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Possible transport energy sources for the future

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  • De Simio, L.
  • Gambino, M.
  • Iannaccone, S.

Abstract

In the medium to long term, low fossil fuel availability will make it necessary to find alternatives. Mass production of biofuels will not be a practical solution because it requires strong competition for land that is used for growing food. Therefore, it will be necessary to revise the frame of transportation energy sources. The number of pure light- and heavy-duty electric vehicles could increase in urban areas. Instead, it will be hard to find a viable alternative to the internal combustion engine for extra-urban transport vehicles, therefore alternative synthetic fuels could be used to compensate for fossil fuel depletion. Aside from a small share obtainable from biomass, most synthetic fuels are expected to be obtained from coal. Among these, synthetic natural gas represents a very good solution. In fact, synthetic natural gas will be advantageous with respect to hydrogen, whose on-board storage will be an unsolved problem in the medium term, and with respect to synthetic liquid fuels, which require more energy in the production phase. Moreover, the carbon content of liquid fuels, which is higher than that of gaseous fuels, will be responsible for higher CO2 emissions from vehicles. Currently, natural gas has poor diffusion in the transport sector, and this paper highlights the motivations for favouring a policy aimed at increasing the share of gaseous fuel-powered vehicles. In addition to the low environmental impact, synthetic natural gas also offers the possibility of optimising the utilisation of future resources.

Suggested Citation

  • De Simio, L. & Gambino, M. & Iannaccone, S., 2013. "Possible transport energy sources for the future," Transport Policy, Elsevier, vol. 27(C), pages 1-10.
  • Handle: RePEc:eee:trapol:v:27:y:2013:i:c:p:1-10
    DOI: 10.1016/j.tranpol.2013.01.006
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    References listed on IDEAS

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    1. Swain, Pravat K. & Das, L.M. & Naik, S.N., 2011. "Biomass to liquid: A prospective challenge to research and development in 21st century," Renewable and Sustainable Energy Reviews, Elsevier, vol. 15(9), pages 4917-4933.
    2. Sarkar, Susanjib & Kumar, Amit & Sultana, Arifa, 2011. "Biofuels and biochemicals production from forest biomass in Western Canada," Energy, Elsevier, vol. 36(10), pages 6251-6262.
    3. Mantripragada, Hari Chandan & Rubin, Edward S., 2011. "Techno-economic evaluation of coal-to-liquids (CTL) plants with carbon capture and sequestration," Energy Policy, Elsevier, vol. 39(5), pages 2808-2816, May.
    4. Jos#X00C9; Moreira, 2006. "Global Biomass Energy Potential," Mitigation and Adaptation Strategies for Global Change, Springer, vol. 11(2), pages 313-333, March.
    5. Prins, Mark J. & Ptasinski, Krzysztof J. & Janssen, Frans J.J.G., 2007. "From coal to biomass gasification: Comparison of thermodynamic efficiency," Energy, Elsevier, vol. 32(7), pages 1248-1259.
    6. Sunde, K. & Brekke, A. & Solberg, B., 2011. "Environmental impacts and costs of woody Biomass-to-Liquid (BTL) production and use -- A review," Forest Policy and Economics, Elsevier, vol. 13(8), pages 591-602, October.
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    Keywords

    Biomass; Coal; BTL; SNG; LNG;
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