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Energy analysis of municipal waste in Dubrovnik

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
In each touristic city waste management system has to overcome the impact of visitors. Dubrovnik, famous as popular touristic destination, particularly notices tourists visiting city. Therefore potential impact of waste management in touristic cities, such as Dubrovnik, is presented. The paper includes estimation of yearly waste production by inhabitants and tourists visiting those city. Waste digestion is a method for biogas production. On the basis of the preceding estimation combined-cycle installation generating heat and electricity is proposed. The model combines Brayton cycle with low temperature Kalina model based on Rankine cycle. Literature analysis presents state of the art in this field. The simulation is prepared in Cycle-Tempo. Numerical analyses lead to technical issues, which have to be taken into consideration during waste utilization with such installation. Thus benefits and threats are discussed. The presented analysis assesses the maximal electric gain, which subsequently should consider waste preparation and purification.
Twórcy
autor
  • AGH University of Science and Technology, al. Mickiewicza 30, 30-059 Kraków
  • University of Zagreb, Trg Republike Hrvatske 14, 10000 Zagreb
Bibliografia
  • [1] Croatian National Tourist Board, Tourism in Figures 2016, 2016.
  • [2] J. Kizielewicz, The Mediterranean Sea Region - the leader in the cruise ship tourism in Europe, vol. 36, no. 108, pp. 80-88, 2013.
  • [3] Eurostat, Energy balance sheets, vol. 33, no. 9. 2016.
  • [4] Z. A. Velike and E. Sustave, ‘New , Modern Hydro Power Plant Dubrovnik Control System’, pp. 1-8, 2013.
  • [5] Rudine 34.2 MW Wind Power Plant, Croatia [Online]. Available: http://www.rpglobal.com/wind/croatia/rudine/ [Accessed: 17-Aug-2017].
  • [6] A. Falkoni and G. Krajacic, Linear correlation and regression between the meteorological data and the electricity demand of the Dubrovnik region in a short-term scale, Therm. Sci., vol. 20, no. 4, pp. 1073-1089, 2016.
  • [7] D. Schneider and B. Željko, Analysis of a sustainable system for energy recovery from municipal waste in Croatia, Manag. Environ. Qual. An Int. J., vol. 22, no. 1, pp. 105-120, 2011.
  • [8] M. Serdar, M. Serdar, M. Serdar, and M. Serdar, Use of sludge generated at WWTP in the production of cement mortal and concrete, J. Croat. Assoc. Civ. Eng., vol. 68, no. 03, pp. 199-210, 2016.
  • [9] D. Styles, H. Schönberger, and J. L. G. Martos, Best environmental management practice in the tourism sector. 2013.
  • [10] I. Kožić, Preliminary Report of Croatian Sustainable Tourism Observatory - Focal area: Adriatic Croatia, no. July, 2016.
  • [11] I. Gruber and D. Stead, Urban strategies for Waste Management in Tourist Cities, 2016.
  • [12] N. Matak, Ed., Data from ‘ESEIA Summer School 2017’ in Dubrovnik.
  • [13] K. Vatopoulos and D. Andrews, Study on the state of play of energy efficiency of heat and electricity production technologies. 2012.
  • [14] D. Elango, M. Pulikesi, P. Baskaralingam, V. Ramamurthi, and S. Sivanesan, Production of biogas from municipal solid waste with domestic sewage, J. Hazard. Mater., vol. 141, no. 1, pp. 301-304, 2007.
  • [15] I. Zsirai, Sewage Sludge as Renewable Energy, J. Residuals Sci. Technol., vol. 8, no. 4, pp. 165-179, 2011.
  • [16] M. Devine, Engines? Turbines? Both? Choosing Power for CHP Projects, no. August, 2013.
  • [17] L. Houdková, J. Boráň, J. Pěček, and P. Šumpela, Biogas - A renewable source of energy, Therm. Sci., vol. 12, no. 4, pp. 27-33, 2008.
  • [18] A. Matuszewska, M. Owczuk, A. Zamojska-Jaroszewicz, J. Jakubiak-Lasocka, J. Lasocki, and P. Orliński, Evaluation of the biological methane potential of various feedstock for the production of biogas to supply agricultural tractors, Energy Convers. Manag., vol. 125, no. October, pp. 309-319, 2016.
  • [19] S. A. Opatokun, V. Strezov, and T. Kan, Product based evaluation of pyrolysis of food waste and its digestate, Energy, vol. 92, pp. 349-354, 2015.
  • [20] Y. Cao and A. Pawłowski, Sewage sludge-to-energy approaches based on anaerobic digestion and pyrolysis: Brief overview and energy efficiency assessment, Renew. Sustain. Energy Rev., vol. 16, no. 3, pp. 1657-1665, 2012.
  • [21] K. Tucki et al., Design of Digester Biogas Tank Part 1 : Biogas Calculator - Tool to Perform Biogas Energy Calculations, vol. 15, no. 1, pp. 75-82, 2015.
  • [22] Bioenergy in Germany : Facts and Figures Solid fuels Biofuels, Bioenergy Ger. Facts Fig., no. January, 2012.
  • [23] Y. Demirel, Energy: Production, Conversion, Storage, Conservation, and Coupling, vol. 69. 2012.
  • [24] E. Macchi, Organic Rankine Cycle (ORC) Power Systems Technologies and Applications, 2016.
  • [25] M. Yari, A. S. Mehr, V. Zare, S. M. S. Mahmoudi, and M. A. Rosen, Exergoeconomic comparison of TLC (trilateral Rankine cycle), ORC (organic Rankine cycle) and Kalina cycle using a low grade heat source, Energy, vol. 83, pp. 712-722, 2015.
  • [26] J. Milewski and J. Krasucki, Comparison of ORC and Kalina cycles for waste heat recovery in the steel industry, vol. 97, no. 4, pp. 302-307, 2017.
  • [27] R. Usvika, M. Rifaldi, and A. Noor, Energy and exergy analysis of Kalina cycle system ( KCS ) 34 with mass fraction ammonia-water mixture variation, vol. 23, pp. 1871-1876, 2009.
Uwagi
Opracowanie rekordu w ramach umowy 509/P-DUN/2018 ze środków MNiSW przeznaczonych na działalność upowszechniającą naukę (2018).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-a0c228f9-f794-4dcb-ac79-97458afb17cf
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