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Policy strategies and paths to promote sustainable energy systems--The dynamic Invert simulation tool

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  • Stadler, Michael
  • Kranzl, Lukas
  • Huber, Claus
  • Haas, Reinhard
  • Tsioliaridou, Elena

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  • Stadler, Michael & Kranzl, Lukas & Huber, Claus & Haas, Reinhard & Tsioliaridou, Elena, 2007. "Policy strategies and paths to promote sustainable energy systems--The dynamic Invert simulation tool," Energy Policy, Elsevier, vol. 35(1), pages 597-608, January.
  • Handle: RePEc:eee:enepol:v:35:y:2007:i:1:p:597-608
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    References listed on IDEAS

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    1. Gustav Resch & Thomas Faber & Reinhard Haas & Claus Huber, 2004. "Experience Curves Vs Dynamic Cost-Resource Curves and Their Impact on the Assessment of the Future Development of Renewables," Energy & Environment, , vol. 15(2), pages 309-321, March.
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    Cited by:

    1. Mezősi, András & Beöthy, Ákos & Kácsor, Enikő & Törőcsik, Ágnes, 2016. "A magyarországi távhő-szabályozás modellezése. A megújuló energiára alapozott hőtermelés [Modelling policy options in the district heating sector, with a focus on renewable consumption]," Közgazdasági Szemle (Economic Review - monthly of the Hungarian Academy of Sciences), Közgazdasági Szemle Alapítvány (Economic Review Foundation), vol. 0(11), pages 1149-1176.
    2. Duic, Neven & Krajacic, Goran & da Graça Carvalho, Maria, 2008. "RenewIslands methodology for sustainable energy and resource planning for islands," Renewable and Sustainable Energy Reviews, Elsevier, vol. 12(4), pages 1032-1062, May.
    3. Knobloch, Florian & Pollitt, Hector & Chewpreecha, Unnada & Lewney, Richard & Huijbregts, Mark A.J. & Mercure, Jean-Francois, 2021. "FTT:Heat — A simulation model for technological change in the European residential heating sector," Energy Policy, Elsevier, vol. 153(C).
    4. Caroline Löffler & Harald Hecking, 2017. "Greenhouse Gas Abatement Cost Curves of the Residential Heating Market: A Microeconomic Approach," Environmental & Resource Economics, Springer;European Association of Environmental and Resource Economists, vol. 68(4), pages 915-947, December.
    5. Connolly, D. & Lund, H. & Mathiesen, B.V. & Leahy, M., 2010. "A review of computer tools for analysing the integration of renewable energy into various energy systems," Applied Energy, Elsevier, vol. 87(4), pages 1059-1082, April.
    6. Prasad, Ravita D. & Bansal, R.C. & Raturi, Atul, 2014. "Multi-faceted energy planning: A review," Renewable and Sustainable Energy Reviews, Elsevier, vol. 38(C), pages 686-699.
    7. András Mezősi & Enikő Kácsor & à kos Beöthy & à gnes Törőcsik & László Szabó, 2017. "Modelling support policies and renewable energy sources deployment in the Hungarian district heating sector," Energy & Environment, , vol. 28(1-2), pages 70-87, March.
    8. Andreas Welling, 2017. "Green Finance: Recent developments, characteristics and important actors," FEMM Working Papers 170002, Otto-von-Guericke University Magdeburg, Faculty of Economics and Management.
    9. Merkel, Erik & Fehrenbach, Daniel & McKenna, Russell & Fichtner, Wolf, 2014. "Modelling decentralised heat supply: An application and methodological extension in TIMES," Energy, Elsevier, vol. 73(C), pages 592-605.
    10. Kranzl, Lukas & Hummel, Marcus & Müller, Andreas & Steinbach, Jan, 2013. "Renewable heating: Perspectives and the impact of policy instruments," Energy Policy, Elsevier, vol. 59(C), pages 44-58.
    11. Bürger, Veit & Klinski, Stefan & Lehr, Ulrike & Leprich, Uwe & Nast, Michael & Ragwitz, Mario, 2008. "Policies to support renewable energies in the heat market," Energy Policy, Elsevier, vol. 36(8), pages 3140-3149, August.

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