Adapting Business of Energy Corporations to Macro-Policies Aiming at a Sustainable Economy. The Case for New Powering of Automobiles

Abstract

A portfolio of new energy technologies has emerged in the first decade of the 21st Century, and many of them could be used for re-structuring the energy sector towards Sustainable Development. A key subject in this quest is the future of automobile, with possibilities on powering ranging from biofuels to Hydrogen Cars (HC), to Electric Vehicles (EV). In turn, the latter is closely connected with the need to deploy Renewable Energies (RE) for electricity generation. Within such new situation, countries and governments are aware that there are new tools for fighting Global Warming (GW), and new policies could be established for winning this battle against CO2. All these initiatives will affect the future of energy corporations, notably hydrocarbon companies; and it should be noted that it will be difficult for the companies to define long-term strategies if energy policies convey upheavals, sudden changes in promoting alternatives and interruptions on activities. Hence, it is very important to adopt energy policies allowing a smooth evolution of the companies’ activities to the new energy model. After analyzing the alternatives with a forecasting-backcasting methodology, an “eclectic approach” is proposed, with the Plug-in Hybrid car with Flexible Fuel (PiHFF) as the central paradigm in the coming promoting policies.

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J. Martinez-Val Piera, A. Maldonado-Zamora and R. Pons-Esparver, "Adapting Business of Energy Corporations to Macro-Policies Aiming at a Sustainable Economy. The Case for New Powering of Automobiles," Energy and Power Engineering, Vol. 5 No. 1, 2013, pp. 92-108. doi: 10.4236/epe.2013.51010.

Conflicts of Interest

The authors declare no conflicts of interest.

References

[1] Lawrence Livermore National Laboratory, “Science and Technology Review,” 2011. https://str.llnl.gov
[2] Michigan Institute of Technology, “Technology Review,” 2011. www.technologyreview.com
[3] J. Rifkin, “The Third Industrial Revolution: How Lateral Power Is Transforming Energy, the Economy, and the World,” Palgrave Macmillan, Hampshire, 2011.
[4] Brundtland, “Our Common Future,” Oxford University Press, New York, 1987.
[5] W. Hafele, “Energy in a Finite World. Paths to a Sustainable Future. Energy in a Finite World. A Global System Analysis,” Ballinger Pu. Co., Pensacola, 1981.
[6] T. J. Crowley and R. A. Berner, “CO2 and Climate Change,” Science, Vol. 292, No. 5518, 2001, pp. 870-872. doi:10.1126/science.1061664
[7] T. P. Barnett, D. W. Pierce and R. Schnur, “Detection of Anthropogenic Climate Change in the World’s Oceans,” Science, Vol. 292, No. 5515, 2001, pp. 270-274. doi:10.1126/science.1058304
[8] M. Allen, “Constraints on Future Changes in Climate and the Hydrologic Cycle,” Nature, Vol. 419, 2002, pp. 224- 227. doi:10.1038/nature01092
[9] L. Kump, “Reducing Uncertainty about Carbon Dioxide as a Climate Driver,” Nature Insight, Vol. 419, No. 6903, 2002, pp. 188-190. doi:10.1038/nature01087
[10] S. F. B. Tett, J. F. B. Mitchell, D. E. Parker and M. R. Allen, “Human Influence on the Atmospheric Vertical Temperature Structure: Detection and Observations,” Science, Vol. 247, 1996, pp. 1170-1173. doi:10.1126/science.274.5290.1170
[11] G. Marchuk, K. Kondratyev and V. Kozoderov, “Earth Radiation Budget,” Nauka Pub, FSU, 1990.
[12] H. B. Dulal, G. Brodnig and C. G. Onoriose, “Climate Change Mitigation in the Transport Sector through Urban Planning: A Review,” Habitat International, Vol. 35, No. 3, 2011, pp. 494-500. doi:10.1016/j.habitatint.2011.02.001
[13] F. Grazi and J. C. J. M. van den Bergh, “Spatial Organization, Transport, and Climate Change: Comparing Instruments of Spatial Planning and Policy,” Ecological Economics, Vol. 67, No. 4, 2008, pp. 630-639. doi:10.1016/j.ecolecon.2008.01.014
[14] H. Huang, M. von Lampe and F. van Tongeren, “Climate Change and Trade in Agriculture,” Food Policy, Vol. 36, 2011, pp. S9-S13. doi:10.1016/j.foodpol.2010.10.008
[15] Intergovernmental Panel on Climate Change, 2007. www.ipcc.ch Fourth Assessment Report
[16] D. Keles, D. Most and W. Fichtner, “The Development of the German Energy Market until 2030—A Critical Survey of Related Scenarios,” Energy Policy, Vol. 39, No. 2, 2011, pp. 812-825. doi:10.1016/j.enpol.2010.10.055
[17] BP Statistical Review of World Energy, 2011. http://www.bp.com/sectionbodycopy.do?categoryId=7500&contentId=7068481
[18] World Energy Outlook, 2009. www.worldenergyoutlook.com
[19] European Union, “Green Paper: Towards a European Strategy for the Security of Energy Supply,” 2000.
[20] Red Eléctrica de Espa?a. http://www.ree.es/sistema_electrico/pdf/infosis/sintesis_REE_2010.pdf
[21] European Commission, “EUROSTAT: Energy Yearly Statistics,” Office for Official Publications of the EU, Luxembourg, 2008.
[22] P. del Río and G. Unruh, “Overcoming the Lock-Out of Renewable Energy Technologies in Spain: The Cases of Wind and Solar Electricity,” Renewable and Sustainable Energy Reviews, Vol. 11, No. 7, 2007, pp. 1498-1513. doi:10.1016/j.rser.2005.12.003
[23] G. M. Montes, E. P. Martín and J. O. García, “The Current Situation of Wind Energy in Spain,” Renewable and Sustainable Energy Reviews, Vol. 11, No. 3, 2007, pp. 467-481. doi:10.1016/j.rser.2005.03.002
[24] Y. Perez and F. J. Ramos-Real, “The Public Promotion of wind Energy in Spain from the Transaction Costs Perspective 1986-2007,” Renewable and Sustainable Energy Reviews, Vol. 13, No. 5, 2009, pp. 1058-1066. doi:10.1016/j.rser.2008.03.010
[25] G. M. Montes, M. M. S. López, M. C. R. Gámez and A. M. Ondina, “An Overview of Renewable Energy in Spain. The Small Hydro-Power Case,” Renewable and Sustainable Energy Reviews, Vol. 9, No. 5, 2005, pp. 521-534. doi:10.1016/j.rser.2004.05.008
[26] F. Hernández, M. A. Gual, P. Del Río and A. Caparrós, “Energy Sustainability and Global Warming in Spain,” Energy Policy, Vol. 32, No. 3, 2004, pp. 383-394. doi:10.1016/S0301-4215(02)00308-7
[27] F. Foidart, J. Oliver-Solá, C. M. Gasol, X. Gabarrell and J. Rieradevall, “How Important Are Current Energy Mix Choices on Future Sustainability? Case Study: Belgium and Spain—Projections towards 2020-2030,” Energy Policy, Vol. 38, No. 9, 2010, pp. 5028-5037. doi:10.1016/j.enpol.2010.04.028
[28] C. Batlle and P. Rodilla, “A Critical Assessment of the Different Approaches Aimed to Secure Electricity Generation Supply,” Energy Policy, Vol. 38, No. 11, 2010, p. 7169. doi:10.1016/j.enpol.2010.07.039
[29] F. Moreno and J. M. Martinez-Val, “Collateral Effects of Renewable Energies Deployment in Spain: Impact on Thermal Power Plants Performance and Management,” Energy Policy, Vol. 39, No. 10, 2011, pp. 6561-6574. doi:10.1016/j.enpol.2011.07.061
[30] International Partnership for Hydrogen and Fuel Cells in the Economy, 2011. www.iphe.net
[31] D. Keith and A. Farrell, “Rethinking Hydrogen Cars,” Science, Vol. 301, No. 5631, 2003, pp. 315-316. doi:10.1126/science.1084294
[32] L. Barreto, A. Makihira and K. Riahi, “The Hydrogen Economy in the 21st Century: A Sustainable Development Scenario,” International Journal of Hydrogen Energy, Vol. 28, No. 3, 2003, pp. 267-284. doi:10.1016/S0360-3199(02)00074-5
[33] H. S. Lee, K. S. Jeong and B. S. Oh, “An Experimental Study of Controlling Strategies and Drive Forces for Hydrogen Fuel Cell Hybrid Vehicles,” International Journal of Hydrogen Energy, Vol. 28, No. 2, 2003, pp. 215-222. doi:10.1016/S0360-3199(02)00038-1
[34] S. G. Chalk and J. E. Miller, “Key Challenges and Recent Progress in Batteries, Fuel Cells, and Hydrogen Storage for Clean Energy Systems,” Journal of Power Sources, Vol. 159, No. 1, 2006, pp. 73-80. doi:10.1016/j.jpowsour.2006.04.058
[35] H. Turton, “Sustainable Global Automobile Transport in the 21st Century: An Integrated Scenario Analysis,” Technological Forecasting & Social Change Vol. 73, No. 6, 2006, pp. 607-629. doi:10.1016/j.techfore.2005.10.001
[36] A. Ford, “Electric Vehicle and the Electric Utility Company,” Energy Policy, Vol. 22, No. 7, 1994, pp. 555-570. doi:10.1016/0301-4215(94)90075-2
[37] R. Cowan and S. Hulten, “Escaping Lock-In: The Case of the Electric Vehicle,” Technology Forecasting and Social Change Vol. 53, No. 1, 1996, pp. 61-79. doi:10.1016/0040-1625(96)00059-5
[38] G. G. Harding, “Electrical Vehicles in the Next Millennium,” Journal of Power Sources, Vol. 78, No. 1-2, 1999, pp. 193-198. doi:10.1016/S0378-7753(99)00037-3
[39] M. Wada, “Research and Development of Electrical Vehicles for Clean Transportation,” Journal of Environmental Science, Vol. 21, No. 6, 2009, pp. 745-749. doi:10.1016/S1001-0742(08)62335-9
[40] S. Brown, D. Pyke and P. Steenhof, “Electric Vehicles: The Role and Importance of Standards in an Emerging Market,” Energy Policy, Vol. 38, No. 7, 2010, pp. 3797- 3806. doi:10.1016/j.enpol.2010.02.059
[41] R. Webster, “Can the Electricity Distribution Network Cope with an Influx of Electric Vehicles?” Journal of Power Sources, Vol. 80, No. 1-2, 1999, pp. 217-225. doi:10.1016/S0378-7753(98)00262-6
[42] A. K. Srivastava, B. Annabathina and S. Kamalasadan, “The Challenges and Policy Options for Integrating Plugin Hybrid Electric Vehicle into the Electric Grid,” The Electricity Journal, Vol. 23, No. 3, 2010, pp. 83-91. doi:10.1016/j.tej.2010.03.004
[43] W. Kempton and S. Letendre, “Electric Vehicles as a New Source of Power for Electric Utilities,” Transportation Research, Vol. 2, No. 3, 1997, pp. 157-175.
[44] Generation 4 Forum Website, 2011. www.gen-4.org
[45] B. Sorensen, “Renewable Energies,” 2nd Edition, Academic Press, Inc., New York, 2002.
[46] Carbon Sequestration Leadership Forum Website, 2011. www.cslf.org.
[47] H. Terrell, “US Gas Reserves Estimated at Record High,” World Oil, Vol. 232, No. 5, 2011, p. 13.
[48] K. Costello, “Going ‘Long’ with Natural Gas?” The Electricity Journal, Vol. 24, No. 5, 2011, pp. 42-49. doi:10.1016/j.tej.2011.05.005
[49] T. C. Kinnaman, “The Economic Impact of Shale Gas Extraction: A Review of Existing Studies,” Ecological Economics, Vol. 70, No. 7, 2011, pp. 1243-1249. doi:10.1016/j.ecolecon.2011.02.005
[50] R. Mcllvaine and A. James, “The Potential of Shale Gas,” World Pumps, Vol. 7, 2010, pp. 16-18. doi:10.1016/S0262-1762No. 10)70195-4
[51] B. Buffet and D. Archer, “Global Inventory of Methane Clathrate: Sensitivity to Changes in the Deep Ocean,” Earth and Planetary Science Letters, Vol. 227, 2004, pp. 185-199. doi:10.1016/j.epsl.2004.09.005
[52] A. Demirbas, “Methane Hydrates as Potential Energy Resource: Part 1—Importance, Resource and Recovery Facilities,” Energy Conversion and Management, Vol. 51, No. 7, 2010, pp. 1547-1561. doi:10.1016/j.enconman.2010.02.013
[53] A. Demirbas, “Methane Hydrates as Potential Energy Resource: Part 2—Methane Production Processes from Gas Hydrates,” Energy Conversion and Management, Vol. 51, No. 7, 2010, pp. 1562-1571. doi:10.1016/j.enconman.2010.02.014
[54] K. A. Kvenvolden, “Methane Hydrate—A Major Reservoir of Carbon in the Shallow Geosphere?” Chemical Geology, Vol. 71, No. 1-3, 1988, pp. 41-51. doi:10.1016/0009-2541(88)90104-0
[55] S. Lee and G. D. Holder, “Methane Hydrates Potential as a Future Energy Source,” Fuel Processing Technology, Vol. 71, No. 1-3, 2001, pp. 181-186. doi:10.1016/S0378-3820No. 01)00145-X
[56] K. H. Robert, B. Schmidt-Bleek, J. A. De Larderel, G. Basile, J. L. Jansen, R. Kuehr, P. P. Thomas, et al., “Strategic Sustainable Development—Selection, Design and Synergies of Applied Tools” Journal of Cleaner Production, Vol. 10, No. 3, 2002, pp. 197-214. doi:10.1016/S0959-6526No. 01)00061-0
[57] J. Korhonen, “Industrial Ecology in the Strategic Sustainable Development Model: Strategic Applications of Industrial Ecology,” Journal of Cleaner Production, Vol. 12, No. 8-10, 2004, pp. 809-823. doi:10.1016/j.jclepro.2004.02.026
[58] K. H. Robèrt, “Tools and Concepts for Sustainable Development, How Do They Relate to a General Framework for Sustainable Development, and to Each Other?” Journal of Cleaner Production, Vol. 8, No. 3, 2000, pp. 243- 254. doi:10.1016/S0959-6526No. 00)00011-1
[59] J. R. Ehrenfeld, “Industrial Ecology: Paradigm Shift or Normal Science?” American Behavioral Scientist, Vol. 44, No. 2, 2000, pp. 229-244.
[60] T. E. Graedel and B. R. Allenby, “Industrial Ecology,” Academy of Management Review, Vol. 20, No. 1, 1995, pp. 1968-1975.
[61] S. Erkman, “Industrial Ecology: Historical View,” Journal of Cleaner Production, Vol. 5, No. 1-2, 1997, pp. 1- 10. doi:10.1016/S0959-6526No. 97)00003-6
[62] H. E. Daly, “Beyond Growth: The Economics of Sustainable Development,” Beacon Press, Boston, 1996.
[63] K. L. Anderson, “Reconciling the Electricity Industry with Sustainable Development: Backcasting—A Strategic Alternative,” Futures, Vol. 33, No. 7, 2001, pp. 607-623. doi:10.1016/S0016-3287No. 01)00004-0
[64] J. Kuisma, “Backcasting for Sustainable Strategies in the Energy Sector: A Case Study in FORTUM Power and Heat,” The International Institute for Industrial Environmental Economics, Sweden, 2000.
[65] R. Williams, “Roles for Biomass Energy in Sustainable Development,” Industrial Ecology and Global Change, 1994, pp. 199-228.
[66] F. Figgea and T. Hahn, “Sustainable Value Added—Measuring Corporate Contributions to Sustainability beyond Eco-Efficiency,” Ecological Economics, Vol. 48, 2004, pp. 173-187. doi:10.1016/j.ecolecon.2003.08.005
[67] E. Heiskanen, “The Institutional Logic of Life Cycle Thinking,” Journal of Cleaner Production, Vol. 10, No. 5, 2002, pp. 427-437. doi:10.1016/S0959-6526No. 02)00014-8
[68] N. Darnall, I. Henriques and P. Sadorsky, “Do Environmental Management Systems Improve Business Performance in an International Setting?” Journal of International Management, Vol. 14, No. 4, 2008, pp. 364-376. doi:10.1016/j.intman.2007.09.006
[69] R. D. Klassen and C. P. McLaughlin, “The Impact of Environmental Management on Firm Performance,” Management Science, Vol. 42, No. 8, 1996, pp. 1199-1214. doi:10.1287/mnsc.42.8.1199
[70] L. Matzny, “Biofuels for Transport: Global Potential and Implications for Energy and Agriculture,” Worldwatch Institute, Earthscan Ltd., 2007.
[71] T. Mattila and R. Antikainen, “Backcasting Sustainable Freight Transport Systems for Europe in 2050,” Energy Policy, Vol. 39, No. 3, 2011, pp. 1241-1248. doi:10.1016/j.enpol.2010.11.051
[72] P. Moriarty and D. Honnery, “Low-Mobility: The Future of Transport,” Futures, Vol. 40, No. 10, 2008, pp. 865- 872. doi:10.1016/j.futures.2008.07.021
[73] D. Giurco, B. Cohen, E. Langham and M. Warnken, “Backcasting Energy Futures Using Industrial Ecology,” Technological Forecasting and Social Change, Vol. 78, No. 5, 2011, pp. 797-818. doi:10.1016/j.techfore.2010.09.004
[74] P. Moriarty and D. Honnery, “The Prospects for Global Green Car Mobility,” Journal of Cleaner Production, Vol. 16 No. 16, 2008, pp. 1717-1726. doi:10.1016/j.jclepro.2007.10.025
[75] C. E. Thomas, “Fuel Cell and Battery Electric Vehicles Compared, International,” Journal of Hydrogen Energy, Vol. 34, No. 15, 2009, pp. 6005-6020. doi:10.1016/j.ijhydene.2009.06.003
[76] K. ?. Bayindir, M. A. G?zükü?ük and A. Teke, “A Comprehensive Overview of Hybrid Electric Vehicle: Powertrain Configurations, Powertrain Control Techniques and Electronic Control Units,” Energy Conversion and Management, Vol. 52, No. 2, 2011, pp. 1305-1313. doi:10.1016/j.enconman.2010.09.028
[77] G. J. Offer, M. Contestabile, D. A. Howey, R. Clague and N. P. Brandon, “Techno-Economic and Behavioural Analysis of Battery Electric, Hydrogen Fuel Cell and Hybrid Vehicles in a Future Sustainable Road Transport System in the UK,” Energy Policy, Vol. 39, 2011, pp. 1939-1950. doi:10.1016/j.enpol.2011.01.006
[78] G. Gutmann, “Hybrid Electric Vehicles and Electrochemical Storage Systems—A Technology Push–Pull Couple,” Journal of Power Sources, Vol. 84, No. 2, 1999, pp. 275- 279. doi:10.1016/S0378-7753No. 99)00328-6
[79] T. Kojimaa, T. Ishizua, T. Horibaa and M. Yoshikawa, “Development of Lithiumion Battery for Fuel Cell Hybrid Electric Vehicle Application,” Journal of Power Sources, Vol. 189, No. 1, 2009, pp. 859-863. doi:10.1016/j.jpowsour.2008.10.082
[80] J. Van Mierlo, G. Maggetto and Ph. Lataire, “Which Energy Source for Road Transport in the Future? A Comparison of Battery, Hybrid and Fuel Cell Vehicles,” Energy Conversion and Management, Vol. 47, No. 17, 2006, pp. 2748-2760. doi:10.1016/j.enconman.2006.02.004
[81] T. H. Bradley and A. A. Frank, “Design, Demonstrations and Sustainability Impact Assessments for Plug-in Hybrid Electric Vehicles,” Renewable and Sustainable Energy Reviews, Vol. 13, No. 1, 2009, pp. 115-128. doi:10.1016/j.rser.2007.05.003
[82] S. Amjad, S. Neelakrishnan and R. Rudramoorthy, “Review of Design Considerations and Technological Challenges for Successful Development and Deployment of Plug-in Hybrid Electric Vehicles,” Renewable and Sustainable Energy Reviews, Vol. 14, No. 3, 2010, pp. 1104- 1110. doi:10.1016/j.rser.2009.11.001
[83] Annual Energy Outlook 2011, with Projections to 2035 No. 2011, Report #:DOE/EIA-0383, 2011. www.eia.gov
[84] W. Liao, R. Heijungs and G. Huppes, “Is Bioethanol a Sustainable Energy Source? An Energy-, Exergy-, and Emergy-Based Thermodynamic System Analysis,” Renewable Energy, Vol. 36, No. 12, 2011, pp. 3479-3487. doi:10.1016/j.renene.2011.05.030
[85] L. Luo, E. Van Der Voet and G. Hupp.es, “Life Cycle Assessment and Life Cycle Costing of Bioethanol from Sugarcane in Brazil,” Renewable and Sustainable Energy Reviews, Vol. 13, No. 6-7, 2009, pp. 1613-1619. doi:10.1016/j.rser.2008.09.024
[86] E. Hanff, M.-H. Dabat and J. Blin, “Are Biofuels an Efficient Technology for Generating Sustainable Development in Oil-Dependent African Nations? A Macroeconomic Assessment of the Opportunities and Impacts in Burkina Faso,” Renewable and Sustainable Energy Reviews, Vol. 15, No. 5, 2011, pp. 2199-2209. doi:10.1016/j.rser.2011.01.014
[87] R. Melamu and H. Von Blottnitz, “2nd Generation Biofuels a Sure Bet? A Life Cycle Assessment of How Things Could Go Wrong,” Journal of Cleaner Production, Vol. 19, No. 2-3, 2010, pp. 138-144. doi:10.1016/j.jclepro.2010.08.021
[88] Lake Nyox Data. http://www.geo.arizona.edu/geo5xx/geos577/projects/kayzar/html/lake_nyos_disaster.html
[89] http://www.geology.sdsu.edu/how_volcanoes_work/Nyos.html
[90] Nuclear Regulatory Commission, 2011. www.nrc.gov
[91] A. Ritchie and W. Howard, “Recent Developments and Likely Advances in Lithium-Ion Batteries,” Journal of Power Sources, Vol. 162 No. 2, 2006, pp. 809-812. doi:10.1016/j.jpowsour.2005.07.014
[92] T. M. Bandhauer, S. Garimella and T. F. Fuller, “A Critical Review of Thermal Issues in Lithium-Ion Batteries,” Journal of the Electrochemical Society, Vol. 158, No. 3, 2011, pp. R1-R25. doi:10.1149/1.3515880
[93] M. Park, X. Zhang, M. Chung, G. B. Less and A. M. Sastry, “A Review of Conduction Phenomena in Li-Ion Batteries,” Journal of Power Sources, Vol. 195, No. 24, 2010, pp. 7904-7929. doi:10.1016/j.jpowsour.2010.06.060
[94] L. Damen, M. Lazzari and M. Mastragostino, “Safe Lithium-Ion Battery with Ionic Liquid-Based Electrolyte for Hybrid Electric Vehicles,” Journal of Power Sources, Vol. 196, No. 20, 2011, pp. 8692-8695. doi:10.1016/j.jpowsour.2011.06.005
[95] M. Amiri, M. Esfahanian, M. Reza Hairi-Yazdi and V. Esfahanian, “Minimization of Power Losses in Hybrid Electric Vehicles in View of the Prolonging of Battery Life,” Journal of Power Sources, Vol. 190, No. 2, 2009, pp. 372-379. doi:10.1016/j.jpowsour.2009.01.072
[96] P. Roberts, “The Last Drops: How to Bridge the Gap between Oil and Green Energy,” Popular Science, 2011.
[97] Y. F. Makogon, “Perspectives for the Development of Gas Hydrate Deposits,” 1982. http://pubs.aina.ucalgary.ca/cpc/CPC4-299.pdf
[98] T. S. Collett, “Energy Resource Potential of Natural Gas Hydrates,” AAPG Bulletin, Vol. 86, No. 11, 2002, pp. 1971- 1992.
[99] G. J. Moridis, et al., “Toward Production from Gas Hydrates: Current Status, Assessment of Resources, and ModelBased Evaluation of Technology and Potential,” 2008, SPE 114163.
[100] Y. F. Makogon, “Natural Gas Hydrates—A Promising Source of Energy,” Journal of Natural Gas Science and Engineering, Vol. 2, No. 1, 2010, pp. 49-59. doi:10.1016/j.jngse.2009.12.004
[101] T. M. Odell, “High Efficiency Flexfuel Internal Combustion Engine,” USA Patent Application US 2008/0041057 A1, 2009.
[102] C. Park, Y. Choi, C. Kim, S. Oh, G. Lim and Y. Moriyoshi, “Performance and Exhaust Emission Characteristics of a Spark Ignition Engine Using Ethanol and Ethanol-Reformed Gas,” Fuel, Vol. 89, No. 8, 2010, pp. 2118- 2125. doi:10.1016/j.fuel.2010.03.018
[103] H. Lee, C.-L. Myung and S. Park, “Time-Resolved Particle Emission and Size Distribution Characteristics during Dynamic Engine Operation Conditions with Ethanol- Blended Fuels,” Fuel, Vol. 88, No. 9, 2009, pp. 1680- 1686. doi:10.1016/j.fuel.2009.03.007
[104] C. P. Cooney, J. J. Worm and J. D. Naber, “Combustion Characterization in an Internal Combustion Engine with Ethanol-Gasoline Blended Fuels Varying Compression Ratios and Ignition Timing,” Energy and Fuels, Vol. 23, No. 5, 2009, pp. 2319-2324. doi:10.1021/ef800899r
[105] G. Festel, “Bio Motor Fuels—A Comparative Analysis of Manufacturing Costs and Market Opportunities,” ChemieIngenieur-Technik, Vol. 78, No. 9, 2006, pp. 1175. doi:10.1002/cite.200650010
[106] G. Valentino, F. E. Corcione, S. E. Iannuzzi and S. Serra, “Experimental Study on Performance and Emissions of a High Speed Diesel Engine Fuelled with N-Butanol Diesel Blends under Premixed Low Temperature Combustion,” Fuel, Vol. 92, No. 1, 2012, pp. 295-307. doi:10.1016/j.fuel.2011.07.035
[107] Y.-H. Chen, T.-H. Chiang and J.-H. Chen, “An Optimum Biodiesel Combination: Jatropha and Soapnut Oil Biodiesel Blends,” Fuel, Vol. 92, No. 1, 2012, pp. 377-380. doi:10.1016/j.fuel.2011.08.018
[108] S. K. Hoekman, A. Broch, C. Robbins, E. Ceniceros and M. Natarajan, “Review of Biodiesel Composition, Properties, and Specifications,” Renewable and Sustainable Energy Reviews, Vol. 16, No. 1, 2012, pp. 143-169. doi:10.1016/j.rser.2011.07.143
[109] X. Fan and R. Burton, “Recent Development of Biodiesel Feedstocks and the Applications of Glycerol: A Review,” Open Fuels and Energy Science Journal, Vol. 2, 2009, pp. 100-109. doi:10.2174/1876973X00902010100
[110] S. K. Hoekman, A. W. Gertler, A. Broch, C. Robbins and M. Natarajan, “Biodistillate Transportation Fuels 1. Production and Properties,” SAE International Journal of Fuels and Lubricants, Vol. 2, No. 2, 2010, pp. 185-232.
[111] R. Sarin, R. Kumar, B. Srivastav, S. K. Puri, D. K. Tuli, R. K. Malhotra and A. Kumar, “Biodiesel Surrogates: Achieving Performance Demands,” Bioresource Technology, Vol. 100, No. 12, 2009, pp. 3022-3028. doi:10.1016/j.biortech.2009.01.032
[112] S. Bezergianni, K. Kalogeras and P. A. Pilavachi, “On Maximizing Biodiesel Mixing Ratio Based on Final Product Specifications,” Computers and Chemical Engineering, Vol. 35, No. 5, 2011, pp. 936-942. doi:10.1016/j.compchemeng.2011.01.034
[113] S. Lim and L. K. Teong, “Recent Trends, Opportunities and Challenges of Biodiesel in Malaysia: An Overview,” Renewable and Sustainable Energy Reviews, Vol. 14, No. 3, 2010, pp. 938-954. doi:10.1016/j.rser.2009.10.027
[114] A. Sarin, R. Arora, N. P. Singh, R. Sarin, R. K. Malhotra, and S. Sarin, “Blends of Biodiesels Synthesized from Non-Edible and Edible Oils: Effects on the Cold Filter Plugging Point,” Energy and Fuels, Vol. 24, No. 3, 2010, pp. 1996-2001. doi:10.1021/ef901131m
[115] L. Azócar, G. Ciudad, H. J. Heipieper and R. Navia, “Biotechnological Processes for Biodiesel Production Using Alternative Oils,” Applied Microbiology and Biotechnology, Vol. 88, No. 3, 2010, pp. 621-636. doi:10.1007/s00253-010-2804-z
[116] S. K. Hoekman, A. W. Gertler, A. Broch, C. Robbins and M. Natarajan, “Biodistillate Transportation Fuels 1. Production and Properties,” SAE International Journal of Fuels and Lubricants, Vol. 2, No. 2, 2010, pp. 185-232.
[117] S. Jain and M. P. Sharma, “Stability of Biodiesel and Its Blends: A Review,” Renewable and Sustainable Energy Reviews, Vol. 14, No. 2, 2010, pp. 667-678. doi:10.1016/j.rser.2009.10.011
[118] R. D. Misra and M. S. Murthy, “Straight Vegetable Oils Usage in a Compression Ignition Engine—A Review,” Renewable and Sustainable Energy Reviews, Vol. 14, No. 9, 2010, pp. 3005-3013. doi:10.1016/j.rser.2010.06.010
[119] M. Y. Koh and T. I. Mohd. Ghazi, “A Review of Biodiesel Production from Jatropha curcas L. Oil,” Renewable and Sustainable Energy Reviews, Vol. 15, No. 5, 2011, pp. 2240-2251. doi:10.1016/j.rser.2011.02.013
[120] A. Bostrom, R. E. O’Connor, G. B?hm, D. Hanss, O. Bodi, F. Ekstr?m and P. Halder, “Causal Thinking and Support for Climate Change Policies: International Survey Findings,” Global Environmental Change, Vol. 22, No. 1, 2011, pp. 210-222. doi:10.1016/j.gloenvcha.2011.09.012
[121] C. Williams, “Earth Shattering: How Global Warming Will Shake Up the Planet,” New Scientist, Vol. 211, No. 2832, 2011, pp. 38-42. doi:10.1016/S0262-4079No. 11)62404-4
[122] S. Solomon, J. S. Daniel, R. R. Neely III, J.-P. Vernier, E. G. Dutton and L. W. Thomason, “The Persistently Variable ‘Background’ Stratospheric Aerosol Layer and Global Climate Change,” Science, Vol. 333, No. 6044, 2011, pp. 866-870. doi:10.1126/science.1206027
[123] A. Robock, “Volcanic Eruptions and Climate,” Reviews of Geophysics, Vol. 38, No. 2, 2000, pp. 191-219. doi:10.1029/1998RG000054
[124] B. M. Harris and E. J. Highwood, “A Simple Relationship between Volcanic Sulfate Aerosol Optical Depth and Surface Temperature Change Simulated in an AtmosphereOcean General Circulation Model,” Journal of Geophysical Research: Atmospheres, Vol. 116, No. 5, 2011, Article ID: D05109. doi:10.1029/2010JD014581
[125] G. M. Miles, R. G. Grainger and E. J. Highwood, “The Significance of Volcanic Eruption Strength and Frequency for Climate,” Quarterly Journal of the Royal Meteorological Society, Vol. 130, No. 602, 2004, pp. 2361-2376. doi:10.1256/qj.03.60
[126] A. V. Eliseev and I. I. Mokhov, “Influence of Volcanic Activity on Climate Change in the Past Several Centuries: Assessments with a Climate Model of Intermediate Complexity,” Atmospheric and Ocean Physics, Vol. 44, No. 6, 2008, pp. 671-683. doi:10.1134/S0001433808060017
[127] M. Free and A. Robock, “Global Warming in the Context of the Little Ice Age,” Journal of Geophysical Research D: Atmospheres, Vol. 104, No. D16, 1999, pp. 19057- 19070. doi:10.1029/1999JD900233
[128] G. A. Zielinski, “Use of Paleo-Records in Determining Variability within the Volcanism-Climate System,” Quaternary Science Reviews, Vol. 19, No. 1-5, 2000, pp. 417- 438.
[129] D. I. Axelrod, “Role of Volcanism in Climate and Evolution,” Special Paper, 185, Geological Society of America, Boulder, CO., 1981.
[130] J. R. Bray, “Volcanic Triggering of Glaciation,” Nature, Vol. 260, No. 5550, 1976, pp. 414-415. doi:10.1038/260414a0
[131] R. A. Bryson and B. M. Goodman, “Volcanic Activity and Climatic Changes,” Science, Vol. 207, No. 4435, 1980, pp. 1041-1044. doi:10.1126/science.207.4435.1041
[132] B.-K. Moon, D. Youn, R. J. Park, S.-W. Yeh, W.-M. Kim, Y.-H. Kim, J. I. Jeong, et al., “Meteorological Responses to Mt. Baekdu Volcanic Eruption over East Asia in an Offline Global Climate-Chemistry Model: A Pilot Study,” Asia-Pacific Journal of Atmospheric Sciences, Vol. 47, No. 4, 2011, pp. 345-351. doi:10.1007/s13143-011-0021-z
[133] T. Yuan, L. A. Remer and H. Yu, “Microphysical, Macrophysical and Radiative Signatures of Volcanic Aerosols in Trade Wind Cumulus Observed by the A-Train,” Atmospheric Chemistry and Physics, Vol. 11, No. 14, 2011, pp. 7119-7132. doi:10.5194/acp-11-7119-2011
[134] F. Yang and M. E. Schlesinger, “Identification and Separation of Mount Pinatubo and El Ni?o-Southern Oscillation Land Surface Temperature Anomalies,” Journal of Geophysical Research D: Atmospheres, Vol. 106, No. D14, 2001, pp. 14757-14770. doi:10.1029/2001JD900146
[135] A. G. Marshall, A. A. Scaife and S. Ineson, “Enhanced Seasonal Prediction of European Winter Warming Following Volcanic Eruptions,” Journal of Climate, Vol. 22, No. 23, 2009, pp. 6168-6180. doi:10.1175/2009JCLI3145.1
[136] D. E. Parker, H. Wilson, P. D. Jones, J. R. Christy and C. K. Folland, “The Impact of Mount Pinatubo on WorldWide Temperatures,” International Journal of Climatology, Vol. 16, No. 5, 1996, pp. 487-497. doi:10.1002/No.SICI)1097-0088No.199605)16:5<487::AID-JOC39>3.0.CO;2-J
[137] J. K. Angell, “Impact of El Nino on the Delineation of Tropospheric Cooling Due to Volcanic Eruptions,” Journal of Geophysical Research, Vol. 93, No. D4, 1988, pp. 3697-3704. doi:10.1029/JD093iD04p03697
[138] S. Bekki, J. A. Pyle, W. Zhong, R. Toumi, J. D. Haigh and D. M. Pyle, “The Role of Microphysical and Chemical Processes in Prolonging the Climate Forcing of the Toba Eruption,” Geophysical Research Letters, Vol. 23 No. 19, 1996, pp. 2669-2672. doi:10.1029/96GL02088
[139] G. J. S. Bluth, S. D. Doiron, C. C. Schnetzler, A. J. Krueger and L. S. Walter, “Global Tracking of the SO2 Clouds from the June, 1991 Mount Pinatubo Eruptions,” Geophysical Research Letters, Vol. 19, No. 2, 1992, pp. 151- 154. doi:10.1029/91GL02792
[140] R. D. Cadle, “Comparison of Volcanic with Other Fluxes of Atmospheric Trace Gas Constituents,” Reviews of Geophysics and Space Physics, Vol. 18, No. 4, 1980, pp. 746- 752. doi:10.1029/RG018i004p00746
[141] J. Cole-Dai, E. Mosley-Thompson and L. G. Thompson, “Quantifying the Pinatubo Volcanic Signal in South Polar Snow,” Geophysical Research Letters, Vol. 24, No. 21, 1977, pp. 2679-2682. doi:10.1029/97GL02734
[142] M. P. McCormick, L. W. Thomason and C. R. Trepte, “Atmospheric Effects of the Mt Pinatubo Eruption,” Nature, Vol. 373 No. 6513, 1995, pp. 399-404. doi:10.1038/373399a0
[143] G. Gu and R. F. Adler, “Large-Scale, Inter-Annual Relations among Surface Temperature, Water Vapour and Precipitation with and without ENSO and Volcano Forcings,” International Journal of Climatology, Vol. 32, No. 12, 2012, pp. 1782-1791. doi:10.1002/joc.2393
[144] J. Boulon, K. Sellegri, M. Hervo and P. Laj, “Observations of Nucleation of New Particles in a Volcanic Plume,” Proceedings of the National Academy of Sciences of the United States of America, Vol. 108, No. 30, 2011, pp. 12223-12226. doi:10.1073/pnas.1104923108
[145] S. Blake, “Correlations between Eruption Magnitude SO2 Yield, and Surface Cooling,” Geological Society Special Publication, Vol. 213, 2003, pp. 371-380.
[146] D. T. Shindell, G. A. Schmidt, M. E. Mann and G. Faluvegi, “Dynamic Winter Climate Response to Large Tropical Volcanic Eruptions since 1600,” Journal of Geophysical Research D: Atmospheres, Vol. 109, No. 5, 2004, pp. D05104 1-12.
[147] J. K. Angell and J. Korshover, “Surface Temperature Changes Following the Six Major Volcanic Episodes between 1780 and 1980,” Journal of Climate & Applied Meteorology, Vol. 24, No. 9, 1985, pp. 937-951. doi:10.1175/1520-0450No. 1985)0242.0.CO;2
[148] R. S. Bradley, “The Explosive Volcanic Eruption Signal in Northern Hemisphere Continental Temperature Records,” Climatic Change, Vol. 12, No. 3, 1988, pp. 221- 243. doi:10.1007/BF00139431
[149] R. S. Bradley and P. D. Jones, “Records of Explosive Volcanic Eruptions over the Last 500 Years,” Climate since A.D. 1500, 1992, pp. 606-622.
[150] J. R. Bray, “Glacial Advance Relative to Volcanic Activity since 1500 AD,” Nature, Vol. 248, No. 5443, 1974, pp. 42-43. doi:10.1038/248042a0
[151] K. R. Briffa, P. D. Jones, T. S. Bartholin, D. Eckstein, F. H. Schweingruber, W. Karlén, P. Zetterberg and M. Eronen, “Fennoscandian Summers from AD 500: Temperature Changes on Short and Long Timescales,” Climate Dynamics, Vol. 7 No. 3, 1992, pp. 111-119. doi:10.1007/BF00211153
[152] K. R. Briffa, P. D. Jones, F. H. Schweingruber and T. J. Osborn, “Influence of Volcanic Eruptions on Northern Hemisphere Summer Temperature over the Past 600 Years,” Nature, Vol. 393, No. 6684, 1998, pp. 450-455. doi:10.1038/30943
[153] T. J. Crowley, T. M. Quinn, F. W. Taylor, C. Henin and P. Joannot, “Evidence for a Volcanic Cooling Signal in a 335-Year Coral Record from New Caledonia,” Paleoceanography, Vol. 12 No. 5, 1997, pp. 633-639. doi:10.1029/97PA01348
[154] R. D. D’Arrigo and G. C. Jacoby, “Northern North American Tree-Ring Evidence for Regional Temperature Changes after Major Volcanic Event,” Climatic Change, Vol. 41, No. 1, 1999, pp. 1-15. doi:10.1023/A:1005370210796
[155] R. J. Delmas, M. Legrand, A. J. Aristarain and F. Zanolini, “Volcanic Deposits in Antarctic Snow and Ice,” Journal of Geophysical Research, Vol. 90, No. D7, 1985, pp. 12901- 12920. doi:10.1029/JD090iD07p12901
[156] K. Gr?nvold, N. óskarsson, S. J. Johnsen, H. B. Clausen, C. U. Hammer, G. Bond and E. Bard, “Ash Layers from Iceland in the Greenland GRIP Ice Core Correlated with Oceanic and Land Sediments,” Earth and Planetary Science Letters, Vol. 135, No. 1-4, 1995, pp. 149-155. doi:10.1016/0012-821XNo. 95)00145-3
[157] H. H. Lamb, “Volcanic Dust in the Atmosphere, with a Chronology and Assessment of Its Meteorological Significance,” Philosophical Transactions of the Royal Society of London Series A: Mathematical and Physical Science, Vol. 266, No. 1178, 1970, pp. 425-533. doi:10.1098/rsta.1970.0010

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