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Geographic maps of the impact of government incentives on the economic viability of solar power

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  • MacDougall, Hillary
  • Tomosk, Steve
  • Wright, David

Abstract

This paper presents geographic maps of the profitability of PV and CPV solar projects over 1,960,000 km2. Such maps supplement the irradiance maps used in solar project planning and are relevant to government policy makers to assess the impact of incentives on profitability. Also, they are useful to solar project developers to identify geographical areas in which a required rate of financial return can be expected. Eight such maps of central Canada are presented in this paper and show the impact on profitability of different levels of government incentives, the difference in profitability between PV and CPV and the impact on profitability of delaying a project start date from 2016 to 2020. Government incentives of 10%–30% of the capital cost improve the internal rate of return (IRR) by between 0.7 and 4.67. For PV, the orientation of the modules is optimized to achieve maximum IRR resulting in an IRR increase of between 1.3% and 8.2%. Since CPV is a more recent technology than PV, its capital costs are projected to decline faster and we quantify the impact on IRR by showing that CPV has a higher IRR than PV of between 0.55 in 2016 and 3.6 in 2020.

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  • MacDougall, Hillary & Tomosk, Steve & Wright, David, 2018. "Geographic maps of the impact of government incentives on the economic viability of solar power," Renewable Energy, Elsevier, vol. 122(C), pages 497-506.
  • Handle: RePEc:eee:renene:v:122:y:2018:i:c:p:497-506
    DOI: 10.1016/j.renene.2017.12.108
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    1. Lave, Matthew & Kleissl, Jan, 2011. "Optimum fixed orientations and benefits of tracking for capturing solar radiation in the continental United States," Renewable Energy, Elsevier, vol. 36(3), pages 1145-1152.
    2. Tomosk, Steve & Haysom, Joan E. & Hinzer, Karin & Schriemer, Henry & Wright, David, 2017. "Mapping the geographic distribution of the economic viability of photovoltaic load displacement projects in SW USA," Renewable Energy, Elsevier, vol. 107(C), pages 101-112.
    3. Bazilian, Morgan & Onyeji, Ijeoma & Liebreich, Michael & MacGill, Ian & Chase, Jennifer & Shah, Jigar & Gielen, Dolf & Arent, Doug & Landfear, Doug & Zhengrong, Shi, 2013. "Re-considering the economics of photovoltaic power," Renewable Energy, Elsevier, vol. 53(C), pages 329-338.
    4. Mabee, Warren E. & Mannion, Justine & Carpenter, Tom, 2012. "Comparing the feed-in tariff incentives for renewable electricity in Ontario and Germany," Energy Policy, Elsevier, vol. 40(C), pages 480-489.
    5. Reichelstein, Stefan & Yorston, Michael, 2013. "The prospects for cost competitive solar PV power," Energy Policy, Elsevier, vol. 55(C), pages 117-127.
    6. Swift, Kenton D., 2013. "A comparison of the cost and financial returns for solar photovoltaic systems installed by businesses in different locations across the United States," Renewable Energy, Elsevier, vol. 57(C), pages 137-143.
    7. Perpiña Castillo, Carolina & Batista e Silva, Filipe & Lavalle, Carlo, 2016. "An assessment of the regional potential for solar power generation in EU-28," Energy Policy, Elsevier, vol. 88(C), pages 86-99.
    8. Brewer, Justin & Ames, Daniel P. & Solan, David & Lee, Randy & Carlisle, Juliet, 2015. "Using GIS analytics and social preference data to evaluate utility-scale solar power site suitability," Renewable Energy, Elsevier, vol. 81(C), pages 825-836.
    9. Branker, K. & Pathak, M.J.M. & Pearce, J.M., 2011. "A review of solar photovoltaic levelized cost of electricity," Renewable and Sustainable Energy Reviews, Elsevier, vol. 15(9), pages 4470-4482.
    10. Aly, Ahmed & Jensen, Steen Solvang & Pedersen, Anders Branth, 2017. "Solar power potential of Tanzania: Identifying CSP and PV hot spots through a GIS multicriteria decision making analysis," Renewable Energy, Elsevier, vol. 113(C), pages 159-175.
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    4. Kwak, Younghoon & Mun, Sun-Hye & Park, Chang-Dae & Lee, Sang-Moon & Huh, Jung-Ho, 2022. "Statistical analysis of power generation of semi-transparent photovoltaic (STPV) for diversity in building envelope design: A mock-up test by azimuth and tilt angles," Renewable Energy, Elsevier, vol. 188(C), pages 651-669.

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