 2019, Renewable and Sustainable Energy Reviews.
[50] Carlos Escamilla-Alvarado,et al. An overview of the enzyme potential in bioenergy‐producing biorefineries , 2017 .
[51] Jacob Møller,et al. Modelling of environmental impacts from biological treatment of organic municipal waste in EASEWASTE. , 2011, Waste management.
[52] M. Maroto-Valer,et al. A review of mineral carbonation technologies to sequester CO2. , 2014, Chemical Society reviews.
[53] Sanya Carley,et al. Innovative US energy policy: a review of states' policy experiences , 2013 .
[54] Roberto Turconi,et al. Life cycle assessment of thermal waste-to-energy technologies: review and recommendations. , 2015, Waste management.
[55] M. Diacono,et al. Long-term effects of organic amendments on soil fertility. A review , 2010, Agronomy for Sustainable Development.
[56] R. Cossu,et al. Role of animals in waste management with a focus on invertebrates’ biorefinery: An overview , 2019 .
[57] Jesús Colprim,et al. Microbial electrosynthesis of butyrate from carbon dioxide: Production and extraction. , 2017, Bioelectrochemistry.
[58] Jun Lu,et al. Building the hydrogen economy in China: Drivers, resources and technologies , 2013 .
[59] Yiping Luo,et al. Towards zero waste: A valorization route of washing separation and liquid hot water consecutive pretreatment to achieve solid vinasse based biorefinery , 2020, Journal of Cleaner Production.
[60] Martin Koller,et al. Techno-economic feasibility of waste biorefinery: Using slaughtering waste streams as starting material for biopolyester production. , 2017, Waste management.
[61] Aristotle T. Ubando,et al. Biorefineries in circular bioeconomy: A comprehensive review. , 2019, Bioresource technology.
[62] Sabrina Campanari,et al. Carbon recovery from wastewater through bioconversion into biodegradable polymers. , 2017, New biotechnology.
[63] I. Angelidaki,et al. Biogas and its opportunities—A review , 2018, Frontiers of Environmental Science & Engineering.
[64] V. Vijay,et al. Evaluation of biogas upgrading technologies and future perspectives: a review , 2019, Environmental Science and Pollution Research.
[65] G. De Gioannis,et al. Energy recovery from one- and two-stage anaerobic digestion of food waste. , 2017, Waste management.
[66] W P Clarke,et al. A methanotroph-based biorefinery: Potential scenarios for generating multiple products from a single fermentation. , 2016, Bioresource technology.
[67] Yong Sik Ok,et al. Production of bioplastic through food waste valorization. , 2019, Environment international.
[68] Francesco Cherubini,et al. The biorefinery concept: Using biomass instead of oil for producing energy and chemicals , 2010 .
[69] D. F. Kennedy,et al. Ammonia for hydrogen storage; A review of catalytic ammonia decomposition and hydrogen separation and purification , 2019, International Journal of Hydrogen Energy.
[70] Ioannis V. Skiadas,et al. Toward a common classification approach for biorefinery systems , 2009 .
[71] R. Cossu. From triangles to cycles. , 2009, Waste management.
[72] Reino Laatikainen,et al. Volatile fatty acids as an added value from biowaste. , 2016, Waste management.
[73] W. Ng,et al. Bioconversion of food waste to energy : a review , 2014 .
[74] L. Alibardi,et al. Effects of carbohydrate, protein and lipid content of organic waste on hydrogen production and fermentation products. , 2016, Waste management.
[75] S. Maenpuen,et al. Biotransformation of Plant‐Derived Phenolic Acids , 2018, Biotechnology journal.
[76] Behzad Satari,et al. Citrus processing wastes: environmental impacts, recent advances, and future perspectives in total valorization. , 2018 .
[77] S. Venkata Mohan,et al. Heterotrophic microalgae cultivation to synergize biodiesel production with waste remediation: progress and perspectives. , 2015, Bioresource technology.
[78] D. Tonini,et al. Valorisation of surplus food in the French retail sector: Environmental and economic impacts. , 2019, Waste management.
[79] M. Chakravarthy,et al. Critical considerations in two-stage anaerobic digestion of food waste – A review , 2020 .
[80] Mohammad J Taherzadeh,et al. Process design and economic analysis of a citrus waste biorefinery with biofuels and limonene as products. , 2010, Bioresource technology.
[81] Sławomir Śmiech,et al. Determinants of renewable energy development in the EU countries. A 20-year perspective , 2018, Renewable and Sustainable Energy Reviews.
[82] J. Sadhukhan,et al. Material flow and sustainability analyses of biorefining of municipal solid waste. , 2017, Bioresource technology.
[83] T. Astrup,et al. Life Cycle Assessment of Waste Management: Are We Addressing the Key Challenges Ahead of Us? , 2018, Journal of Industrial Ecology.
[84] Michael V Arbige,et al. Industrial Enzymology: The Next Chapter. , 2019, Trends in biotechnology.
[85] Yue Zhang,et al. Solvent-free membrane extraction of volatile fatty acids from acidogenic fermentation. , 2018, Bioresource technology.
[86] William M. Chirdon,et al. Biobased chemical and energy recovered from waste microbial matrices , 2019 .
[87] G. Fiore,et al. Sustainability of food waste biorefinery: A review on valorisation pathways, techno-economic constraints, and environmental assessment. , 2020, Bioresource technology.
[88] Davide Tonini,et al. A process-oriented life-cycle assessment (LCA) model for environmental and resource-related technologies (EASETECH) , 2019, The International Journal of Life Cycle Assessment.
[89] P. Strong,et al. Methane as a resource: can the methanotrophs add value? , 2015, Environmental science & technology.
[90] L. Lombardi,et al. Techno-economic and environmental assessment of the main biogas upgrading technologies , 2020 .
[91] Prasant Kumar Rout,et al. Production of first and second generation biofuels: A comprehensive review , 2010 .
[92] P.J. Longhurst,et al. Critical review of real-time methods for solid waste characterisation: Informing material recovery and fuel production. , 2017, Waste management.
[93] Renato Baciocchi,et al. Current status and perspectives of accelerated carbonation processes on municipal waste combustion residues , 2007, Environmental monitoring and assessment.
[94] T Astrup,et al. Life-cycle assessment of a waste refinery process for enzymatic treatment of municipal solid waste. , 2012, Waste management.
[95] Antonis C. Kokossis,et al. A Total Site Synthesis approach for the selection, integration and planning of multiple-feedstock biorefineries , 2019, Comput. Chem. Eng..
[96] Wojciech M. Budzianowski,et al. Total Chain Integration of sustainable biorefinery systems , 2016 .
[97] A. Serrano,et al. Challenges of scaling-up PHA production from waste streams. A review. , 2018, Journal of environmental management.
[98] Denny K. S. Ng,et al. Role of bioenergy, biorefinery and bioeconomy in sustainable development: Strategic pathways for Malaysia , 2018 .
[99] Serenella Sala,et al. Techno-economic and profitability analysis of food waste biorefineries at European level. , 2018, Bioresource technology.
[100] Carlos Escamilla-Alvarado,et al. Biohydrogen, biomethane and bioelectricity as crucial components of biorefinery of organic wastes: A review , 2014, Waste management & research : the journal of the International Solid Wastes and Public Cleansing Association, ISWA.
[101] Yu Liu,et al. Turning food waste to energy and resources towards a great environmental and economic sustainability: An innovative integrated biological approach. , 2019, Biotechnology advances.
[102] Anna Björklund,et al. Municipal solid waste management from a systems perspective , 2005 .