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Yıl 2024, Cilt: 6 Sayı: 2, 253 - 261, 31.08.2024

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Comprehensive Utilizations of Red Mud with Emphasis on Circular Economy: An Approach towards Achieving the United Nations Sustainable Development Goals

Yıl 2024, Cilt: 6 Sayı: 2, 253 - 261, 31.08.2024

Öz

Red mud (Bauxite residue) is an industrial by-product (IBP) generated as a vast volume, mainly from aluminum industries. Disposal of red mud in open land leads to serious environmental hazards, occupies a vast land area, and incurs enormous economic and social costs. Storage and maintenance of red mud dumps are also costly, and their failures frequently flood vast areas, killing people and cattle and disrupting the ecosystem. Conversely, research data shows that the red mud has enormous potential to transform its valuable resources. Due to the growing demand for bauxite ore for aluminum industries, the volume of red mud has been increasing rapidly, causing an inevitable multidirectional consequence in the context of environmental and sustainability issues. On the other hand, the rising demand and resource crises continue to deplete natural resources; the gap of enormous resource availability has become a severe challenge for scientists, researchers, and institutional R&D to develop a process technology to re-generate resources through the recycling of wastes. Using red mud through the circular economy concept can replenish the depletion of virgin resources (mainly the construction sector) and extract valuable materials and metals from red mud. Recycling RM through the circular business model can increase the sustainability of natural resources, reduce environmental pollution, water contamination, and land pollution, increase land area, replenish the depletion of natural resources, enhance economic growth, and mitigate global warming and climate change.

Kaynakça

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  • Rai, S., Nimje, M.T., Chaddha, M.J., Modak, S., Rao, K.R., Agnihotri, A., 2019. Recovery of iron from bauxite residue using advanced separation techniques. Minerals Engineering 134, 222-231.
  • Ribeiro, D.V., Labrincha, J.A., Morelli, M.R., 2010. Use of red mud as addition for portland cement mortars. Journal of Materials Science and Engineering 4 (8), 1-8.
  • Rodionova, I.A., 2020. The shifts in the spatial structure of the world bauxite industry and Guinea’s position in the industry. Revista ESPACIOS 41 (21), 11-21.
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  • Sadangi, J.K., Das, S.P., Tripathy, A., Biswal, S.K., 2018. Investigation into recovery of iron values from red mud dumps. Separation Science and Technology 53 (14), 2186-2191.
  • Sahu, R.C., Patel, R., Ray, B.C., 2010. Utilization of activated CO2-neutralized red mud for removal of arsenate from aqueous solutions. Journal of Hazardous Materials 179 (1-3), 1007-1013
  • Samal, S., Ray, A.K., Bandopadhyay, A., 2013. Proposal for resources, utilization and processes of red mud in India—a review. International Journal of Mineral Processing 118, 43-55.
  • Sauvé, S., Bernard, S., Sloan, P., 2016. Environmental sciences, sustainable development and circular economy: Alternative concepts for trans-disciplinary research. Environmental Development 17, 48-56.
  • Snars, K., Gilkes, R.J., 2009. Evaluation of bauxite residues (red muds) of different origins for environmental applications. Applied Clay Science 46 (1), 13-20. https://doi.org/10.1016/j.clay.2009.06.014.
  • Sutar, H., Mishra, S.C., Sahoo, S.K., Maharana, H.S., 2014. Progress of red mud utilization: An overview. Chemical Science International Journal 255-279.
  • Swain, B., 2022. Red mud: An environmental challenge but overlooked treasure for critical rare earth metals. MRS Bulletin 47(3), 289-302.
  • Swain, B., Akcil, A., Lee, J.C., 2022. Red mud valorization an industrial waste circular economy challenge; review over processes and their chemistry. Critical Reviews in Environmental Science and Technology 52 (4), 520-570. https://doi.org/10.1080/10643389.2020.1829898.
  • Taneez, M., Hurel, C., 2019. A review on the potential uses of red mud as amendment for pollution control in environmental media. Environmental Science and Pollution Research 26, 22106-22125. https://doi.org/10.1007/s11356-019-05576-2.
  • Taneez, M., Hurel, C., Marmier, N., 2015. Ex-situ evaluation of bauxite residues as amendment for trace elements stabilization in dredged sediment from Mediterranean Sea: a case study. Marine Pollution Bulletin 98 (1-2), 229-234. https://doi.org/10.1016/j.marpolbul.2015.06.046.
  • Tisza, M., Czinege, I., 2018. Comparative study of the application of steels and aluminium in lightweight production of automotive parts. International Journal of Lightweight Materials and Manufacture 1 (4), 229-238.
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  • Uysal, M., Kuranlı, Ö.F., Aygörmez, Y., Canpolat, O., Çoşgun, T., 2023. The effect of various fibers on the red mud additive sustainable geopolymer composites. Construction and Building Materials 363, 129864.
  • Wackernagel, M., Schulz, N.B., Deumling, D., Linares, A.C., Jenkins, M., Kapos, V., Monfreda, C., Loh, J., Myers, N., Norgaard, R., Randers, J., 2002. Tracking the ecological overshoot of the human economy. Proceedings of the national Academy of Sciences 99 (14), 9266-9271. https://doi.org/10.1073/pnas.1420336.
  • Wang, L., Hu, G., Lyu, F., Yue, T., Tang, H., Han, H., Sun, W., 2019. Application of red mud in wastewater treatment. Minerals 9 (5), 281.
  • Wang, S., Ang, H.M., Tadé, M.O., 2008. Novel applications of red mud as coagulant, adsorbent and catalyst for environmentally benign processes. Chemosphere 72 (11), 1621-1635. https://doi.org/10.1016/j.chemosphere.2008.05.013.
  • Wang, W., Chen, W., Liu, H., Han, C., 2018. Recycling of waste red mud for production of ceramic floor tile with high strength and lightweight. Journal of Alloys and Compounds 748, 876-881. https://doi.org/10.1016/j.jallcom.2018.03.220.
  • Wang, Y., Zhang, T. A., Lyu, G., Guo, F., Zhang, W., Zhang, Y., 2018. Recovery of alkali and alumina from bauxite residue (red mud) and complete reuse of the treated residue. Journal of Cleaner Production 188, 456-465. https://doi.org/10.1016/j.jclepro.2018.04.009.
  • Wen, Z. C., Ma, S.H., Zheng, S.L., Zhang, Y., Liang, Y., 2016. Assessment of environmental risk for red mud storage facility in China: a case study in Shandong Province. Environmental Science and Pollution Research 23 (11), 11193-11208.
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  • Wong, J.W., Ho, G., 1994. Effectiveness of acidic industrial wastes for reclaiming fine bauxite refining residue (Red mud). Soil Sciences 158 (2), 115-123.
  • Xakalashe, B., Friedrich, B. 2019. Towards red mud valorization: EAF smelting process for iron recovery and slag design for use as precursor in the construction industry. In 6th International Slag Valorisation Symposium, Mechelen, Belgium (pp. 233-240).
  • Xie, W., Zhou, F., Liu, J., Bi, X., Huang, Z., Li, Y., Chen, D., Zou, H., Sun, S., 2020. Synergistic reutilization of red mud and spent pot lining for recovering valuable components and stabilizing harmful element. Journal of Cleaner Production 243, 118624. https://doi.org/10.1016/j.jclepro.2019.118624.
  • Yan, P., Chen, B., Haque, M.A., Liu, T. 2023. Influence of red mud on the engineering and microstructural properties of sustainable ultra-high-performance concrete. Construction and Building Materials 396, 132404. https://doi.org/10.101.6/j.conbuildmat.2023.132404.
  • Yang, H., Chen, C., Pan, L., Lu, H., Sun, H., Hu, X. 2009. Preparation of double-layer glass-ceramic/ceramic tile from bauxite tailings and red mud. Journal of the European Ceramic Society 29 (10), 1887-1894. https://doi.org/10.1016/j.jeurceramsoc.2009.01.007.
  • Yang, J., Xiao, B., 2008. Development of unsintered construction materials from red mud wastes produced in the sintering alumina process. Construction and Building Materials 22(12), 2299-2307. https://doi.org/10.1016/j.conbuildmat.2007.10.005.
  • Zhang, C.L., Wang, J.W., Liu, H.L., 2014. Research advance and status quo of dealkalization of red mud. Multipurpose Utilization of Mineral Resources 2014 (2) 11-14.
  • Zhang, G., He, J., Gambrell, R.P., 2010. Synthesis, characterization, and mechanical properties of red mud-based geopolymers. Transportation Research Record 2167 (1), 1-9.
  • Zhang, M., El-Korchi, T., Zhang, G., Liang, J., Tao, M., 2014. Synthesis factors affecting mechanical properties, microstructure, and chemical composition of red mud-fly ash based geopolymers. Fuel 134, 315-325.
  • Zhang, T.A., Wang, Y., Lu, G., Liu, Y., Zhang, W., Zhao, Q., 2018. Comprehensive Utilization of Red Mud: Current Research Status and a Possible Way Forward for Non-hazardous Treatment. In TMS Annual Meeting & Exhibition (pp. 135-141). Springer, Cham.
  • Zhang, X.K., Zhou, K.G., Chen, W., Lei, Q.Y., Huang, Y., Peng, C.H., 2019. Recovery of iron and rare earth elements from red mud through an acid leaching-stepwise extraction approach. Journal of Central South University 26 (2), 458-466. https://doi.org/10.1007/s11771-019-4018-6.
  • Zhang, X., Zhou, K., Lei, Q., Xing, Y., Peng, C., Chen, W., 2020. Stripping of Fe (III) from Aliquat 336 by NaH2PO4: implication for rare-earth elements recovery from red mud. Separation Science and Technology 56 (2), 301-309. https://doi.org/10.1080/01496395.2020.1713814.
  • Zhao, J., Wang, Y., Kang, J., Qu, Y., Khater, G. A., Li, S., Shi, O., Yue, Y., 2019. Effect of SnO2 on the structure and chemical durability of the glass prepared by red mud. Journal of Non-Crystalline Solids 509, 54-59. https://doi.org/10.1016/j.jnoncrysol.2019.01.029.
  • Zhao, Y., Liang, N., Chen, H., Yuan, L.I., 2020. Preparation and properties of sintering red mud unburned road brick using orthogonal experiments. Construction and Building Materials 238, 117739.
  • Zhu, X., Niu, Z., Li, W., Zhao, H., Tang, Q., 2020. A novel process for recovery of aluminum, iron, vanadium, scandium, titanium and silicon from red mud. Journal of Environmental Chemical Engineering 8 (2), 103528. https://doi.org/10.1016/j.jece.2019.103528.
Toplam 117 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Deniz Jeolojisi ve Jeofiziği
Bölüm Research Articles
Yazarlar

Bishnu Pada Bose

Yayımlanma Tarihi 31 Ağustos 2024
Gönderilme Tarihi 28 Temmuz 2024
Kabul Tarihi 13 Ağustos 2024
Yayımlandığı Sayı Yıl 2024 Cilt: 6 Sayı: 2

Kaynak Göster

AMA Bose BP. Comprehensive Utilizations of Red Mud with Emphasis on Circular Economy: An Approach towards Achieving the United Nations Sustainable Development Goals. IJESKA. Ağustos 2024;6(2):253-261.