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Society’s demands for plastic materials continue to increase, but their impact on the environment cannot be denied due to the long decomposition periods. The destination for plastic waste is mostly in landfills. In the case of Indonesia, the Makassar landfill, the largest landfill in the eastern region of Indonesia, has exceeded its capacity and is currently mixed and buried without treatment (open dumping). The main aim of this study is to identify potential plastic waste buried in the landfill. Sampling was conducted at three landfill locations: location 1 is a non-active landfill zone that is no longer used, and locations 2 and 3 are active landfill zones that are still in operational use. The sampling method uses a Hydraulic Rotary Drilling Spindle, with a drilling depth of 0–18 meters for location 1, 0–17 meters for location 2, and 0–13 meters for location 3. The research results show that at location 1, plastic waste contributes to approximately 31% of the total waste in this old landfill zone, including plastic bags and beverage bottles. Meanwhile, at location 2, approximately 22% of plastic waste was found, and at location 3, about 14%. Testing the calorific value of plastic waste gave an average of 29,862 MJ/ton. The plastic waste found in these landfills has the potential to be recycled but requires intensive cleaning processes. Furthermore, this plastic waste can also be utilized as an energy source due to its relatively high calorific value.
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Tom
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185--196
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Bibliogr. 35 poz., rys., tab.
Twórcy
autor
- Graduate Programs in Environmental Systems, Graduate School of Environmental Engineering, The University of Kitakyushu, Kitakyushu, 808-0135, Japan
- Department of Urban and Regional Planning, Faculty of Engineering, Universitas Muhammadyah Pare-Pare, Pare-Pare, 91131, Indonesia
autor
- Graduate Programs in Environmental Systems, Graduate School of Environmental Engineering, The University of Kitakyushu, Kitakyushu, 808-0135, Japan
autor
- Department of Environmental Engineering, Faculty of Engineering, Universitas Muslim Indonesia, Makassar, 90231, Indonesia
autor
- Department of Architecture, Faculty of Engineering, Hasanuddin University, Makassar, 90245, Indonesia
autor
- Graduate Programs in Environmental Systems, Graduate School of Environmental Engineering, The University of Kitakyushu, Kitakyushu, 808-0135, Japan
- Department of Natural Science Education, School of Postgraduate Studies, Universitas Pakuan, Bogor, 16143, Indonesia
autor
- Graduate Programs in Environmental Systems, Graduate School of Environmental Engineering, The University of Kitakyushu, Kitakyushu, 808-0135, Japan
- Research Centre for Urban Energy Management, Institute of Environmental Science and Technology, The University of Kitakyushu, Kitakyushu, 808-0135, Japan
Bibliografia
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- 3. Bhatnagar, A., Kaczala, F., Burlakovs, J., Kriipsalu, M., Hogland, M., & Hogland, W. 2017. Hunting for valuables from landfills and assessing their market opportunities a case study with Kudjape Landfill in Estonia. Waste Management & Research: The Journal for a Sustainable Circular Economy, 35(6), 627–635. https://doi.org/10.1177/0734242X17697816.
- 4. CNN Indonesia. Plastic Waste in 2021 Rises to 11.6 Million Tons, KLHK Takes a Swipe at Online Shopping. Ministry of Environment and Forestry. Available online. https://www.cnnindonesia.com/nasional/20220225173203-20-764215/sampah-plastik-2021-naik-ke-116-juta-ton-klhk-sindir-belanja-online#:~:text=Home%20Nasional%20Peristiwa-,Sampah%20Plastik%202021%20Naik%20ke%2011%2C6,Ton%2C%20KLHK%20Sindir%20Belanja%20Online&text=Kementeriam%20Lingkungan%20Hidup%20dan%20Kehutanan,ton%2C%20disumbang%20oleh%20sampah%20plastik. (Accessed on 10 Desember 2023).
- 5. Chiemchaisri, C., Charnnok, B., & Visvanathan, C. 2010. Recovery of plastic wastes from dumpsite as refuse-derived fuel and its utilization in small gasification system. Bioresource Technology, 101(5), 1522–1527. https://doi.org/10.1016/j.biortech.2009.08.061.
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- 7. Faitli, J., Nagy, S., Romenda, R., Gombkötő, I., Bokányi, L., & Barna, L. 2019. Assessment of a residual municipal solid waste landfill for prospective ‘Landfill mining.’ Waste Management & Research, 37(12), 1229–1239. https://doi.org/10.1177/0734242X19881197.
- 8. Fariz, R.D.A., Rachman, I., & Matsumoto, T. 2023. Municipal solid waste management in regency area in Indonesia: A review of Deli Serdang. IOP Conference Series: Earth and Environmental Science, 1263(1), 012065. https://doi.org/10.1088/1755-1315/1263/1/012065.
- 9. Geyer, R., Jambeck, J.R., & Law, K.L. 2017. Production, use, and fate of all plastics ever made. Science Advances, 3(7), e1700782. https://doi.org/10.1126/sciadv.1700782.
- 10. Gwada, B., Ogendi, G., Makindi, S.M., & Trott, S. 2019. Composition of plastic waste discarded by households and its management approaches. Global Journal of Environmental Science and Management, 5(1). https://doi.org/10.22034/gjsm.2019.01.07.
- 11. Haedar, N., Clara, T., Fahrudin, Abdullah, A., Fausiah, St., & Rapak, M.T. 2019. Selection of Plastic degradation indigenous bacteria isolated from tamangapa landfill Macassar City. Journal of Physics: Conference Series, 1341(2), 022023. https://doi.org/10.1088/1742-6596/1341/2/022023
- 12. Hermann, R., Wolfsberger, T., Pomberger, R., & Sarc, R. 2016. Landfill mining: developing a comprehensive assessment method. Waste Management & Research: The Journal for a Sustainable Circular Economy, 34(11), 1157–1163. https://doi.org/10.1177/0734242X16657610
- 13. Husain A. 2021. Community-based plastic waste control contribution in Makassar. International Journal of Management Studies and Social Science Research, 3(6).
- 14. Indonesia Ministry of Public Works. 2013. Regulation of Ministry of Public Work Republic of Indonesia 03/PRT/M/2013 regarding the Implementation of Municipal Solid Waste Facilities and Infrastructures. Jakarta, Indonesia.
- 15.Jagodzińska, K., Garcia Lopez, C., Yang, W., Jönsson, P.G., Pretz, T., & Raulf, K. 2021. Characterisation of excavated landfill waste fractions to evaluate the energy recovery potential using Py-GC/MS and ICP techniques. Resources, Conservation and Recycling, 168, 105446. https://doi.org/10.1016/j.resconrec.2021.105446.
- 16.Jian, X., Wang, P., Sun, N., Xu, W., Liu, L., Ma, Y., & Chen, W.-Q. 2022. Material flow analysis of china’s five commodity plastics urges radical waste infrastructure improvement. Environmental Research: Infrastructure and Sustainability, 2(2), 025002. https://doi.org/10.1088/2634-4505/ac5642.
- 17. Khair, H., Rachman, I., & Matsumoto, T. 2019. Analyzing in Indonesia: A case study of Medan City. Journal of Material Cycles and Waste Management, 21(4), 1027–1037. https://doi.org/10.1007/s10163-019-00840-6.
- 18. Kibria, Md. G., Masuk, N.I., Safayet, R., Nguyen, H.Q., & Mourshed, M. 2023. Plastic waste: challenges and opportunities to mitigate pollution and effective management. International Journal of Environmental Research, 17(1), 20. https://doi.org/10.1007/s41742-023-00507-z
- 19. Kristanto, G.A., Jansen, A., & Koven, W. 2020. The potential of landfill mining in two inactive zones of the bantar gebang landfill in Jakarta, Indonesia. International Journal of Technology, 11(7), 1430. https://doi.org/10.14716/ijtech.v11i7.4571
- 20. Krook, J., Svensson, N., & Eklund, M. 2012. Landfill mining: A critical review of two decades of research. Waste Management, 32(3), 513–520. https://doi.org/10.1016/j.wasman.2011.10.015
- 21. Madani, M. 2023. Model of waste management in the City of Makassar. 8(5).
- 22. Makassar Bureau of Statistics/Badan Pusat Statistik Kota Makassar. 2023. Makassar dalam Angka 2023. Indonesia. https://makassarkota.bps.go.id/indicator/12/72/1/jumlah-penduduk-menurut-kecamatandan-jenis-kelamin-di-kota-makassar.html
- 23. Mazhandu, Z.S., Muzenda, E., Mamvura, T.A., Belaid, M., & Nhubu, T. 2020. Integrated and consolidated review of plastic waste management and bio-based biodegradable plastics: challenges and opportunities. Sustainability, 12(20), 8360. https://doi.org/10.3390/su12208360
- 24. Moharir, R.V., & Kumar, S. 2019. Challenges associated with plastic waste disposal and allied microbial routes for its effective degradation: a comprehensive review. Journal of Cleaner Production, 208, 65–76. https://doi.org/10.1016/j.jclepro.2018.10.059
- 25. Mourshed, M., Masud, M.H., Rashid, F., & Joardder, M.U.H. 2017. Towards the effective plastic waste management in Bangladesh: A review. Environmental Science and Pollution Research, 24(35), 27021–27046. https://doi.org/10.1007/s11356-017-0429-9.
- 26. Muis, R., Anggraini, N., Ariani, F., Yunus, S., &. Zulkifli 2021. Survey of environmental baseline in the nunukan agriculture area, Indonesia. Nature Environment and Pollution Technology, 20(1), 237–242. https://doi.org/10.46488/NEPT.2021. v20i01.025.
- 27. Muis, R., Rachman, I., & Matsumoto, T. 2023. A life cycle assessment of biological treatment scenario of municipal solid waste in developing country (Case study: Makassar, Indonesia). IOP Conference Series: Earth and Environmental Science, 1263(1), 012070. https://doi.org/10.1088/1755-1315/1263/1/012070.
- 28. National Standardization Agency of Indonesia/Badan Standarisasi Nasional (BSN).1994. SNI 19–3964–1994 Method of Sampling and Testing for Domestic Solid Waste Sample and Composition, Badan Standarisasi Nasional, Jakarta.
- 29. Pecorini, I., & Iannelli, R. 2020. Characterization of excavated waste of different ages in view of multiple resource recovery in landfill mining. Sustainability, 12(5), 1780. https://doi.org/10.3390/su12051780.
- 30. Trombley, J.B., Wang, C., & Thennadil, S.N. 2023. Model-free measurements of calorific content and ash content of mixed garden wastes using a bomb calorimeter. Fuel, 352, 129105. https://doi.org/10.1016/j.fuel.2023.129105.
- 31. Ummu Salmah, A.M., & Atjo Wahyu. 2023. Potential risks of manganese through shallow well water consumption due to the landfill leachate among community in tamangapa disposal site, Makassar Indonesia. International Journal of Engineering Research & Technology (IJERT), 2(8), 277–283.
- 32. Van Roijen, E.C., & Miller, S.A. 2022. A Review of bioplastics at end-of-life: linking experimental biodegradation studies and life cycle impact assessments. Resources, Conservation and Recycling, 181, 106236. https://doi.org/10.1016/j.resconrec.2022.106236
- 33. Wolfsberger, T., Aldrian, A., Sarc, R., Hermann, R., Höllen, D., Budischowsky, A., Zöscher, A., Ragoßnig, A., & Pomberger, R. 2015. Landfill mining: Resource potential of Austrian landfills – evaluation and quality assessment of recovered municipal solid waste by chemical analyses. Waste Management & Research: The Journal for a Sustainable Circular Economy, 33(11), 962–974. https://doi.org/10.1177/0734242X15600051.
- 34. Yunus, S., Rashid, M., Mat, R., Baharun, S., & Man, H.C. 2019. Characteristics of the PM10 in the urban environment of makassar, Indonesia. Journal of Urban and Environmental Engineering.
- 35. Zhou, C., Fang, W., Xu, W., Cao, A., & Wang, R. 2014. Characteristics and the recovery potential of plastic wastes obtained from landfill mining. Journal of Cleaner Production, 80, 80–86. https://doi.org/10.1016/j.jclepro.2014.05.083.
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2024).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-276ce1e6-e1cf-4780-a3bc-176fb9af8cca