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Comparative analysis of environmental impact of S2P (Sunshine to Petrol) system for transportation fuel production

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  • Kim, Jiyong
  • Miller, James E.
  • Maravelias, Christos T.
  • Stechel, Ellen B.

Abstract

A previous study on Sunshine to Petrol (S2P), a technology framework to produce liquid hydrocarbon fuels from CO2 and water using a concentrated solar energy source, focused on process development as well as economic evaluation. The study herein presents results from a life cycle assessment (LCA) approach to a comparative analysis of the environmental impacts of S2P-derived and petroleum-derived gasoline. Results reveal that S2P gasoline shows lower impact scores than the conventional gasoline for all evaluated impact categories. Based on the LCA results, we then analyze the environmental benefits including greenhouse gas (GHG) mitigation and external cost savings. We find that if S2P gasoline could be successfully introduced to satisfy the gasoline demand of a sample city, Victorville in east California, 3.6Mt CO2-eq of the greenhouse gas (GHG) emissions (77% of the total regional emissions) would be mitigated based on the current fleet of vehicles. The lighter impact also corresponds to 4.2M$ annual cost savings from avoided environment damage. More generally, for each million vehicles running on S2P gasoline there would be nearly $30M in savings and 335M gallons of gasoline displaced, which in turn results in nearly 25.8Mt of CO2-eq avoided.

Suggested Citation

  • Kim, Jiyong & Miller, James E. & Maravelias, Christos T. & Stechel, Ellen B., 2013. "Comparative analysis of environmental impact of S2P (Sunshine to Petrol) system for transportation fuel production," Applied Energy, Elsevier, vol. 111(C), pages 1089-1098.
  • Handle: RePEc:eee:appene:v:111:y:2013:i:c:p:1089-1098
    DOI: 10.1016/j.apenergy.2013.06.035
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    References listed on IDEAS

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    1. Bell, David R. & Silalertruksa, Thapat & Gheewala, Shabbir H. & Kamens, Richard, 2011. "The net cost of biofuels in Thailand--An economic analysis," Energy Policy, Elsevier, vol. 39(2), pages 834-843, February.
    2. Kovacevic, Vujadin & Wesseler, Justus, 2010. "Cost-effectiveness analysis of algae energy production in the EU," Energy Policy, Elsevier, vol. 38(10), pages 5749-5757, October.
    3. Sudiro, Maria & Bertucco, Alberto, 2009. "Production of synthetic gasoline and diesel fuel by alternative processes using natural gas and coal: Process simulation and optimization," Energy, Elsevier, vol. 34(12), pages 2206-2214.
    4. Bartolozzi, I. & Rizzi, F. & Frey, M., 2013. "Comparison between hydrogen and electric vehicles by life cycle assessment: A case study in Tuscany, Italy," Applied Energy, Elsevier, vol. 101(C), pages 103-111.
    5. Weidema, Bo Pedersen, 2009. "Using the budget constraint to monetarise impact assessment results," Ecological Economics, Elsevier, vol. 68(6), pages 1591-1598, April.
    6. Afrane, George & Ntiamoah, Augustine, 2012. "Analysis of the life-cycle costs and environmental impacts of cooking fuels used in Ghana," Applied Energy, Elsevier, vol. 98(C), pages 301-306.
    7. Renó, Maria Luiza Grillo & Lora, Electo Eduardo Silva & Palacio, José Carlos Escobar & Venturini, Osvaldo José & Buchgeister, Jens & Almazan, Oscar, 2011. "A LCA (life cycle assessment) of the methanol production from sugarcane bagasse," Energy, Elsevier, vol. 36(6), pages 3716-3726.
    8. Tsilingiridis, G. & Martinopoulos, G. & Kyriakis, N., 2004. "Life cycle environmental impact of a thermosyphonic domestic solar hot water system in comparison with electrical and gas water heating," Renewable Energy, Elsevier, vol. 29(8), pages 1277-1288.
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