Have a personal or library account? Click to login
Assessment of the Waste Management System in Krakow as an Element of Circular Economy Cover

Assessment of the Waste Management System in Krakow as an Element of Circular Economy

Open Access
|Apr 2021

References

  1. Analysis of the state of municipal waste management in the Municipality of Krakow, https://www.bip.krakow.pl/zalaczniki/dokumenty/n/271689/karta.
  2. Reports of the Mayor of the City of Krakow on the implementation of tasks in the field of municipal waste management https://www.bip.krakow.pl/?sub_dok_id=60884.
  3. Act on maintaining cleanliness and order in municipalities (Journal of Laws 2020.1439) of 2020.08.24.
  4. Waste Act (Journal of Laws 2020.797) of May 2020, 04.
  5. Christensen, T. (2011). Solid Waste Technology and Management, John Wiley & Sons, ISBN 9781405175173.
  6. Cossu, R. (2009). From triangles to cycles, Waste Management, 29(12), 2915-2917. DOI: 10.1016/j.wasman.2009.09.002.
  7. den Boer, E., den Boer, J., & Jager, J. (2005). Waste management planning and optimization, Ibidem, Stuttgart.
  8. Ławińska, K., Szufa, S., Obraniak, A., Olejnik, T., Siuda, R., Kwiatek, J., & Ogrodowczyk D. (2020). Disc Granulation Process of Carbonation Lime Mud as a Method of Post-Production Waste Management, Energies, 13, 3419, doi:10.3390/en13133419
  9. Garfe, M., Tondelli, S., & Bonoli, A. (2009). Multicriteria decision analysis for waste management in Saharawi refugee camps, Waste Management, 29, 2729–2739.
  10. Generowicz, A., Kowalski, Z., Banach, M., & Makara, A (2012). A Glance at the World, Waste Management, 32(2), 349–350.
  11. Gaska, K., Generowicz, A., Zimoch, I., Ciuła, J., & Siedlarz, D. (2018). A GIS based graph oriented algorithmic model for poly-optimization of waste management system, Architecture Civil Environmental Engineering ACEE, 11(4), 151–159.
  12. Wilson, E., McDougall, F., & Willmore, J. (2004). Euro-trash: searching Europe for a more sustainable approach to waste management, Resources, Conservation and Recycling, 31(4), 327–346.
  13. Morrissey, A.J., & Browne, J. (2004). Waste management models and their application to sustainable waste management, Waste Management, 24, 297–308.
  14. Acerbi, F., & Taisch, M. (2020). A literature review on circular economy adoption in the manufacturing sector, Journal of Cleaner Production, 283, 123086. https://doi.org/10.1016/j.jclepro.2020.123086
  15. Kajda-Szcześniak, M., & Jaworski, T. (2017). Comparison of fuel and emission properties of scrap wood and waste fuels. Przemysł Chemiczny, 96(10), 2121–2123.
  16. Balcerzak, W., Generowicz, A., & Mucha, Z. (2014). Application of Multi-Criteria Analysis for Selection of Reclamation Method for Hazardous Waste Landfill, Polish Journal of Environmental Studies, 23(3), 983–987.
  17. Gaska, K., & Generowicz, A. (2020). SMART Computational Solutions for the Optimization of Selected Technology Processes as an Innovation and Progress in Improving Energy Efficiency of Smart Cities – A Case Study, Energies, 13, 3338.
  18. Kowalski, D., Kowalska, B., Bławucki, T., Suchorab, P., & Gaska, K. (2019). Impact Assessment of Distribution Network Layout on the Reliability of Water Delivery. Water, 11, 480.
  19. Gubanova, E., Kupinets, L., Deforzh, H., Koval, V., & Gaska, K. (2019). Recycling of polymer waste in the context of developing circular economy. Architecture Civil Engineering Environment ACEE, 12(4), 99–108, DOI: 10.21307/ACEE-2019-055.
  20. Koval, V., Mikhno, I., Hajduga, G., & Gaska, K. (2019). Economic efficiency of biogas generation from food product waste, E3S Web of Conferences, 100, 00039. DOI: 10.1051/e3sconf/201910000039.
  21. Ciuła, J., Kozik, V., Generowicz, A., Gaska, K., Bak, A., Paździor, M., & Barbusiński, K. (2020). Emission and Neutralization of Methane from a Municipal Landfill-Parametric Analysis, Energies, 13, 6254, DOI: 10.3390/en13236254.
  22. Ciuła J., Gaska K., Iljuczonek Ł., Generowicz A., & Koval V. (2019). Energy efficiency economics of conversion of biogas from the fermentation of sewage sludge to biomethane as a fuel for automotive vehicles. Architecture Civil Engineering Environment ACEE, 12(2), 131–140, DOI:10.21307/ACEE-2019-029.
  23. Werle, S. (2012). A reburning process using sewage sludge-derived syngas, Chemical Papers, 66(2), 99–107.
  24. Jaworski, T., & Kajda-Szcześniak, M. (2019). Research on the kinetics of pyrolysis of wood-based panels in terms of waste management. Energies, 12(19), 1–13.
  25. Jaworski, T., Pikoń, K., Kajda-Szcześniak, M. (2018). Experimental and theoretical modeling of waste combustion in a chamber with a moving grate, Chemical and Process Engineering, 39(1), 3–14.
DOI: https://doi.org/10.21307/acee-2021-008 | Journal eISSN: 2720-6947 | Journal ISSN: 1899-0142
Language: English
Page range: 85 - 93
Submitted on: Feb 2, 2021
Accepted on: Feb 12, 2021
Published on: Apr 17, 2021
Published by: Silesian University of Technology
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2021 Monika CHMIELEWSKA, published by Silesian University of Technology
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.