Henstra AM, Sipma J, Rinzema A, Stams AJM (2007) Microbiology of synthesis gas fermentation
for biofuel production. Curr Opin Biotechnol 18:200–206
Hilbers TJ, Sprakel LMJ, van den Enk LBJ, Zaalberg B, van den Berg H, van der Ham LGJ (2015)
Green diesel from hydrotreated vegetable oil process design study. Chem Eng Technol
38:651–657. https://doi.org/10.1002/ceat.201400648
Himmel ME, Ding SY, Johnson DK, Adney WS, Nimlos MR, Brady JW, Foust TD (2007) Biomass
recalcitrance: engineering plants and enzymes for biofuels production. Science 315:804–807
Hoekman SK, Robbins C (2012) Review of the effects of biodiesel on NOx emissions. Fuel Process
Technol 96:237–249
Hofbauer H, Rauch R, Ripfel-Nitsche K (2009) Gas cleaning for synthesis applications. In:
Bridgwater AV, Hofbauer H, van Loo S (eds) Thermal biomass conversion. CPL Press,
Newbury, pp 211–266
Huber G, Iborra S (2006) Synthesis of transportation fuels from biomass: chemistry, catalysts, and
engineering. Chem Rev 106:4044–4098
Hughes JP (1953) Hydrogenation of fatty oils. J Am Oil Chem Soc 30:506–515. https://doi.org/10.
1007/BF02641690
IEA (2018) World energy outlook 2018, available from: https://webstore.iea.org/world-energyoutlook-2018. Accessed 3 Feb 2019
Jacquet N, Quiévy N, Vanderghem C, Janas S, Blecker C, Wathelet B, Devaux J, Paquot M (2011)
Influence of steam explosion on the thermal stability of cellulose fibres. Polym Degrad Stab 96
(9):1582–1588
Jeczmionek Ł, Porzycka-Semczuk K (2014) Hydrodeoxygenation, decarboxylation and
decarbonylation reactions while co-processing vegetable oils over a NiMo hydrotreatment
catalyst. Part I: thermal effects – theoretical considerations. Fuel 131:1–5. https://doi.org/10.
1016/j.fuel.2014.04.055
Kaewmeesri R, Srifa A, Itthibenchapong V, Faungnawakij K (2015) Deoxygenation of waste
chicken fats to green diesel over Ni/Al2O3: effect of water and free fatty acid content. Energy
Fuels 29:833–840. https://doi.org/10.1021/ef5023362
Karavalakis G, Short D, Vu D, Villela M, Asa-Awuku A, Durbin TD (2014) Evaluating the
regulated emissions, air toxics, ultrafine particles, and black carbon from SI-PFI and SI-DI
vehicles operating on different ethanol and iso-butanol blends. Fuel 128:410–421
Keil FJ (1999) Methanol-to-hydrocarbons: process technology. Microporous Mesoporous Mater
29:49–66
Kessler J, Sperling D (2016) Tracking U.S. biofuel innovation through patents. Energy Policy
98:97–107
Kiatkittipong W, Phimsen S, Kiatkittipong K, Wongsakulphasatch S, Laosiripojana N,
Assabumrungrat S (2013) Diesel-like hydrocarbon production from hydroprocessing of relevant
refining palm oil. Fuel Process Technol 116:16–26
Kim S, Dale BE (2004) Global potential bioethanol production from wasted crops and crop
residues. Biomass Bioenergy 26(4):361–375
Knothe G (2010) Biodiesel and renewable diesel: a comparison. Progr Energy Combust Sci 36
(3):364–373
Kohse-Höinghaus K, Oßwald P, Cool TA, Kasper T, Hansen N, Qi F, Westbrook CK,
Westmoreland PR (2010) Biofuel combustion chemistry: from ethanol to biodiesel. Angew
Chem – Int Ed 49(21):3572–3597
Kojima M, Johnson T (2005) Potential for biofuels for transport in developing countries, The
International Bank for Reconstruction and Development/The World Bank, Energy Sector
Management Assistance Programme Report
Köpke M, Mihalcea C, Bromley JC, Simpson SD (2011) Fermentative production of ethanol from
carbon monoxide. Curr Opin Biotechnol 22:320–325
Ku HC, Tu CH (2005) Densities and Viscosities Of Binary And Ternary Mixtures Of Ethanol,
2-Butanone, And 2,2,4-Trimethylpentane At T ¼ (298.15, 308.15, and 318.15) K. J Chem Eng
Data 50(2):608–615. https://doi.org/10.1021/je049655w
32
P. Bartocci et al.
Précédent

- 45/349

Suivant