Mikrobiell förbehandling Guido Zacchi, LTH. Develop and optimise pretreatment of lignocellulosic agricultural raw materials and rest products 1.Pre-pretreatment.

Slides:



Advertisements
Similar presentations
01/07/2008 JOINT RESEARCH AGREEMENT AIST - Biomass Technology Research Center and UFRJ – Chemistry Institute.
Advertisements

Gas out Biomas in Biomas out (Digestate) Biogas production.
Recent developments of 2G technology Industrial scale documentation BioFuel Technology A/S BioFuel Technology A/S – a pioneer in developing large scale.
1 9/21/2010 Iman Rusmana Department of Biology Bogor Agricultural University What is Ethanol? Ethanol Production From Biomass Ethanol Production From Grains.
Biogas production from sugar beet silage
R. Shanthini 06 Feb 2010 Ethanol as an alternative source of energy Bioethanol is produced from plants that harness the power of the sun to convert water.
Small Scale NZ Biofuel Techno-Economic Investigation VISHESH ACHARYA MASTER OF ENGINEERING DR. BRENT YOUNG CHEMICAL AND MATERIALS ENGINEERING UNIVERSITY.
Powering the Future: Biofuels. Activity: Yeast fermentation Describe the production of ethanol from renewable sources Describe the process of fermentation.
Processing Sweet Sorghum For a Dual Feedstock Bioenergy System Dani Bellmer, Professor Biosystems & Agricultural Engineering Food and Agricultural Products.
NBE Sweden AB The BioEnergy Combine in Härjedalen, Sweden High efficient utilisation of renewable resources Up to 90% utilisation of the raw materials.
Co-digestion of manure with straw and perennial grasses Henrik Bjarne Møller, Department of Engineering, Aarhus University, Denmark.
Improve Xylose Utilization 1.The significance of improving xylose utilization: The commercialization of second-generation bioethanol has not been realized.
Sweet Sorghum Ethanol: In-Field Fermentation Issues Dani Bellmer 1, Ray Huhnke 2 1 Assoc. Professor, Biosystems Engineering & Food and Agricultural Products.
Chapter 11 – Biochemical Fuels
Experiences from the PDU Mats Galbe Department of Chemical Engineering Lund University.
Hema Rughoonundun Research Week Outline of Presentation The MixAlco Process Introduction Sludge Materials and Methods Results Fermentation of sludge.
Anaerobic digestion of crop residues at low temperatures Irene Bohn LUND UNIVERSITY Department of Biotechnology.
Bioconversion of biomass to ethanol-an overview Renata Bura November 25 th, 2008.
Slide 1 Apollo Program for Biomass Liquids What Will it Take? Michael R. Ladisch Laboratory of Renewable Resources Engineering Agricultural and Biological.
José Antonio Pérez Jiménez*, Manuel Jesús Díaz Villanueva, Guadalupe Pinna Hernández Department of Biomass, CTAER Andalucía Foundation, Scientific and.
LAMNET WORKSHOP ROME Lessons Learned from Bioenergy Program Implementation in Brazil JOSE ROBERTO MOREIRA Brazilian National Reference Center on Biomass.
By Dr Ku Syahidah Ku Ismail.  Molecular formulaCH 3 CH 2 OH  Molecular weight46.07 g/mol  Density at 20  C kg/L  Viscosity at 20  C1.2 cP.
Production of Ethanol by Fermenting Sugars. ETHANOL.
By Dr Ku Syahidah Ku Ismail Adapted from Cheng, J. (2010) Biomass to Renewable Energy Processes.
Modeling Biomass Conversion to Transportation Fuels Jacob Miller Advisor: Dr. Eric Larson.
BREW Generic Approach by Martin Patel (Un. Utrecht) Tim Nisbet (Shell) Peter Nossin (DSM) BREW plenary meeting - September 9, 2003.
Use of Amaranth as Feedstock for Bioethanol Production Energy Postgraduate Conference 2013 Nqobile Xaba MSc student North-West University.
Making Biorefineries Competitive: PRO.E.SA TM The only sugar platform available today Guido Ghisolfi June 8, 2012.
Can we produce biofuels without affecting food production and the environment? The World Food Prize, Oct. 19, 2007 Birgitte K. Ahring BioCentrum-DTU &
Biofuels Sustainable development Prof. Melania Muñoz Sustainable development Prof. Melania Muñoz.
Speaker: Jeng-Chen Liu(劉政成) Student ID: P
ERT Biofuel BIO ETHANOL What, Why, How, How much, ….
Optimal Conditions for Batch Tube Pretreatment Hot water only, 210 o C, 6 min -Total xylose yield is 52.1% % xylose and 106% glucose overall mass.
1 Lignocellulosic biomass to ethanol-hydrolysis and fermentation.
Ion Exchange for the Production of Cellulosic Ethanol A.Hammervold, C. Cochran, J. Belsher, K. Childress Sponsored by Trillium FiberFuels, Inc. IntroductionProject.
Biofuels Biodiesel and bioethanol. Exercise in groups For what purposes do we use energy? Which energy sources do you know ?
Utilizing Science & Technology and Innovation for Development Marriott Hotel- Amman, August 13th, 2015.
Biorefinery Annexed to Typical South African Sugar Mill, Part I: Flowsheet development and simulation By: Dr. Mohsen A. Mandegari Research head: Prof.
A Comparison of Batch, Stop- Flow-Stop, and Flowthrough Pretreatments of Corn Stover Chaogang Liu, Charles E. Wyman Thayer School of Engineering Dartmouth.
Optimization of bio-oil yields by demineralization of low quality biomass International Congress and Expo on Biofuels & Bioenergy August 25-27, 2015 Valencia,
Impact of Inhibitors Associated with Lignocellulose Hydrolysate on CBP Yeast and Enzyme Activity Sizwe Mhlongo Energy Postgraduate Conference 2013.
Fossil Fuels Most of our energy needs are met by burning fossil fuels such as coal, petroleum and natural gas. Coal is used to generate electricity and.
Master Thesis May 2010 New Pretreatment Methods for Lignocellulosic Residue for Second Generation Bioethanol Production Student: Yadhu Nath Guragain ID:
Biodiesel and bio ethanol
S-1007 Multi-State Research Committee
Ethanol as an alternative source of energy Bioethanol is produced from plants that harness the power of the sun to convert water and CO 2 to sugars (photosynthesis),
Master Thesis May 2010 New Pretreatment Methods for Lignocellulosic Residue for Second Generation Bioethanol Production Student: Yadhu Nath Guragain ID:
Optimizing conditions for sugar release from municipal solid wastes (MSW) for biofuel production Jwan J. Abdullah University of Nottingham Supervised by:
1 Wood Chemistry PSE 406 Bioenergy-Hydrolysis. 2 Agenda lEnzymatic hydrolysis »Cellulases »Experimental lFermentation »Yeast »Fermentation process »Inhibitors.
Making sugarcane go the extra mile Yuda Benjamin Supervisor: Prof. JF. Görgens New Voices in Science Colloquium 2 nd December 2011 Wallenberg Research.
Biorefinery for Biofuel Production
By Dr Ku Syahidah Ku Ismail Adapted from Drapcho et al (2008) Biofuels Engineering Process Technology.
Powering the Future: Biofuels. Activity: Extracting sugar from sugar beet Describe the process of extracting sugar from sugar beet Calculate the yield.
Mass Balance of ARP/SSF Biomass Ammonia recycling Fermentation ARP Reactor Soluble sugar Ammonia Washing 100 lb (dry basis) G:36.1 lb X: 21.4 lb O: 7.8.
RESEARCH LABORATORY OF BIOENERGY (RLB) Department of Chemistry, Federal Urdu University of Arts, Science and Technology, Gulshan-e-Iqbal Campus, University.
Phalaris aquatica L. lignocellulosic biomass as second generation bioethanol feedstock I. Pappas, Z. Koukoura, C. Kyparissides, Ch. Goulas and Ch. Tananaki.
1 Ethanol Production from the Mixture of Cotton Gin Waste and Recycled Paper Sludge by Simultaneous Saccharification and Fermentation Jiacheng Shen and.
Niger Delta University
Low-Moisture Anhydrous Ammonia (LMAA) Pretreatment of Corn Stover
ETHANOL PRODUCTION FROM LIGNOCELLULOSIC MATERIALS
Addah, W., Deku, G. and Ayantunde, A. A.
5. Chemical Processes Products are being used as fuel for the transport From either petrol-based material or from biomass The most common biofuels Used.
Biological Fuel Generation
John Nowatzki NDSU Extension Service
ProSil M-100 Silage Additive Incorporating a Unique Combination of Lactic Acid Bacteria for Improving Stability of Whole-Crop Cereal, Maize and Crimped.
Chip Chat: Oct 2017 Solar-energy driven bioethanol production
Hinrich Uellendahl Section for Sustainable Biotechnology
BRC Science Highlight Lignocellulosic biomass conversion residue transformed into medium-chain fatty acid bioproducts Objective Investigate the potential.
JDS International Seminar
Bioenergy-Fermentation
Presentation transcript:

Mikrobiell förbehandling Guido Zacchi, LTH

Develop and optimise pretreatment of lignocellulosic agricultural raw materials and rest products 1.Pre-pretreatment to facilitate storage and to facilitate the pretreatment 2.Perform pretreatment at milder conditions with a high yield of carbohydrates and minimal degradation of sugars 3.Improve the production of biogas from the stillage after SSF of pretreated material Overall aim Should result in better utilisation of the agricultural residues i.e with higher energy efficiency and lower production cost

The influence of impregnation with lactic acid on sugar yields from steam pretreatment Organic acids (Lactic acid) :  Weak acids (Less corrosive, lower degree of neutralization)  Biodegradable to produce biogas  Ensilage (crop preservation method)

WWT Fermentation Biomass Pretreatment Enzymatic Hydrolysis Distillation Sep CHP Biogas Lignin Stillage SSF Yeast cultivation Dehydration Ethanol Heat & Power AD Sludge Liquid Pretreatment influences all other process steps! Schematic process

Pretreatment conditions OM-SOM+STM-STM+SRefRef.L Storage with lactic acid (months) Concentration of. Lactic acid (wt%) Impregnation with SO2 (wt%) Temperature (C) Residence time (min) Pretreatment conditions

The influence of impregnation with lactic acid on sugar yields from steam pretreatment Sugarcane bagasse Sugar yield (% of theoretical in the raw material) OM: One month storage with Lac TM: Two months storage with Lac Ref.: Impregnation with SO 2 only Ref.L: Impregnation with Lac only -S: Only storage with Lac +S: Storage with Lac and impregnation with SO 2

Sugar degradation products (g/100 g raw material) Concentration (g/100 g raw material) OM-S OM+S TM-S TM+S Ref. Ref.L

Straw Pretreatment SSF Distillation Sep Biogas Solid Stillage Ethanol AD Liquid Slurry Straw Pretreatment SSF Distillation Sep Biogas Solid Stillage Ethanol AD Liquid Scenario 1 Scenario 2 Steam pretreatment of wheat straw The influence of impregnation with acetic acid

Steam pretreatment of wheat straw The influence of impregnation with acetic acid Acetic acid concentration Energy efficiency (%) Lignin assumed to be used for process heat + electricty

Ensiling – for storage Oleskowicz-Popiel et al, Biomass and Bioenergy 35, p2087 (2011) Crops Fresh maize (whole crop) Fresh rye (whole crop) Fresh clover (whole crop) Enzymatic hydrolysis and SSF tested for Fresh material Ensiled material Pretreated ensiled material (190 C, 10 min at 6% DM)

Ensiling – for storage (2) Enzymatic Hydrolysis Yield (g glucose per 100 gram cellulose)

MaizeRyeClover Fresh material Ensiled material Ensiled + pretreated material Ensiling – for storage (3) SSF (with S.cerevisae) Overall ethanol yield % of theoretical based on available C6 sugars in raw material OBS The materials contain also some starch! Some of the sugars are converted to acids during ensiling

 The use of an organic acid (or silage) for storage has improved the pretreatment.  Biogas production after pretreatment with an organic acid works well (data not shown).  Next step is to consider also pentose fermentation as an option and investigate more crops/residues  Perform real ensilage on selected residues Conclusions

Acknowledgements Swedish Energy Agency PhD students: Sanam Monavari, Elisabeth Joelsson and Pia-Maria Bondesson