Environmental Evaluation of Polyhydroxyalkanoates from Animal Slaughtering Waste Using Material Input Per Service Unit.
暂无分享,去创建一个
N. Ali | M. Rehan | M. Rashid | Arshid M. Ali | M. Koller | A. Summan | Khurram Shahzad | Syed Ali Musstjab Akbar Shah Eqani | I. M. I. Ismail | I. M. Ismail
[1] A. Hospido,et al. Prospective LCA to provide environmental guidance for developing waste-to-PHA biorefineries , 2022, Journal of Cleaner Production.
[2] R. D. Tyagi,et al. Trends and challenges in the valorization of kitchen waste to polyhydroxyalkanoates. , 2022, Bioresource technology.
[3] S. Chianese,et al. Sustainable Process for the Production of Poly(3-hydroxybutyrate-co-3-hydroxyvalerate) from Renewable Resources: A Simulation Study , 2022, ACS Sustainable Chemistry and Engineering.
[4] M. Awasthi,et al. Agro waste as a potential carbon feedstock for poly-3-hydroxy alkanoates production: Commercialization potential and technical hurdles. , 2022, Bioresource technology.
[5] P. Neubauer,et al. Continuous feeding strategy for polyhydroxyalkanoate production from solid waste animal fat at laboratory‐ and pilot‐scale , 2022, Microbial biotechnology.
[6] F. Kong,et al. A Comprehensive Review on Utilization of Slaughterhouse By-Product: Current Status and Prospect , 2022, Sustainability.
[7] S. Chianese,et al. Poly(3-hydroxybutyrate) Production From Methane in Bubble Column Bioreactors: Process Simulation and Design Optimization. , 2022, New biotechnology.
[8] M. Koller,et al. Polyhydroxyalkanoate (PHA) Biopolyesters - Emerging and Major Products of Industrial Biotechnology , 2022, The EuroBiotech Journal.
[9] Yingjuan Fu,et al. Green fractionation approaches for isolation of biopolymers and the critical technical challenges , 2022, Industrial Crops and Products.
[10] M. Koller,et al. A New Wave of Industrialization of PHA Biopolyesters , 2022, Bioengineering.
[11] J. Haycock,et al. Polyhydroxyalkanoates and their advances for biomedical applications. , 2022, Trends in molecular medicine.
[12] K. Shahzad,et al. Sustainability Evaluation of Polyhydroxyalkanoate Production from Slaughterhouse Residues Utilising Emergy Accounting , 2021, Polymers.
[13] Ashok Pandey,et al. Current state of the art biotechnological strategies for conversion of watermelon wastes residues to biopolymers production: A review , 2021, Chemosphere.
[14] R. Navia,et al. Genome-Wide Metabolic Reconstruction of the Synthesis of Polyhydroxyalkanoates from Sugars and Fatty Acids by Burkholderia Sensu Lato Species , 2021, Microorganisms.
[15] E. Shishatskaya,et al. Properties of degradable polyhydroxyalkanoates with different monomer compositions. , 2021, International journal of biological macromolecules.
[16] E. R. Rene,et al. Polyhydroxyalkanoate (PHA) production via resource recovery from industrial waste streams: A review of techniques and perspectives. , 2021, Bioresource technology.
[17] P. Sedlácek,et al. The underexplored role of diverse stress factors in microbial biopolymer synthesis. , 2021, Bioresource technology.
[18] Surinder Kumar,et al. Bioprocess for co-production of polyhydroxybutyrate and violacein using Himalayan bacterium Iodobacter sp. PCH194. , 2021, Bioresource technology.
[19] R. Bhat,et al. Valorization of food processing wastes and by-products for bioplastic production , 2020 .
[20] Anindya Mukherjee,et al. Polyhydroxyalkanoates – Linking Properties, Applications and End-of-life Options , 2020 .
[21] M. Narodoslawsky,et al. LCA, Sustainability and Techno-Economic Studies for PHA Production , 2020 .
[22] K. Shahzad,et al. The economic and environmental analysis of energy production from slaughterhouse waste in Saudi Arabia , 2020, Environment, Development and Sustainability.
[23] N. Muhammad,et al. Keratin - Based materials for biomedical applications , 2020, Bioactive materials.
[24] Md. Abu Sayid Mia,et al. Alkali Enzymatic Extraction of Keratin Protein from Chicken Feather Waste in Bangladesh , 2019, Iranian Journal of Energy and Environment.
[25] Paulo Freire da Silva,et al. Cleaner Production in the textile industry and its relationship to sustainable development goals , 2019, Journal of Cleaner Production.
[26] M. Rahman. Collagen of Extracellular Matrix from Marine Invertebrates and Its Medical Applications , 2019, Marine drugs.
[27] M. Basaglia,et al. Bacterial Production of PHAs from Lipid-Rich by-Products , 2019 .
[28] K. Shahzad,et al. Waste Streams of the Animal-Processing Industry as Feedstocks to Produce Polyhydroxyalkanoate Biopolyesters , 2018 .
[29] M. Amaral,et al. Environmental and economic evaluation of end-of-life reverse osmosis membranes recycling by means of chemical conversion , 2018 .
[30] S. Gheewala,et al. Eco-Efficiency Assessment of Bioplastics Production Systems and End-of-Life Options , 2018 .
[31] Martin Koller,et al. Techno-economic feasibility of waste biorefinery: Using slaughtering waste streams as starting material for biopolyester production. , 2017, Waste management.
[32] G. B. Tseghai,et al. Surface modification of cotton using slaughterhouse wastes , 2017 .
[33] F. Toldrá,et al. New insights into meat by-product utilization. , 2016, Meat science.
[34] Philip J. Longhurst,et al. Biomass resources and biofuels potential for the production of transportation fuels in Nigeria , 2016 .
[35] Irenilza de Alencar Nääs,et al. Environmental impact reduction as a result of cleaner production implementation: a case study in the truck industry , 2016 .
[36] G. Adamus,et al. Carbon Sources for Polyhydroxyalkanoates and an Integrated Biorefinery , 2016, International journal of molecular sciences.
[37] Michael Lettenmeier,et al. Integrating resource efficiency in business strategies: a mixed-method approach for environmental life cycle assessment in the single-serve coffee value chain , 2016 .
[38] Sebastian L Riedel,et al. Polyhydroxyalkanoates production with Ralstonia eutropha from low quality waste animal fats. , 2015, Journal of biotechnology.
[39] Michael Narodoslawsky,et al. LCA of PHA Production – Identifying the Ecological Potential of Bio-plastic , 2015 .
[40] Martin Koller,et al. Biomediated production of structurally diverse poly(hydroxyalkanoates) from surplus streams of the animal processing industry ) , 2015 .
[41] Iuliana Spiridon,et al. PLA/chitosan/keratin composites for biomedical applications. , 2014, Materials science & engineering. C, Materials for biological applications.
[42] Leonard Ortolano,et al. Cleaner production in Pakistan's leather and textile sectors , 2014 .
[43] Elesandro Antonio Baptista,et al. Cleaner Production Associated with Financial and Environmental Benefits: A Case Study on Automotive Industry , 2013 .
[44] Martin Koller,et al. Strategies for recovery and purification of poly[(R)‐3‐hydroxyalkanoates] (PHA) biopolyesters from surrounding biomass , 2013 .
[45] Islam,et al. Effect of age on slaughterhouse by-products of indigenous cattle of Bangladesh. , 2013 .
[46] Anna Salerno,et al. Biopolymer from industrial residues: Life cycle assessment of poly(hydroxyalkanoates) from whey , 2013 .
[47] Martin Koller,et al. Comparison of ecological footprint for biobased PHA production from animal residues utilizing different energy resources , 2013, Clean Technologies and Environmental Policy.
[48] Karl-Heinz Kettl,et al. Ecological Footprint Comparison of Biobased Pha Production from Animal Residues , 2012 .
[49] Holger Rohn,et al. Application of the MIPS method for assessing the sustainability of production–consumption systems of food , 2012 .
[50] Martin Koller,et al. Process optimization for efficient biomediated PHA production from animal-based waste streams , 2012, Clean Technologies and Environmental Policy.
[51] Martin Koller,et al. Process Design and Evaluation of Biobased Polyhydroxyalkanoates (pha) Production , 2011 .
[52] Tajalli Keshavarz,et al. Polyhydroxyalkanoates: bioplastics with a green agenda. , 2010, Current opinion in microbiology.
[53] Martin Koller,et al. Potential of various archae- and eubacterial strains as industrial polyhydroxyalkanoate producers from whey. , 2007, Macromolecular bioscience.
[54] L. Thyselius,et al. Anaerobic treatment of animal byproducts from slaughterhouses at laboratory and pilot scale , 2003, Applied biochemistry and biotechnology.
[55] Friedrich Hinterberger,et al. Material flows vs. 'natural capital': What makes an economy sustainable? , 1997 .
[56] Edgar G. Hertwich,et al. Evaluating the environmental impact of products and production processes: a comparison of six methods , 1997 .
[57] R. M. Lafferty,et al. A rapid gas chromatographic method for the determination of poly-β-hydroxybutyric acid in microbial biomass , 1978, European journal of applied microbiology and biotechnology.
[58] De Oliviera Neto,et al. AN ASSESSMENT OF THE ENVIRONMENTAL AND ECONOMIC BENEFITS OF IMPLEMENTING REVERSE LOGISTICS IN THE TEXTURED GLASS SECTOR , 2014 .
[59] Minoru Akiyama,et al. Environmental life cycle comparison of polyhydroxyalkanoates produced from renewable carbon resources by bacterial fermentation , 2003 .