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Articles

Comparative techno-economic analysis of advanced biofuels, biochemicals, and hydrocarbon chemicals via the fast pyrolysis platform

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Pages 57-67 | Received 09 Jun 2015, Accepted 08 Nov 2015, Published online: 15 Dec 2015

References

  • Wright MM, Daugaard DE, Satrio JA, et al. Techno-economic analysis of biomass fast pyrolysis to transportation fuels. Fuel. 2010;89:S2–S10.
  • Zhang Y, Brown TR, Hu G, et al. Techno-economic analysis of monosaccharide production via fast pyrolysis of lignocellulose. Bioresour Technol. 2013;127:358–365.
  • Brown TR, Zhang Y, Hu G, et al. Techno-economic analysis of biobased chemicals production via integrated catalytic processing. Biofuels, Bioprod Biorefining. 2012;6:73–87.
  • Zhang Y, Brown TR, Hu G, et al. Techno-economic analysis of two bio-oil upgrading pathways. Chem Eng J. 2013;225:895–904.
  • Rover MR, Hall PH, Johnston PA, et al. Stabilization of bio-oils using low temperature, low pressure hydrogenation. Fuel. 2015;153:224–230.
  • Peralta J, Williams RC, Rover M, et al. Development of Rubber-Modified Fractionated Bio-Oil for Use as Noncrude Petroleum Binder in Flexible Pavements. Transp Res Board. 2012.
  • Mohan D, Charles UP, Philip HS, et al. Pyrolysis of wood/biomass for bio-oil: a critical review. Energy Fuels. 2006;20:848–889.
  • Bridgwater AV. Review of fast pyrolysis of biomass and product upgrading. Biomass Bioenerg. 2012;38:68–94.
  • Qi Z, Jie C, Tiejun W, et al. Review of biomass pyrolysis oil properties and upgrading research. Energy. 2007;48:87–92.
  • Elliott DC, Hart TR, Neuenschwander GG, et al. Catalytic hydroprocessing of biomass fast pyrolysis bio-oil to produce hydrocarbon products. Environ Prog Sustain Energy. 2009;28:441–449.
  • Carlson TR, Vispute TP, Huber GW. Green gasoline by catalytic fast pyrolysis of solid biomass derived compounds. ChemSusChem. 2008:397–400.
  • Carlson TR, Tompsett GA, Conner WCet al. Aromatic production from catalytic fast pyrolysis of biomass-derived feedstocks. Top Catal. 2009;52:241–252.
  • Vispute TP, Zhang H, Sanna A, et al. Renewable chemical commodity feedstocks from integrated catalytic processing of pyrolysis oils. Science. 2010;330:1222–1227.
  • Brown TR, Thilakaratne R, Brown RC, et al. Techno-economic analysis of biomass to transportation fuels and electricity via fast pyrolysis and hydroprocessing. Fuel. 2013;106:463–469.
  • Pollard AS, Rover MR, Brown RC. Characterization of bio-oil recovered as stage fractions with unique chemical and physical properties. J Anal Appl Pyrolysis. 2011;93:129–138.
  • Santhanaraj D, Rover MR, Resasco DE, Brown RC, Crossley S. Gluconic acid from biomass fast pyrolysis oils: Specialty chemicals from the thermochemical conversion of biomass. ChemSusChem. 2014;7:3132–3137.
  • Han J, Elgowainy A, Dunn JB, et al. Life cycle analysis of fuel production from fast pyrolysis of biomass. Bioresour Technol. 2013;133:421–428. Available from: http://www.ncbi.nlm.nih.gov/pubmed/23454388.
  • Laird DA, Brown RC, Amonette JE, Lehmann J. Review of the pyrolysis platform for coproducing bio-oil and biochar. Biofuels, Bioprod Biorefining. 2009:547–562.
  • Brown TR, Wright MM, Brown RC. Estimating profitability of two biochar production scenarios: Slow pyrolysis vs fast pyrolysis. Biofuels, Bioprod Biorefining. 2011;5:54–68.
  • Zhang Y, Wright MM. Product selection and supply chain optimization for fast pyrolysis and biorefinery system. Ind Eng Chem Res. 2014;53:19987–19999.
  • Gebreslassie BH, Slivinsky M, Wang B, et al. Life cycle optimization for sustainable design and operations of hydrocarbon biorefinery via fast pyrolysis, hydrotreating and hydrocracking. Comput Chem Eng. 2013;50:71–91.
  • Ubando AT, Culaba AB, Aviso KB, et al. Fuzzy mixed-integer linear programming model for optimizing a multi-functional bioenergy system with biochar production for negative carbon emissions. Clean Technol Environ Policy. 2014;16:1537–1549.
  • Kelloway A, Daoutidis P. Process synthesis of biorefineries: Optimization of biomass conversion to fuels and chemicals. Ind Eng Chem Res. 2014;53:5261–5273.
  • Rover MR, Johnston PA, Whitmer LE, et al. The effect of pyrolysis temperature on recovery of bio-oil as distinctive stage fractions. J Anal Appl Pyrolysis. 2013;105:262–268.
  • Ellens CJ. Design, optimization and evaluation of a free-fall biomass fast pyrolysis reactor and its products. Ames (IA): Iowa State University; 2009.
  • Susanne J, Pimphan M, Snowden-Swan L, et al. Process design and economics for the conversion of lignocellulosic biomass to hydrocarbon fuels - fast pyrolysis and hydrotreating. Golden, CO.: National Renewable Energy Laboratory; 2013.
  • Rover MR, Johnston PA, Jin T, et al. Production of clean pyrolytic sugars for fermentation. ChemSusChem. 2014;7:1662–1668.
  • Choi YS, Johnston PA, Brown RC, et al. Detailed characterization of red oak-derived pyrolysis oil: Integrated use of GC, HPLC, IC, GPC and Karl-Fischer. J Anal Appl Pyrolysis. 2014;110:147–154.
  • Wyman C. Handbook on bioethanol: Production and utilization. 1st ed. Washington (DC): Taylor & Francis. 1996.
  • Jackson EB. Sugar confectionery manufacture. 2nd ed. Chapman & Hall, New York: Springer; 1995.
  • Dalluge DL, Daugaard T, Johnston P, et al. Continuous production of sugars from pyrolysis of acid-infused lignocellulosic biomass. Green Chem. 2014:4144–4155.
  • Peralta J, Silva HMRD, Williams RC, et al. Development of an innovative bio-binder using Asphalt-rubber technology. Int J Pavement Res Technol. 2013;6:447–456.
  • Peters M, Timmerhaus K, West R. Plant design and economics for chemical engineers. 5th ed. New York: McGraw Hill; 2003.
  • Wright MW, Daugaard DE, Satrio JA, et al. Techno-economic analysis of biomass fast pyrolysis to transportation fuels. Ames (IA): Iowa State University; 2009.
  • Wright MM, Román-Leshkov Y, Green WH. Investigating the techno-economic trade-offs of hydrogen source using a response surface model of drop-in biofuel production via bio-oil upgrading. Biofuels, Bioprod Biorefining. 2012.
  • EIA. Annual Energy Outlook 2011. Washington (DC): The U.S. Energy Information Administration; 2011.
  • Young's Sand & Gravel n.d. Available from: http://www.youngssandandgravel.com/. (Accessed April 8, 2015).
  • DKL Engineering I. Sulfuric Acid on the Web n.d. Available from: http://www.sulphuric-acid.com/sulphuric-acid-on-the-web/Market-Info.htm ( Accessed December 15, 2014).
  • Brown TR, Zhang Y, Hu G, et al. Techno-economic analysis of biobased chemicals production via integrated catalytic processing. Biofuels, Bioprod Biorefining. 2011;6:73–87.
  • Wang K, Ou L, Brown T, Brown RC. Beyond ethanol: a techno-economic analysis of an integrated corn biorefinery for the production of hydrocarbon fuels and chemicals. Biofuels, Bioprod Biorefining. 20149:190–200.

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