Warianty tytułu
Fermentation of lignocellulosic raw materials to ethanol
Języki publikacji
Abstrakty
W pracy oceniano możliwości zagospodarowania słomy pszennej oraz łętów ziemniaczanych do produkcji etanolu. Najlepsze efekty uzyskiwano po zastosowaniu skojarzonego oddziaływania preparatów ACCELLERASE®1500 i ACCELLERASE®XC lub ACCELLERASE®1500 i ACCELLERASE®BG. Lepszym surowcem spośród badanych okazały się łęty ziemniaczane. Wydajności etanolu uzyskiwane po fermentacji osadów po prehydrolizie łętów ziemniaczanych oscylowały w granicach od 63,33 do 73,87 dm3 z 1 tony s.m. surowca.
The possibility of use wheat straw and potato stalks for ethanol production in this study was evaluated. The best results were obtained after applying the associated impact of ACCELLERASE ® 1500 and ACCELLERASE ® XC or ACCELLERASE ® 1500 and ACCELLERASE ® BG. Better raw material turned out to be potato stalks. Ethanol yield from potato stalks oscillated in the range 63.33 to 73.87 dm3 per 1 ton of dry matter of raw material.
Wydawca
Czasopismo
Rocznik
Tom
Numer
Opis fizyczny
s.5-11,wykr.,bibliogr.
Twórcy
autor
- Katedra Technologii Rolnej i Przechowalnictwa, Uniwersytet Przyrodniczy we Wrocławiu, ul.Chełmońskiego 37/41,51-630 Wrocław
autor
- Uniowersytet Rolniczy w Krakowie, Kraków
autor
- Katedra Technologii Rolnej i Przechowalnictwa, Uniwersytet Przyrodniczy we Wrocławiu, ul.Chełmońskiego 37/41,51-630 Wrocław
Bibliografia
- Agbor V.E., Cicek N., Sparling R., Berlin A., Levin D.B., 2011. Biomass pretreatment: Fundamentals toward application. Biotechnology Advances, 29, 675-685.
- Balat M., Balat H., Oz C., 2008. Progress in bioethanol processing. Progress in Energy and Combustion Science, 34, 551-573.
- Ballesteros I., Negro M.J., Oliva J.M., Cabanas A., Manzanares P., Ballesteros M., 2006. Ethanol production from steam explosion pretreated wheat straw. Applied Biochemistry and Biotechnolgy, 129-133, 496-508.
- Ballesteros M., Oliva J.M., Negro M.J., Manzanares P., Ballesteros I., 2004. Ethanol from ligno- cellulosic materials by a simultaneous saccharification and fermentation process (SSF) with Kluyveromyces marxianus CECT 10875. Process Biochemistry, 39, 1843-1848.
- Chen H., Han Y., Xu J., 2008. Simultaneous saccharification and fermentation of steam exploded wheat straw pretreated with alkaline peroxide, Process Biochemistry, 43, 1462-1466.
- Field C.B., Campbell J.E., Lobell D.B., 2008. Biomass energy: the scale of the potential resource. Trends in Ecology and Evolution, 23, 65-72.
- Hasunuma T., Kondo A., 2012. Consolidated bioprocessing and simultaneous saccharification and fermentation of lignocellulose to ethanol with thermotolerant yeast strains. Process Biochemistry, 47, 1287-1294.
- Hill J., 2007. Environmental costs and benefits of transportation biofuel production from food- and lignocellulose-based energy crops. A Review. Agronomy for Sustainable Development, 27, 1-12.
- Jergensen H., Kristensen J.B., Felby C., 2007. Enzymatic conversion of lignocellulose into fermentable sugars: challenges and opportunities. Biofuels, Bioproducts & Biorefining, 1, 119-134.
- Kerckhoffs H., Renquist R., 2013. Biofuel from plant biomass. Agronomy for Sustainable Development, 33,1-19.
- Kim S., Dale B.E., 2004. Global potential bioethanol production from wasted crops and crop residues. Biomass and Bioenergy, 26, 361-375.
- Kupczyk A., Borowski P., Powała M., Ruciński D., 2011. Biopaliwa transportowe w Polsce. Stan aktualny i perspektywy. Wyd. WEMA, Warszawa.
- Limayem A., Ricke S.C., 2012. Lignocellulosic biomass for bioethanol production: Current perspectives, potential issues and future prospects. Progress in Energy and Combustion Science, 38, 449-467.
- Lin Y., Tanaka S., 2006. Ethanol fermentation from biomass resources: current state and prospects. Applied Microbiology and Microbial Biotechnology, 69, 627-642.
- Menon V., Rao M., 2012. Trends in bioconversion of lignocellulose: biofuels, platform chemicals and biorafinery concept. Progress in Energy and Combustion Science, 38, 522-550.
- Nigam P.S., Singh A., 2011. Production of liquid biofuels from renewable resources. Progress in Energy and Combustion Science, 37, 52-68.
- Pérez J., Munoz-Dorado J., de la Rubia T., Martínez J., 2002. Biodegradation and biological treatments of cellulose, hemicellulose and lignin: an overview. International Microbiology, 5, 53-63.
- Pienkos T.P., Zhang M., 2009. Role of pretreatment and conditioning processes on toxicity of lignocellulosic biomass hydrolysates. Cellulose,16, 743-762.
- Sun Y., Cheng J., 2002. Hydrolysis of lignocellulosic materials for ethanol production: a review. Bioresource Technology, 83, 1-11.
- Taherzadeh M.J., Karimi K., 2008. Pretreatment of lignocellulosic wastes to improve ethanol and biogas production: A Review. International Journal of Molecular Science, 9, 1621-1651.
- Van Soest P. J., Robertson J.B., Lewis B.A., 1991. Methods for dietary fiber, neutral detergent fiber, and nonstarch polysaccharides in relation to animal nutrition, Journal of Dairy Science, 74, 3583-3597.
Typ dokumentu
Bibliografia
Identyfikatory
Identyfikator YADDA
bwmeta1.element.agro-d258f25f-a481-4c66-97ff-8af2ed51c637