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Abstrakty
More and more waste is being generated in the world. One form of waste processing is the composting process. This work aims to study the morphological composition of selected composts to determine the amounts of the various fractions contained therein. In the present work, four types of composts are presented to study their morphological composition. Composted grass, backyard compost, soil improver formed after composting green waste, and stabiliser – waste formed due to mechanical-biological processing of municipal waste taken from the Municipal Waste Mechanical-Biological Treatment Facility – were studied successively. Fifty samples of 2 kilograms each were taken from each group of composts, respectively. Each sample was divided into seven fractions: organic waste, plastics, ceramics, paper and cardboard, glass, metal and others. After analysis, it can be concluded that it is very difficult to obtain homogeneous compost due to the heterogeneity of the raw material. The results are accurately presented in tables with the distinction of the different fractions. It was found that mowed grass contained the most organic matter, while stabiliser contained the least. The least amount of plastic was found in backyard compost, and the most in stabiliser.
Słowa kluczowe
Czasopismo
Rocznik
Tom
Strony
700--706
Opis fizyczny
Bibliogr. 41 poz., tab.
Twórcy
autor
- Faculty of Natural and Technical Sciences, John Paul II Catholic University of Lublin, Poland , katarzyna.graz@kul.pl
Bibliografia
- Agapios, A., Andreas, V., Marinos, S., Katerina, M., Antonis, Z.A. (2020). Waste aroma profile in the framework of food waste management through household composting. Journal of Cleaner Production, 257, 120340. ISSN 0959-6526. https://doi.org/10.1016/j.jclepro.2020.120340
- Augustowski, D., Kwaśnicki, P., Dziedzic, J., Rysz, J. (2020). Magnetron sputtered electron blocking layer as an efficient method to improve dye-sensitised solar cell performance. Energies, 13(11), 2690.
- Ayilara, M.S., Olanrewaju, O.S., Babalola, O.O., Odeyemi, O. (2020). Waste management through composting: Challenges and potentials. Sustainability, 12(11), 4456.
- Aylaj, M, Adani, F. (2023). The Evolution of Compost Phytotoxicity during Municipal Waste and Poultry Manure Composting. Journal of Ecological Engineering, 24(6), 281-293. https://doi.org/10.12911/22998993/161822
- Braun, M., Mail, M., Krupp, A.E., Amelung, W. (2023). Microplastic contamination of soil: Are input pathways by compost overridden by littering? Science of The Total Environment, 855, 158889, ISSN 0048-9697. https://doi.org/10.1016/j.scitotenv.2022.158889
- Ciuła, J., Gaska, K., Generowicz, A., Hajduga, G. (2018). Energy from landfill gas as an example of circular economy, E3S Web of Conferences, Vol. 30, The First Conference of the International Water Association IWA for Young Scientist in Poland "Water, Wastewater and Energy in Smart Cities", Cracow, Poland. https://doi.org/10.1051/e3sconf/20183003002
- Ciuła, J., Generowicz, A., Gronba-Chyła, A., Kwaśnicki, P., Makara, A., Kowalski, Z., Wiewiórska, I. (2024). Energy production from landfill gas, emissions and pollution indicators-opportunities and barriers to implementing circular economy. Energy, 308, 132951. https://doi.org/10.1016/j.energy.2024.132951
- Ciuła, J., Generowicz, A., Wiewiórska, I., Gaska, K., Gronba-Chyła, A., Golonka, M., Makara, A. (2024). Environmental aspect of waste to energy installation: quality of waste generated by technology. Clean Technologies and Environmental Policy, 1-16. https://doi.org/10.1007/s10098-024-02788-0
- Ciuła, J., Generowicz, A., Gaska, K., Gronba-Chyła, A. (2022). Efficiency analysis of the generation of energy in a biogas CHP system and its management in a waste landfill. Case study. Journal of Ecological Engineering, 23(7), 143-157, ISSN 2299-8993. https://doi.org/10.12911/22998993/149609
- Gaska, K., Generowicz, A., Gronba-Chyła, A., Ciuła, J., Wiewiórska, I., Kwaśnicki, P., Chyła, K. (2023). Artificial Intelligence Methods for Analysis and Optimisation of CHP Cogeneration Units Based on Landfill Biogas as a Progress in Improving Energy Efficiency and Limiting Climate Change. Energies, 16(15), 5732. https://doi.org/10.3390/en16155732
- Generowicz, A., Kowalski, Z., Kulczycka, J., Banach, M. (2011). Ocena rozwiązań technologicznych w gospodarce odpadami komunalnymi z wykorzystaniem wskaźników jakości technologicznej i analizy wielokryterialnej. Przemysł Chemiczny, 90(5), 747-753. ISSN 0033-2496
- Grąz, K., Gronba-Chyła, A., Chyła, K. (2023). Microplastics found in compost as a barrier to the circular economy (CE). Przemysł chemiczny, 102(4), 381-383. https://doi.org/10.15199/62.2023.4.7
- Grąz, K., Generowicz, A., Kwaśny, J. (2022). Nanoparticles in surface water. Przemysł Chemiczny, 101(1). (in Polish). https://doi.org/10.15199/62.2022.1.8
- Grąz, K., Generowicz, A., Kwaśny, J., Gronba-Chyła, A., Kwaśnicki, P., Ciuła, J., Bajdur, W. (2023). Microplastics from Plastic Waste as a Limitation of Sustainability of the Environment. Rocznik Ochrona Środowiska, 25. https://doi.org/10.54740/ros.2023.037
- Gronba-Chyła, A., Generowicz, A., Kwaśnicki, P., Cycoń D., Kwaśny, J., Grąz, K., Gąska, K., Ciuła, J. (2022). Determining the Effectiveness of Street Cleaning with the Use of Decision Analysis and Research on the Reduction in Chloride in Waste. Energies, 15, 3538. https://doi.org/10.3390/en15103538
- Gronba-Chyła, A. (2023). Experimental investigation on the properties of street and sidewalk cleaning waste, Architecture, Civil Engineering, Environment, 16(4), 149-153. https://doi.org/10.2478/acee-2023-0058
- Gronba-Chyła, A. Generowicz, A. Kramek (2021). Using selected types of waste to produce new light ceramic material. Pol. J. Environ. Stud., 30(3), 2073-2083. https://doi.org/10.15244/pjoes/126496
- Gronba-Chyła, A., Generowicz, A. (2020). Frakcja odpadów komunalnych poniżej 10 mm i możliwość jej wykorzystania w ceramicznych materiałach budowlanych. Przemysł Chemiczny, 99(9), 1000-1003. (in Polish). https://doi.org/10.15199/62.2020.9.10
- Gronba-Chyła, A., Generowicz, A., Alwaeli, M., Mannheim, V., Grąz, K., Kwaśnicki, P., Kramek, A. (2024). Municipal waste utilisation as a substitute for natural aggregate in the light of the circular economy. Journal of Cleaner Production, 440, 140907. https://doi.org/10.1016/j.cej.2021.131928
- Jiang, P., Zhang, L., You, S., Van Fan, Y., Tan, R.R., Klemeš, J.J., You, F. (2023). Blockchain technology applications in waste management: Overview, challenges and opportunities. Journal of Cleaner Production, 421, 138466. https://doi.org/10.1016/j.jclepro.2023.138466
- Kalali, E.N., Lotfian, S., Shabestari, M.E., Khayatzadeh, S., Zhao, C., Nezhad, H.Y. (2023). A critical review of the current progress of plastic waste recycling technology in structural materials. Current Opinion in Green and Sustainable Chemistry, 40, 100763. ISSN 2452-2236. https://doi.org/10.1016/j.cogsc.2023.100763
- Kobylarczyk, J., Kuśnierz-Krupa, D., Nowak-Ocłoń, M. (2023). Impact of paving surface material on thermal conditions within a residential building. Archives of thermodynamics, 44(4), 141-155. https://doi.org/10.24425/ather.2023.149709
- Koctecka, J., Koc-Jurczyk, J., Brudzisz, K. (2014). Waste management in Poland and European Union. Archiwum Gospodarki Odpadami i Ochrony Środowiska, 16(1), 1-10. (in Polish)
- Kowalski, Z., Generowicz, A., Makara, A. (2012). Evaluation of municipal waste disposal technologies by BATNEEC. Przemysł Chemiczny, 91(5). (in Polish)
- Kumar, M., Ambika, S., Hassani, A., Nidheesh, P.V. (2023). Waste to catalyst: role of agricultural waste in water and wastewater treatment. Science of The Total Environment, 858, 159762. https://doi.org/10.1016/j.scitotenv.2022.159762
- Kwaśnicki, P., Gronba-Chyła, A., Generowicz, A., Ciuła, J., Wiewiórska, I., Gaska, K. (2023). Alternative method of making electrical connections in the 1st and 3rd generation modules as an effective way to improve module efficiency and reduce production costs. Archives of Thermodynamics, 44(3), 179-200. https://doi.org/10.24425/ather.2023.147543
- Lamichhane, G., Acharya, A., Marahatha, R. et al. (2023). Microplastics in environment: global concern, challenges, and controlling measures. Int. J. Environ. Sci. Technol., 20, 4673-4694. https://doi.org/10.1007/s13762-022-04261-1
- Mateos-Cardenas A., van Pelt, F.N.A.M., O’Halloran, J., Jansen, M.A.K. (2021). Adsorption, uptake and toxicity of micro- and nanoplastics: Effects on terrestrial plants and aquatic macrophytes. Environmental Pollution, 284, 117183, 1-10. https://doi.org/10.1016/j.envpol.2021.117183
- Mo, J., Xin, L., Zhao, C., Qin, Y., Nan, Q., Mei, Q., Wu, W. (2023). Reducing nitrogen loss during kitchen waste composting using a bioaugmented mechanical process with low pH and enhanced ammonia assimilation. Bioresource Technology, 372, 128664. ISSN 0960-8524.
- Padervand, M., Lichtfouse, E., Robert D. et al. (2020). Removal of microplastics from the environment. A review. Environ Chem Lett, 18, 807-828. https://doi.org/10.1007/s10311-020-00983-1
- Roshanzadeh, A., Oyunbaatar, N.-E., Ehteshamzadeh, Ganjbakhsh, S., Park, S., Kim, D.-S., Kanade, P.P., Lee, S., Lee, D-W., Kim, E-S. (2021). Exposure to nanoplastics impairs collective contractility of neonatal cardiomyocytes under electrical synchronisation. Biomaterials, 278, 121175, 1-16. https://doi.org/10.1016/j.biomaterials.2021.121175
- Shamsuyeva, M., Endres, H-J. (2021). Plastics in the context of the circular economy and sustainable plastics recycling: Comprehensive review on research development, standardisation and market. Composites Part C: Open Access, 6, 100168, 1-16. https://doi.org/10.1016/j.jcomc.2021.100168
- Shen, M., Zhang, Y., Zhu, Y., Song, B., Zeng, G., Hu, D., Wen, X., Ren, X. (2019). Recent advances in toxicological research of nanoplastics in the environment: A review. Environmental Pollution, 252, 511-521. https://doi.org/10.1016/j.envpol.2019.05.102
- Shen, M., Xiong, W., Song, B., Zhou, C., Almatrafi, E., Zeng, G., Zhang, Y. (2022). Microplastics in landfill and leachate: Occurrence, environmental behavior and removal strategies. Chemosphere, 305, 135325. https://doi.org/10.1016/j.chemosphere.2022.135325
- Silva, A.B., Bastos, A.S., Justino, C.I., da Costa,, J.P., Duarte, A.C., Rocha-Santos, T.A. (2018). Microplastics in the environment: Challenges in analytical chemistry – A review. Analytica chimica acta, 1017, 1-19. https://doi.org/10.1016/j.aca.2018.02.043
- Timilsina, A., Adhikari, K., Yadav, A.K., Josh, P., Ramena, G., Bohara, K. (2023). Effects of microplastics and nanoplastics in shrimp: Mechanisms of plastic particle and contaminant distribution and subsequent effects after uptake. Science of the Total Environment, 894, 164999. https://doi.org/10.1016/j.scitotenv.2023.164999
- Varghese, S.A., Pulikkalparambil, H., Promhuad, K., Srisa, A., Laorenza, Y., Jarupan, L., Nampitch, T., Chonhenchob, V. (2023). Harnkarnsujarit N. Renovation of Agro-Waste for Sustainable Food Packaging: A Review. Polymers, 15, 648. https://doi.org/10.3390/polym15030648
- Wang, Z., Saade, N.K., Ariya, P.A. (2021). Advances in Ultra-Trace Analytical Capability for Micro/Nanoplastics and Water – Soluble Polymers in the Environment: Fresh Falling Urban Snow. Environmental Pollution, 276, 116698, 1-13. https://doi.org/10.1016/j.envpol.2021.116698
- Waqas, M., Hashim, S., Humphrie, U.W., Ahmad, S., Noor, R., Shoaib, M., Naseem, A., Hlain, P.T., Lin, H.A. (2023). Composting Processes for Agricultural Waste Management: A Comprehensive Review. Processes, 11, 731. https://doi.org/10.3390/pr11030731
- Ya, H., Jiang, B., Xing, Y., Zhang, T., Lv, M., Wang, X. (2021). Recent advances on ecological effects of microplastics on soil environment. Science of the total environment, 798, 149338, https://doi.org/10.1016/j.scitotenv.2021.149338
- Zhao, X., Korey, M., Li, K., Copenhaver, K., Tekinalp, H., Celik, S., Ozcan, S. (2022). Plastic waste upcycling toward a circular economy. Chemical Engineering Journal, 428, 131928. ISSN 1385-8947. https://doi.org/10.1016/j.cej.2021.131928
Typ dokumentu
Bibliografia
Identyfikatory
Identyfikator YADDA
bwmeta1.element.baztech-53329bef-2528-4761-9277-ed01aed3dbac