Warianty tytułu
Języki publikacji
Abstrakty
Vertical subsurface flow constructed wetland (VSSF-CW) was evaluated to neutralise acid mine drainage (AMD) using organic waste and planted with mangroves. The type and composition of media, as well as the improper assembly and operation of the system, are among the reasons why the wetland system has not been effective and efficient so far. The main objective of this research is to develop a method to neutralise AMD using organic waste (oil palm empty fruit bunches and eucalyptus leaf waste). To achieve this research’s main goal, the steps were to analyse the characteristics of AMD at the research site, analyse the type and composition of organic waste, determine the retention time, and analyse the concentration of contaminants in the water after the treatment process. To implement the stages, sample preparation, plant acclimatisation, organic material selection, primary characterisation of samples, assembly of the CW reactor, and operation of the system were carried out. After the study, it was found that the system maximally increased the pH from 3.32 to 7.34 in the 12-day retention time oil palm empty fruit bunches reactor, and maximally removed total suspended solids (TSS) and manganese (Mn) with efficiencies of 97.52% (from 444 to 11 mg/L); and 95.97% (from 4.47 to 0.18 mg/L) in the 12-day retention time eucalyptus leaf waste reactor, respectively. Rhizophora sp. showed bioaccumulation ability > 1 (accumulator) and translocation < 1 (phytostabiliser). The media type and composition, as well as the assembly and operation of the system in this study successfully neutralised AMD with good efficiency and a relatively short time. In addition, the addition of mangrove plants and fly ash-bottom ash (FABA) bricks, also contributed to the good results of AMD treatment and also became an innovation in AMD treatment.
Rocznik
Tom
Strony
245--260
Opis fizyczny
Bibliogr. 55 poz., rys., tab.
Twórcy
autor
- Department of Environmental Engineering, Graduate School of Engineering, Hasanuddin University, Makassar, Indonesia, aisyanang21env.eng@gmail.com
autor
- Department of Environmental Engineering, Faculty of Engineering, Hasanuddin University, Makassar, Indonesia
autor
- Department of Environmental Engineering, Faculty of Engineering, Hasanuddin University, Makassar, Indonesia
Bibliografia
- 1. Abuye, F., Haile, M., Haile, W., Hanna, B.G. 2021. Soil fertility status, fertilizer application and nutrient balance in SNNPR, Southern Ethiopia in contrasting agro-ecological zones of Ethiopia. African Journal of Agricultural Research. 17(11), 1433–1452. https://doi.org/10.5897/AJAR2021.15640
- 2. Aboulsoud, Y.I.E., and Elkhouly, A.A. 2023. Evaluation potentiality of Rhizophora mucronate plantation for pollutants remediation on the Red Sea Coast, Egypt. SN Applied Sciences, 5(7). https://doi.org/10.1007/s42452-023-05396-7
- 3. Albukhari, S.M., Ismail, M., Akhtar, K., Danish, E.Y. 2019. Catalytic reduction of nitrophenols and dyes using silver nanoparticles @ cellulose polymer paper for the resolution of waste water treatment challenges. Colloids and Surfaces A, 577, 548–561. https://doi.org/10.1016/j.colsurfa.2019.05.058
- 4. Ayala-Parra, P., Sierra-Alvarez, R., Field, J.A. 2016. Treatment of acid rock drainage using a sulfatereducing bioreactor with zero-valent iron. Journal of Hazardous Materials, 308, 97–105. http://dx.doi.org/10.1016/j.jhazmat.2016.01.029
- 5. Ayangbenro, A.S., Olanrewaju, O.S., Babalola, O.O. 2018. Sulfate-reducing bacteria as an effective tool for sustainable acid mine bioremediation. Frontiers in Microbiology, 9, 1–10. https://doi.org/10.3389/fmicb.2018.01986
- 6. Ayujawi, S.A., and Takarina N.D. 2020. Bioaccumulation of heavy metal in Avicennia sp. from blanakan riparian, subang, west java. IOP Conf. Series: Earth and Environmental Science, 550, 1–6. https://doi.org/10.1088/1755-1315/550/1/012008
- 7. Bitondo, D., Tabi, F.O., Kengmegne, S.S.A., Ngoucheme, M., MvondoZe, A.D., 2013. Journal of Soil Science. 3, 283–288. http://dx.doi.org/10.4236/ojss.2013.36033
- 8. Bourgeois, C., Alfaro. A.C., Bisson, E., Alcius, S., Marchand, C. 2020. Trace metal dynamics in soils and plants along intertidal gradients in semiarid mangroves (New Caledonia). Marine Pollution Bulletin, 156, 111274. https://doi.org/10.1016/j.marpolbul.2020.111274
- 9. Busyairi, M., Firlina, Sarwono, E., Saryadi. 2019. Utilisation of meranti wood powder into activated carbon for the reduction of iron (Fe), manganese, (Mn), and pH conditions in acid mine water. Jurnal Sains & Teknologi Lingkungan, 11(2), 87–101. https://doi.org/10.20885/jstl.vol11.iss2.art1 (in Indonesian)
- 10. Chen, M., Tang, Q., Zou, J., Lv, X., Deng, Y., Ma, X., Ma, S. 2022. Sugarcane bagasse as carbon source and filler to enhance the treatment of low C/N wastewater by aerobic denitrification flora. Water, MDPI AG, 14(21), 1–12. https://doi.org/10.3390/w14213355
- 11. Dan, A., Oka, M., Fujii, Y., Soda, S., Ishigaki, T., Machimura, T., Ike, M. 2017. Removal of heavy metals from synthetic landfill leachate in lab-scale vertical flow constructed wetlands. Science of The Total Environment, 584–585, 742–750. https://doi.org/10.1016/j.scitotenv.2017.01.112
- 12. Dhir, B. 2018. Biotechnological tools for remediation of acid mine drainage (removal of metals from wastewater and leachate) in bio-geotechnologies for mine site rehabilitation. Elsevier, 67–82. https://doi.org/10.1016/B978-0-12-812986-9.00004-X
- 13. Du, T., Bogush, A., Mašek, O., Purton, S., Campos, L.C. 2022. Algae, biochar, and bacteria for acid mine drainage (amd) remediation: A review. Chemosphere, 304, 135284. https://doi.org/10.1016/j.chemosphere.2022.135284
- 14. Fadhilah, Ramadhan, F., Har, R. 2022. Treatment of acid mine drainage using fly ash, bottom ash, and lime mixed. Jurnal Ilmu Pendidikan Fisika, 7(2), 168–177.
- 15. Fahruddin, Haedar, N, Nafie, N.L. 2014. Comparison of the ability of marsh and rice field sediments to reduce sulfate in Acid Mine Drainage (AMD). Jurnal Sainsmat, 3(2), 135–142. (in Indonesian).
- 16. Fahruddin, Nafie, N.L., Abdullah, A., Tuwo, M. 2021. Treatment of compost as a source of organic material for bacterial consortium in the removal of sulfate and heavy metal lead (Pb) from Acid Mine Drainage. Journal of Degraded and Mining Lands Management, 9(1), 3083–3091. https://doi.org/10.15243/Jdmlm.2021.091.3083
- 17. Fitrihidajati, H., Rachmadiarti, F., Winarsih, Purnomo, T., Kuntjoro, S. 2021. Quality of organic fertilizer made from water hyacinth with the addition of corncobs waste and soybean dregs. Journal of Physics: Conferences Series, 1899, 1–7. https://doi.org/10.1088/1742-6596/1899/1/012024
- 18. Hengen, T.J., Squillace, M.K., O’Sullivan, A.D., Stone, J.J. 2014. Life cycle assessment analysis of active and passive acid mine drainage treatment technologies. Resources, Conservation and Recycling, 86, 160–167. http://dx.doi.org/10.1016/j.resconrec.2014.01.003
- 19. Jaffar, M.M., Nahil, M.A., Williams, P.T. 2020. Pyrolysis-catalytic hydrogenation of cellulose-hemicellulose-lignin and biomass agricultural wastes for synthetic natural gas production. Journal of Analytical and Applied Pyrolysis. 145, 104753. https://doi.org/10.1016/j.jaap.2019.104753
- 20. Kataki, S., Chatterjee, S., Vairale, M.G., Dwivedi, S.K., Gupt, D.K. 2021. Constructed wetland, an eco-technology for wastewater treatment: A review on types of wastewater treated and components of the technology (macrophyte, biolfilm and substrate). Journal of Environmental Management, 283, 111986. https://doi.org/10.1016/j.jenvman.2021.111986
- 21. Kaur, S., Gupta, S., Gautam, P.B. 2019. Phytochemical analysis of eucalyptus leaves extract. Journal of Pharmacognosy and Phytochemistry, 8(1), 2442–2446.
- 22. Li, X., Lan, S.M., Zhu, Z.P., Zhang, C., Zeng, G.M., Liu, Y.G., Cao, W.C., Song, B., Yang, H., Wang, S.F., Wu, S.H. 2018. The bioenergetics mechanisms and applications of sulfate-reducing bacteria in remediation of pollutants in drainage: A review. Ecotoxicology and Environmental Safety, 158, 162– 170. https://doi.org/10,1016/j.ecoenv.2018.04.025
- 23. Manzoor, N., Jiang, Y., Li, C., Liu, Z., Cao, L., Liu, Y. 2018. Cellulase extraction from cellulolytic bacteria promoting bioelectricity production by degrading cellulose. Journal of Electroanalytical Chemistry. 829, 241–248. https://doi.org/10.1016/j.jelechem.2018.09.041
- 24. Martínez-Colon, M., Capparelli, M.V., Kolb, D., Moulatlet, G.M. 2023. Trophic transfer mechanisms of potentially toxic elements from sediment and plant leaves (Rhizophora mangle) to fiddler crabs (Minuca rapax) (Smith, 1870). Marine Pollution Bulletin, 197, 115786. https://doi.org/10.1016/j.marpolbul.2023.115786
- 25. Mardhiati, L., Prihatini, N.S., Nilawati, I.N. 2021. Variation of organic matter in surface flow artificial wetland media in treating acid mine drainage. Jurnal Tugas Akhir Mahasiswa Program Studi Teknik Lingkungan, 4(1), 57–68. https://doi.org/10.20527/jernih.v4i1.741 (in Indonesian).
- 26. Mitra, S., Chakraborty, A.J., Tareq, A.M., Emran, T.B., Nainu, F., Khusro, A., Idris, A.M., Khandaker, M.U., Osman, H., Alhumaydi, F.A., Simalgandara, J. 2022. Impact of heavy metals on the environment and human health: Novel therapeutic insights to counter the toxicity. Journal of King Saud University – Science, 34(3), 101865. https://doi.org/10.1016/j.jksus.2022.101865
- 27. Moodley, I., Sheridan, C.M., Kappelmeyer, U., Akcil, A. 2018. Environmentally sustainable acid mine drainage remediation: Research developments with a focus on waste/by-products. Minerals Engineering, 126, 207–220. http://dx.doi.org/10.1016/j.mineng.2017.08.008
- 28. Mullai, P., Yogeswari, M.K., Saravanakumar, K., Kathiresan, K. 2014. Phytoremediation of heavy metals using Avicennia marina and Rhizophora mucronate in the uppanar River. International Journal of ChemTech Research, 6(12), 4984–4990.
- 29. Nielsen, G., Coudert, L., Janin, A., Blais, J.F., Mercier, G. 2019. Influence of organic carbon sources on metal removal from mine impacted water using sulfate-reducing bacteria bioreactors in cold climates. Mine Water and the Environment, 38(1), 104–118. https://doi.org/10.1007/s10230-018-00580-3
- 30. Nualla-ong, A., Phongdara, A., Buapet, P. 2020. Copper and zinc differentially affect root glutathione accumulation and phytochelatin synthase gene expression of Rhizophora mucronate seedlings: Implications for mechanisms underlying trace metal tolerance. Ecotoxicology and Environmental Safety, 205, 111175. https://doi.org/10.1016/j.ecoenv.2020.111175
- 31. Nugraha, C., and Rolliyah. 2021. Utilisation of Fly Ash and Bottom Ash for Rock and Acid Water Management in Coal Mines, Directorate of Performance Assessment of Hazardous and Non-Hazardous Waste Management Ministry of Environment and Forestry, East Jakarta. (in Indonesian).
- 32. Nugraha, F.A., Kirmi, H., Haryanto, B. 2020. Analysis of acid mine drainage treatment on palm bunch media and compost with subsurface flow anaerobic wetland system at PT Berau Coal. SPECTA Journal of Technology, 4(2), 13–22. (in Indonesian).
- 33. Ortiz-Castillo, J.E., Mirazimi, M., Mohammadi, M., Dy, E., Liu, W. 2021. The role of microorganisms in the formation, dissolution, and transformation of secondary minerals in mine rock and drainage: A review. Minerals, MDPI, 11(12), 1–25, https://doi.org/10.3390/min11121349
- 34. Othman, A., Sulaiman, A., Sulaiman, S.K. 2015. The study on the effectiveness of organic material in acid mine drainage treatment. Jurnal Teknologi, 77(2), 79–84.
- 35. Oyewo, O.A., Elemike, E.E., Onwudiwe, D.C., Onyango, M.S. 2020. Metal oxide-cellulose nanocomposites for the removal of toxic metals and dyes from wastewater. International Journal of Biological Macromolecules, 164, 2477–2496. https://doi.org/10.1016/j.ijbiomac.2020.08.074
- 36. Patel, M.D., Jade, R.K., Dewangan, P. 2018. Occurrence of acid mine drainage and its treatment by successive alkalinity producing system (SAPS): An overview. International Journal of ChemTech Research, 11(10), 343–352. http://dx.doi.org/10.20902/IJCTR.2018.111043
- 37. Perala, I., Yani, M., Mansur. 2022. Bioremediation of coal mine acidic water with enrichment of sulfate reducing bacteria and addition of organic substrates. Jurnal Teknologi Mineral dan Batubara, 18(2), 81–95. https://doi.org/10.30556/jtmb.Vol18. No2.2022.1232. (in Indonesian).
- 38. Pranata, I.K.A., Madrini, I.A.G.B., Tika, I.W. 2022. Effect of cow manure addition on compost quality in banana stem composting. Jurnal Beta (Biosistem dan Teknik Pertanian), 10(1), 93–102. (in Indonesian).
- 39. Punjungsari, T.N. 2017. Effect of molasses on the activity of sulfate reducing bacteria consortium in reducing sulfate (SO4 - ), Journal Viabel Pertanian, 11(2), 39–49. (in Indonesian)
- 40. Qian, Z., Tianwei, H., Mackey, H.R., Loosdrecht, M.C.M.V., Guanghao, C. 2019. Recent advances in dissimilatory sulfate reduction: from metabolic study to application. Water Research. 150. 162–181. https://doi.org/10.1016/j.watres.2018.11.018
- 41. Riskawati, R., Baskoro, D.P.T., Rachman, L.M. 2021. Analysis of soil physical quality index (Case Study: Groundnut/Arachis hypogeal L.). E3S Web of Conferences, 306, 1–10. https://doi.org/10.1051/e3sconf/202130602052
- 42. Robin, S.L., Marchand, C., Ham, B., Pattier, F., Laporte-Magoni, C., Serres, A. 2021. Influences of species and watersheds inputs on trace metal accumulation in mangrove roots. Science of the Total Environment, 787, 147438. https://doi.org/10.1016/j.scitotenv.2021.147438
- 43. Rokhmadhoni, R.A., and Marsono, B.D. 2019. Conch shells as an alternative anaerobic filter media for treating domestic wastewater. Jurnal Teknik ITS, 8(1), 46–50. (in Indonesian).
- 44. Ruehl, M.D. and Hibel, S. 2020. Evaluation of organic carbon and microbial inoculum for bioremediation of acid mine drainage. Minerals Engineering, 157, 106554. https://doi.org/10.1016/j.mineng.2020.106554
- 45. Saputra, I., Har, R., Fadhillah,. Saldy, T.G. 2021. Utilisation of FABA, alum, and lime to neutralise acid mine drainage. Jurnal Bima Tambang, 6(4), 216–223. (in Indonesian).
- 46. Singh, S. and Chakraborty, S. 2020. Performance of organic substrate amended constructed wetland treating acid mine drainage (AMD) of North-Eastern India. Journal of Hazardous Materials, 397. 122719, https://doi.org/10.1016/j.jhazmat.2020.122719
- 47. Situru, N.I., Ramli, M., Thamrin. 2019. Prediction of acid mine drainage formation rate by column leaching test method. Jurnal Penelitian Enjiniring, 23(2), 129–135. (in Indonesian).
- 48. Tony, M.A., and Lin, L.S. 2020. Iron recovery from acid mine drainage sludge as fenton source for municipal wastewater treatment. International Journal of Environmental Analytical Chemistry, 102(6), 1245–1260. https://doi.org/10.1080/03067319.2020.1734196
- 49. Violante, A. 2013. Elucidating mechanisms of competitive sorption at the mineral/water interface. In Advances in Agronomy; Sparks, D.L., Ed.; Elsevier: Amsterdam, The Netherlands, 118, 111–176.
- 50. Wang, X., Di, J., Dong, Y., Yang, Y., Liang, B., Meng, F., Wang, T., An, W., Li, Z., Guo, J. 2021. The dynamic experiment on treating acid mine drainage with iron scrap and sulfate reducing bacteria using biomass materials as carbon source. Journal of Renewable Materials, 9(1), 163–177. https://doi.org/10.32604/jrm.2021.011678
- 51. Wilda, R., Hamdan, A.M., Rahmi, R. 2020. A review: The use of mangrove for biomonitoring on aquatic environment, IOP Conf. Series: Materials Science and Engineering, 980, 1–10. https://doi.org/10.1088/1757-899X/980/1/012083
- 52. Win, T.S., Dwiki, S., Hamanaka, A., Sasaoka, T., Shimada, H., Mastumoto, S., Kusuma, G.J. 2020. Application of fly ash and organic material as dry cover system in prevention of acid mine drainage generation. Journal of Geoscience and Environment Protection, 8, 56–64. https://doi.org/10.4236/gep.2020.85004
- 53. Yang, B., Luo, W., Wang, X., Yu, S., Gan, M., Wang, J., Liu, X., Qiu, Z. 2020. The use of biochar for controlling acid mine drainage through the inhibition of chalcopyrite biodissolution. Science of the Total Environment, 737, 139485. https://doi.org/10.1016/j.scitotenv.2020.139485
- 54. Yu, B., Luo, W., Wang, X., Yu, S., Gan, M., Wang, J., Liu, X., Qiu, G. 2020. The use of biochar for controlling acid mine drainage through the inhibition of chalcopyrite biodissolution. Science of the Total Environment, 737, 139485. https://doi.org/10.1016/j.scitotenv.2020.139485
- 55. Zipper, C., Skousen, J., Jage, C. 2018. Passive treatment of Acid-Mine Drainage. Virginia Cooperative Extension, 1–13.
Typ dokumentu
Bibliografia
Identyfikatory
Identyfikator YADDA
bwmeta1.element.baztech-d499d32a-6391-4e50-b275-988f15402de1