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Levelized Cost Of Electricity Generation Technologies

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  • GERALD R. BEMIS
  • MICHAEL DoANGELIS

Abstract

The levelized cost of electricity is estimated for more than 70 electricity production technologies and for two facility ownership sectors. The analysis uses a Lotus 1–2‐3 spreadsheet for a consistent approach. The cost effectiveness of several alternative technologies is compared with that of conventional technologies. A variety of owners could build and operate facilities made from these conventional and alternative technologies.

Suggested Citation

  • GERALD R. BEMIS & MICHAEL DoANGELIS, 1990. "Levelized Cost Of Electricity Generation Technologies," Contemporary Economic Policy, Western Economic Association International, vol. 8(3), pages 200-214, July.
  • Handle: RePEc:bla:coecpo:v:8:y:1990:i:3:p:200-214
    DOI: 10.1111/j.1465-7287.1990.tb00654.x
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    Cited by:

    1. Nathan, G.J. & Battye, D.L. & Ashman, P.J., 2014. "Economic evaluation of a novel fuel-saver hybrid combining a solar receiver with a combustor for a solar power tower," Applied Energy, Elsevier, vol. 113(C), pages 1235-1243.
    2. A. L Walton & Darwin C. Hall, 1990. "Solar Power," Contemporary Economic Policy, Western Economic Association International, vol. 8(3), pages 240-254, July.
    3. John Foster & Liam Wagner & Phil Wild & Junhua Zhao & Lucas Skoofa & Craig Froome, 2011. "Market and Economic Modelling of the Intelligent Grid: End of Year Report 2009," Energy Economics and Management Group Working Papers 09, School of Economics, University of Queensland, Australia.
    4. Söderholm, Patrik & Pettersson, Maria, 2011. "Offshore wind power policy and planning in Sweden," Energy Policy, Elsevier, vol. 39(2), pages 518-525, February.
    5. Darwin C. Hall, 1990. "Preliminary Estimates Of Cumulative Private And External Costs Of Energy," Contemporary Economic Policy, Western Economic Association International, vol. 8(3), pages 283-307, July.
    6. Lim, Jin Han & Chinnici, Alfonso & Dally, Bassam B. & Nathan, Graham J., 2016. "Assessment of the potential benefits and constraints of a hybrid solar receiver and combustor operated in the MILD combustion regime," Energy, Elsevier, vol. 116(P1), pages 735-745.
    7. Lim, Jin Han & Hu, Eric & Nathan, Graham J., 2016. "Impact of start-up and shut-down losses on the economic benefit of an integrated hybrid solar cavity receiver and combustor," Applied Energy, Elsevier, vol. 164(C), pages 10-20.
    8. Bergek, Anna & Mignon, Ingrid & Sundberg, Gunnel, 2013. "Who invests in renewable electricity production? Empirical evidence and suggestions for further research," Energy Policy, Elsevier, vol. 56(C), pages 568-581.
    9. Pettersson, Fredrik & Söderholm, Patrik, 2009. "The diffusion of renewable electricity in the presence of climate policy and technology learning: The case of Sweden," Renewable and Sustainable Energy Reviews, Elsevier, vol. 13(8), pages 2031-2040, October.
    10. Söderholm, Patrik & Ek, Kristina & Pettersson, Maria, 2007. "Wind power development in Sweden: Global policies and local obstacles," Renewable and Sustainable Energy Reviews, Elsevier, vol. 11(3), pages 365-400, April.
    11. Zongguo Wen & Xuan Zhang & Xuewei Yu & Jinghan Di, 2015. "Technology options for reducing CO 2 in China's electricity sector in 2010–2030: From the perspective of internal and social costs," Greenhouse Gases: Science and Technology, Blackwell Publishing, vol. 5(6), pages 772-785, December.
    12. Darwin Hall, 1992. "Social cost of CO 2 abatement from energy efficiency and solar power in the United States," Environmental & Resource Economics, Springer;European Association of Environmental and Resource Economists, vol. 2(5), pages 491-512, September.
    13. Märkle-Huß, Joscha & Feuerriegel, Stefan & Neumann, Dirk, 2020. "Cost minimization of large-scale infrastructure for electricity generation and transmission," Omega, Elsevier, vol. 96(C).

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