Have a personal or library account? Click to login
Recent Developments in Landfilling and Biodegradable Waste Management: A Case Study from the Czech Republic Cover

Recent Developments in Landfilling and Biodegradable Waste Management: A Case Study from the Czech Republic

Open Access
|Sep 2024

References

  1. CIUŁA, J. – KOWALSKI, S. – GENEROWICZ, A. – BARBUSIŃSKI, K. – MATUSZAK, Z. – GASKA, K. 2023. Analysis of energy generation efficiency and reliability of a cogeneration unit powered by biogas. In Energies, vol. 16, no. 5, article no. 2180. DOI: https://doi.org/10.3390/en16052180
  2. Czech Republic. Decree No. 321/2014 Coll. on the extent and method of provision of separate collection of components of municipal wastes.
  3. Czech Republic. Decree No. 210/2018 Coll. on the extent and method of provision of separate collection of components of municipal wastes.
  4. EKO-KOM. 2023a. Efficiency of sorted waste collection in municipal systems between 2018 and 2022. Available at: https://www.ekokom.cz/vyteznosti-trideneho-sberu-v-letech-2018-2022-vsystemu-eko-kom/
  5. EKO-KOM. 2023b. Results of municipal solid waste analysis in 2022. Available at: https://www.ekokom.cz/vysledky-rozboru-smesnehokomunalniho-odpadu-z-obci-v-roce-2022/
  6. EL-FADEL, M. – FINDIKAKIS, A. N. – LECKIE, J. O. 1997. Environmental impacts of solid waste landfilling. In Journal of Environmental Management, vol. 50, no.1, pp. 1–25. DOI: https://doi.org/10.1006/jema.1995.0131
  7. European Commission. 2023. Recycling of biowaste. Eurostat. Available at: http://data.europa.eu/88u/dataset/d2ja6lfsx1pw8prkuxpka
  8. European Union. Directive (EU) 2018/850 of the European Parliament and of the Council of 30 May 2018 amending Directive 1999/31/EC on the landfill of waste.
  9. European Commission and Directorate-General for Environment. 2023. Waste Early Warning Report 2023.
  10. EVANS, G. 2001. Biowaste and Biological Waste Treatment. London : James & James Science Publishers Ltd, 216 pp. ISBN 1902916085
  11. FRIEGE, H. – EGER, Y. 2022. Best practice for bio-waste collection as a prerequisite for high-quality compost. In Waste Management & Research, vol. 40, no. 1, pp. 104–110. DOI: https://doi.org/10.1177/0734242X211033714
  12. HŘEBÍČEK, J. – KALINA, J. – VANĚČEK, M. 2017. Model of biowaste separation of household waste. Case study of the city of Brno. In Waste Forum 2017, no. 4, pp. 223–236.
  13. HYNDMAN, R. J. – KHANDAKAR, Y. 2008. Automatic time series forecasting: The forecast package for R. In Journal of Statistical Software, vol. 27, no. 3, pp. 1–22. DOI: https://doi.org/10.18637/jss.v027.i03
  14. CHOTOVINSKÝ, O. – ALTMANN, V. 2018. A comparative case study of the efficiency of collection systems for paper and biodegradable municipal solid waste. In Agronomy Research, vol. 16, no. S1, pp. 997–1009. DOI: https://doi.org/10.15159/AR.18.106
  15. JUNGA, P. – TRÁVNÍČEK, P. – SUCHÝ, P. – KOTEK, L. – VÍTĚZ, T. 2023. Analysis of emergency situations at municipal solid waste landfills. In Journal of Material Cycles and Waste Management, vol. 25, pp. 288–301. DOI: https://doi.org/10.1007/s10163-022-01532-4
  16. KAZA, S. – YAO, L. C. – BHADA TATA, P. – VAN WOERDEN, F. – MARTIN, T. M. R. – SERRONA, K. R. B. – THAKUR, R. – POP, F. – HAYASHI, S. – SOLORZANO, G. – ALENCASTRO LARIOS, N. – SELENE – POVEDA, R. A. – ISMAIL, A. 2018. What a waste 2.0: A global snapshot of solid waste management to 2050. World Bank Group. Report no. 132827, vol. 1. ISBN 978-1-4648-1329-0
  17. LIANG, X. – KURNIAWAN, T. A. – GOH, H. H. – ZHANG, D. – DAI, W. – LIU, H. – GOH, K. C. – OTHMAN, M. H. D. 2022. Conversion of landfilled waste-to-electricity (WTE) for energy efficiency improvement in Shenzhen (China): A strategy to contribute to resource recovery of unused methane for generating renewable energy on-site. In Journal of Cleaner Production, vol. 369, article no. 133078. DOI: https://doi.org/10.1016/j.jclepro.2022.133078
  18. MALAMIS, D. – BOURKA, A. – STAMATOPOULOU, Ε. – MOUSTAKAS, K. – SKIADI, O. – LOIZIDOU, M. 2017. Study and assessment of segregated biowaste composting: The case study of Attica municipalities. In Journal of Environmental Management, vol. 203, no. 2, pp. 664–669. DOI: https://doi.org/10.1016/j.jenvman.2016.09.070
  19. MÜHLE, S. – BALSAM, I. – CHEESEMAN, C. R. 2010. Comparison of carbon emissions associated with municipal solid waste management in Germany and the UK. In Resources, Conservation and Recycling, vol. 54, no. 11, pp. 793–801. DOI: https://doi.org/10.1016/j.resconrec.2009.12.009
  20. ORDINANCE No. 273/2021 Coll. on details of waste management. PANARETOU, V. – TSOUTI, CH. – MOUSTAKAS, K. – MALAMIS, D. – MAI, S. – BARAMPOUTI, E. M. – LOIZIDOU, M. 2021. Chapter three – Food waste generation and collection. In WONG, J. – KAUR, G. – TAHERZADEH, M. – PANDEY, A. – LASARIDI, K. (Ed.). Current Developments in Biotechnology and Bioengineering. Elsevier, pp. 43–105. ISBN 978-0-12-819148-4. DOI: https://doi.org/10.1016/B978-0-12-819148-4.00003-8
  21. RIBIĆ, B. – PEZO, L. – SINCIĆ, D. – LONČAR, B. – VOCA, N. 2019. Predictive model for municipal waste generation using artificial neural networks – Case study City of Zagreb, Croatia. In International Journal of Energy Research, vol. 43, no. 11, pp. 5701–5713. DOI: https://doi.org/10.1002/er.4632
  22. ROUSTA, K. – BOLTON, K. – LUNDIN, M. – DAHLÉN, L. 2015. Quantitative assessment of distance to collection point and improved sorting information on source separation of household waste. In Waste Management, vol. 40, pp. 22–30. DOI: https://doi.org/10.1016/j.wasman.2015.03.005
  23. SANJUAN-DELMÁS, D. – TAELMAN, S. E. – ARLATI, A. – OBERSTEG, A. – VÉR, C. – ÓVÁRI, Á. – TONINI, D. – DEWULF, J. 2021. Sustainability assessment of organic waste management in three EU cities: Analysing stakeholder-based solutions. In Waste Management, vol. 132, pp. 44–55. DOI: https://doi.org/10.1016/j.wasman.2021.07.013
  24. SEL, İ. – ÇAKMAKCI, M. – ÖZKAYA, B. – SUPHI ALTAN, H. 2016. Case study on prediction of remaining methane potential of landfilled municipal solid waste by statistical analysis of waste composition data. In Waste Management, vol. 56, pp. 310–317. DOI: https://doi.org/10.1016/j.wasman.2016.07.023
  25. STEJSKAL, B. – MALSOVÁ, A. – BÁREKOVÁ, A. 2017. Comparison of family house and apartment households bio-waste production and composition. In Waste Forum, no. 4, pp. 237–243.
  26. WAGLAND, S. T. – VELTRE, F. – LONGHURST, P. J. 2012. Development of an image-based analysis method to determine the physical composition of a mixed waste material. In Waste Management, vol. 32, no. 2, pp. 245–248. DOI: https://doi.org/10.1016/j.wasman.2011.09.019
  27. WANDERLEY, T. – MCQUIBBAN, J. – MÖRSEN, T. 2022. How to best collect bio-waste: Guidance for municipalities on the best performing methods to separately collect bio-waste. Zero Waste Europe. Available at: https://zerowastecities.eu/wp-content/uploads/2022/11/How-to-best-collect-bio-waste-EN-Final.pdf
  28. ZÁVODSKÁ, A. – BENEŠOVÁ, L. – SMYTH, B. – MORRISSEY, A. J. 2014. A comparison of biodegradable municipal waste (BMW) management strategies in Ireland and the Czech Republic and the lessons learned. In Resources, Conservation and Recycling, vol. 92, pp. 136–144. DOI: https://doi.org/10.1016/j.resconrec.2014.09.007
Language: English
Page range: 142 - 149
Published on: Sep 5, 2024
Published by: Slovak University of Agriculture in Nitra
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2024 Jan Šonský, Petr Vaculík, Viera Kažimírová, Vlastimil Altmann, Shuran Zhao, published by Slovak University of Agriculture in Nitra
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.