Environmental Engineering Reference
In-Depth Information
43. Kamm, B., Hille, C., Schonicke, P. and Dautzenberg, G. (2010) Green biorefinery demon-
stration plant in Havelland (Germany). Biofuels, Bioproducts and Biorefining , 4 , 253-262.
44. Schnitzer, H. (2006) Agro-based Zero Emissions Systems. Environmentally Degradable
Polymers from Renewable Resources Workshop, Bangkok. Available at http://www.unido.
org/fileadmin/import/58371_Presentation_Keynote1_Hans_Schnitzer.pdf
(accessed
4
September 2014).
45. Wright, M. and Brown, R.C. (2007) Comparative economics of biorefineries based on the
biochemical and thermochemical platforms. Biofuels, Bioproducts and Biorefining , 1 ,
49-56.
46. Ragauskas, A.J., Williams, C.K., Davison, B.H. et al. (2006) The path forward for biofuels
and biomaterials. Science , 311 , 484-489.
47. Taylor, G. (2008) Biofuels and the biorefinery concept. Energy Policy , 36 , 4406-4409.
48. Wright, M. and Brown, R.C. (2007) Establishing the optimal sizes of different kinds of
biorefineries. Biofuels, Bioproducts and Biorefining , 1 , 191-200.
49. BSI (2013) Bio-based products: Guide to standards and claims. Bio-based and Renewable
Industries for Development and Growth in Europe, Strategic Innovation and Research
Agenda. Available at http://shop.bsigroup.com/en/ProductDetail/?pid=000000000030262005
(accessed 4 September 2014).
50. Star-COLIBRI (2011) European Biorefinery Joint Strategic Research Roadmap. Available
at http://beaconwales.org/uploads/resources/Vision_2020_-_European_Biorefinery_Joint_
Strategic_Research_Roadmap.pdf (accessed 25 August 2014).
51. F. Fava, G. Totaro, L. Diels, et al . (2013) Biowaste biorefinery in Europe: opportunities and
research and development needs. New Biotechnology , doi: 10.1016/j.nbt.2013.11.003.
52. Hess, J.R., Thompson, D.N., Hoskinson, R.L. et al. (2003) Physical separation of straw
stem components to reduce silica. Applied Biochemistry and Biotechnology , 105-108 ,
43-51.
53. Deswarte, F.E.I., Clark, J.H., Wilson, A.J. et al. (2007) Toward an integrated straw-based
biorefinery. Biofuels, Bioproducts and Biorefining , 1 , 245-254.
54. Kadam, K.L., Forrest, L.H. and Jacobson, W.A. (2000) Rice straw as a lignocellulosic
resource: collection, processing, transportation, and environmental aspects. Biomass and
Bioenergy , 18 , 369-389.
55. Koschuh, W., Thang, V.H., Krasteva, S. et al. (2005) Flux and retention behaviour of nano-
filtration and fine ultrafiltration membranes in filtrating juice from a green biorefinery: a
membrane screening. Journal of Membrane Science , 261 , 121-128.
56. Thang, V.H. and Novalin, S. (2007) Green biorefinery: separation of lactic acid from grass
silage juice by chromatography using neutral polymeric resin. Bioresource Technology , 99 ,
4368-4379.
57. Nilsson, D. (1999) SHAM: a simulation model for designing straw fuel delivery systems.
Part 2: model applications. Biomass and Bioenergy , 16 , 39-50.
58. Bruins, M.E. and Sanders, J.P.M. (2012) Small-scale processing of biomass for biorefinery.
Biofuels, Bioproducts and Biorefining , 6 , 135-145.
59. Cherubini, F. and Strømman, A.H. (2011) Chemicals from lignocellulosic biomass: oppor-
tunities, perspectives, and potential of biorefinery systems. Biofuels, Bioproducts and
Biorefining , 5 , 548-561.
60. Peck, M.P., Bennett, S.J., Bissett-Amess, R. et al. (2009) Examining understanding, accept-
ance, and support for the biorefinery concept among EU policy-makers. Biofuels,
Bioproducts and Biorefining , 3 , 361-383.
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