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Low emissions development pathways of the Macedonian energy sector

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  • Dedinec, Aleksandar
  • Taseska-Gjorgievska, Verica
  • Markovska, Natasa
  • Pop-Jordanov, Jordan
  • Kanevce, Gligor
  • Goldstein, Gary
  • Pye, Steve
  • Taleski, Rubin

Abstract

In this paper MARKAL integrated energy system model is applied to explore the impacts and opportunities for low emissions energy system development in Macedonia, identifying CO2 emission reduction policies and the cost of taking action. Two scenarios with different reduction target have been examined: higher ambition scenario where emissions are restricted to 10% above 1990 levels in 2021 and 2.5% in 2030, and moderate ambition scenario where emissions are restricted to 25% above 1990 levels in 2021 and 15% in 2030. In order to provide insights into the optimal timing of emission reductions, both of these cases have also been run under cumulative constraints, that is, rather than having the specified annual targets, there is a carbon “budget” set for 2015–2030 (44Mt and 26Mt for higher and moderate ambition cases, respectively), reflecting the same ambition as the above cases but providing flexibility to reduce emissions in the most cost-optimal way. The results show that most of the CO2 reductions are in the power generation sector, which is not surprising as this tends to be the most carbon intensive sector. The higher ambition case is considerably more expensive than the reference case, with costs 1.9% higher, while the increase under the moderate ambition case is 1%. Under a cumulative constraint, the additional costs are reduced to 1.5% and 0.6% respectively, highlighting the importance of the timing of action.

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  • Dedinec, Aleksandar & Taseska-Gjorgievska, Verica & Markovska, Natasa & Pop-Jordanov, Jordan & Kanevce, Gligor & Goldstein, Gary & Pye, Steve & Taleski, Rubin, 2016. "Low emissions development pathways of the Macedonian energy sector," Renewable and Sustainable Energy Reviews, Elsevier, vol. 53(C), pages 1202-1211.
  • Handle: RePEc:eee:rensus:v:53:y:2016:i:c:p:1202-1211
    DOI: 10.1016/j.rser.2015.09.044
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    as
    1. Tsai, Miao-Shan & Chang, Ssu-Li, 2015. "Taiwan’s 2050 low carbon development roadmap: An evaluation with the MARKAL model," Renewable and Sustainable Energy Reviews, Elsevier, vol. 49(C), pages 178-191.
    2. Sarica, Kemal & Tyner, Wallace E., 2013. "Analysis of US renewable fuels policies using a modified MARKAL model," Renewable Energy, Elsevier, vol. 50(C), pages 701-709.
    3. Kabashi, Skender & Bekteshi, Sadik & Ahmetaj, Skender & Kabashi, Gazmend & Najdovski, Dimitrij & Zidansek, Aleksander & Slaus, Ivo, 2011. "Effects of Kosovo's energy use scenarios and associated gas emissions on its climate change and sustainable development," Applied Energy, Elsevier, vol. 88(2), pages 473-478, February.
    4. Mondal, Md. Alam Hossain & Kennedy, Scott & Mezher, Toufic, 2014. "Long-term optimization of United Arab Emirates energy future: Policy implications," Applied Energy, Elsevier, vol. 114(C), pages 466-474.
    5. Bueno, Gorka, 2012. "Analysis of scenarios for the reduction of energy consumption and GHG emissions in transport in the Basque Country," Renewable and Sustainable Energy Reviews, Elsevier, vol. 16(4), pages 1988-1998.
    6. Uyterlinde, Martine A. & Junginger, Martin & de Vries, Hage J. & Faaij, Andre P.C. & Turkenburg, Wim C., 2007. "Implications of technological learning on the prospects for renewable energy technologies in Europe," Energy Policy, Elsevier, vol. 35(8), pages 4072-4087, August.
    7. Wright, Evelyn L. & Belt, Juan A.B. & Chambers, Adam & Delaquil, Pat & Goldstein, Gary, 2010. "A scenario analysis of investment options for the Cuban power sector using the MARKAL model," Energy Policy, Elsevier, vol. 38(7), pages 3342-3355, July.
    8. Kannan, Ramachandran & Strachan, Neil, 2009. "Modelling the UK residential energy sector under long-term decarbonisation scenarios: Comparison between energy systems and sectoral modelling approaches," Applied Energy, Elsevier, vol. 86(4), pages 416-428, April.
    9. Hao, Han & Geng, Yong & Li, Weiqi & Guo, Bin, 2015. "Energy consumption and GHG emissions from China's freight transport sector: Scenarios through 2050," Energy Policy, Elsevier, vol. 85(C), pages 94-101.
    10. Rootzén, Johan & Johnsson, Filip, 2013. "Exploring the limits for CO2 emission abatement in the EU power and industry sectors—Awaiting a breakthrough," Energy Policy, Elsevier, vol. 59(C), pages 443-458.
    11. van den Broek, Machteld & Veenendaal, Paul & Koutstaal, Paul & Turkenburg, Wim & Faaij, André, 2011. "Impact of international climate policies on CO2 capture and storage deployment: Illustrated in the Dutch energy system," Energy Policy, Elsevier, vol. 39(4), pages 2000-2019, April.
    12. Mallah, Subhash & Bansal, N.K., 2010. "Allocation of energy resources for power generation in India: Business as usual and energy efficiency," Energy Policy, Elsevier, vol. 38(2), pages 1059-1066, February.
    13. Zhai, Pei & Larsen, Peter & Millstein, Dev & Menon, Surabi & Masanet, Eric, 2012. "The potential for avoided emissions from photovoltaic electricity in the United States," Energy, Elsevier, vol. 47(1), pages 443-450.
    14. Urban, F. & Benders, R.M.J. & Moll, H.C., 2007. "Modelling energy systems for developing countries," Energy Policy, Elsevier, vol. 35(6), pages 3473-3482, June.
    15. Mallah, Subhash & Bansal, N.K., 2010. "Renewable energy for sustainable electrical energy system in India," Energy Policy, Elsevier, vol. 38(8), pages 3933-3942, August.
    16. Tsai, Miao-Shan & Chang, Ssu-Li, 2013. "Taiwan's GHG mitigation potentials and costs: An evaluation with the MARKAL model," Renewable and Sustainable Energy Reviews, Elsevier, vol. 20(C), pages 294-305.
    17. Anandarajah, Gabrial & Strachan, Neil, 2010. "Interactions and implications of renewable and climate change policy on UK energy scenarios," Energy Policy, Elsevier, vol. 38(11), pages 6724-6735, November.
    18. Simões, Sofia & Cleto, João & Fortes, Patri­cia & Seixas, Júlia & Huppes, Gjalt, 2008. "Cost of energy and environmental policy in Portuguese CO2 abatement--scenario analysis to 2020," Energy Policy, Elsevier, vol. 36(9), pages 3598-3611, September.
    19. Cosmi, C. & Macchiato, M. & Mangiamele, L. & Marmo, G. & Pietrapertosa, F. & Salvia, M., 2003. "Environmental and economic effects of renewable energy sources use on a local case study," Energy Policy, Elsevier, vol. 31(5), pages 443-457, April.
    20. Gambhir, Ajay & Napp, Tamaryn A. & Emmott, Christopher J.M. & Anandarajah, Gabrial, 2014. "India's CO2 emissions pathways to 2050: Energy system, economic and fossil fuel impacts with and without carbon permit trading," Energy, Elsevier, vol. 77(C), pages 791-801.
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