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Medium term development prospects of cogeneration district heating systems in transition country – Croatian case

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  • Lončar, D.
  • Ridjan, I.

Abstract

A dominant share of Croatian cogeneration capacity and future cogeneration potential belongs to district heating systems currently operating in almost all bigger mainland and coastal towns. Since public cogeneration and public heating plants cover only 10% of heating requirements of households and services sectors it is reasonable to assume that in future energy supply district heating could take a bigger relative and absolute share even in conditions of reduced heat demand imposed by implementation of Energy Performance of Buildings Directive. However, development of future district heating projects will inevitably depend on capability to bridge financing barriers usually manifesting in large investment costs and long pay-back time. The public involvement will be necessary either at state or/and at municipal level since private companies are focused on short-term profitability. In this paper comparison of various concepts of district and individual buildings heating has been performed with respect to efficiency and environmental indicators. Taking a midsize town as an example profitability of operation of both biomass and of natural gas fired district heating cogeneration plants have been analysed. Calculated results indicate levels of financial support required for sustainability of district heating projects in specific conditions of Croatian energy market.

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  • Lončar, D. & Ridjan, I., 2012. "Medium term development prospects of cogeneration district heating systems in transition country – Croatian case," Energy, Elsevier, vol. 48(1), pages 32-39.
  • Handle: RePEc:eee:energy:v:48:y:2012:i:1:p:32-39
    DOI: 10.1016/j.energy.2012.07.025
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    1. Dobos, László & Abonyi, János, 2011. "Controller tuning of district heating networks using experiment design techniques," Energy, Elsevier, vol. 36(8), pages 4633-4639.
    2. Lund, H. & Möller, B. & Mathiesen, B.V. & Dyrelund, A., 2010. "The role of district heating in future renewable energy systems," Energy, Elsevier, vol. 35(3), pages 1381-1390.
    3. Dalla Rosa, A. & Li, H. & Svendsen, S., 2011. "Method for optimal design of pipes for low-energy district heating, with focus on heat losses," Energy, Elsevier, vol. 36(5), pages 2407-2418.
    4. Lončar, D. & Duić, N. & Bogdan, Ž., 2009. "An analysis of the legal and market framework for the cogeneration sector in Croatia," Energy, Elsevier, vol. 34(2), pages 134-143.
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    8. Čulig-Tokić, Dario & Krajačić, Goran & Doračić, Borna & Mathiesen, Brian Vad & Krklec, Robert & Larsen, Jesper Møller, 2015. "Comparative analysis of the district heating systems of two towns in Croatia and Denmark," Energy, Elsevier, vol. 92(P3), pages 435-443.
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