GIS and Remote Sensing-Based Assessment and Mapping of Industrial Pollution Impacts: A Case Study of the Kafue River, Zambia
DOI:
https://doi.org/10.38027/smart.v3n1-10Keywords:
GIS, Remote Sensing, Water Pollution, Kafue River, NDVI, NDTI, Smart Environmental Monitoring, Zambia.Abstract
This study applies GIS and multi-temporal satellite remote sensing to trace the environmental signature of the February 2025 Sino-Metals tailings dam failure along Zambia's Kafue River, and considers what the resulting evidence implies for the design of a low-cost, satellite-based early-warning monitoring policy. Landsat 8/9 and Sentinel-2 imagery across six temporal windows (three pre-incident, three post-incident) were used to compute the Normalised Difference Turbidity Index (NDTI) and Normalised Difference Vegetation Index (NDVI), with the Normalised Difference Water Index (NDWI) applied as a binary water mask to separate the open-water pixels used for NDTI from the riparian land pixels used for NDVI. Mean NDTI rose sharply from a pre-incident rainy-season-onset value of −0.008 to +0.210 in March 2025, before returning to near-baseline levels (+0.018) within a month and to clear-water conditions (−0.009) by June 2025 a pattern consistent with the river's hydrological flushing capacity. Riparian NDVI, in contrast, declined from a rainy-season peak of 0.345 in December 2024 to 0.313 immediately after the spill and had not returned to that baseline five months later. Because no concurrent in-situ water-chemistry or soil heavy-metal sampling was available, and because only a single pre-incident rainy-season observation exists, these patterns are interpreted as consistent with, rather than statistically confirmatory of, pollution-driven vegetation stress. The differential recovery signatures of NDTI and NDVI are nonetheless proposed as a candidate design feature for a dual-index, satellite-based early-warning trigger for Zambia's Environmental Management Agency (ZEMA) and Water Resources Management Authority (WARMA), and the data, validation, and institutional requirements for operationalising such a system are discussed.
References
Associated Press. (2025). Zambia copper mine tailings dam collapse contaminates Kafue River. AP News, 24 February 2025.
Bashir, M. F., Ragmoun, W., Alfalih, A., & Bashir, M. (2025). Analyzing sustainable urban development through smart and sustainable cities: An integrated review. Frontiers in Sustainable Cities, 7, 1685716. https://doi.org/10.3389/frsc.2025.1685716
Claverie, M., Ju, J., Masek, J. G., Dungan, J. L., Vermote, E. F., Roger, J.-C., Skakun, S. V., & Justice, C. (2018). The Harmonized Landsat and Sentinel-2 surface reflectance data set. Remote Sensing of Environment, 219, 145–161. https://doi.org/10.1016/j.rse.2018.09.002
Crioni, R., Arana, T., & Bevilacqua, J. (2023). Monitoring river turbidity following mine tailings dam failures using Sentinel-2 imagery. Remote Sensing of Environment, 287, 113479. https://doi.org/10.1016/j.rse.2023.113479
El-Zeiny, A., & Effat, H. (2019). Satellite monitoring of spatial-temporal changes in Qaron Lake water quality. Egyptian Journal of Remote Sensing and Space Sciences, 22(2), 127–137. https://doi.org/10.1016/j.ejrs.2018.05.001
Engineering Institution of Zambia. (2025). Kafue River basin water supply statement. Engineering Institution of Zambia.
Fernandes, G. W., Goulart, F. F., Ranieri, B. D., Coelho, M. S., Dales, K., Boesche, N., Bustamante, M., Carvalho, F. A., Carvalho, D. C., Dirzo, R., Fernandes, S., Galetti, P. M., Millan, V. E. G., Mielke, C., Ramirez, J. L., Neves, A., Rogass, C., Ribeiro, S. P., Scariot, A., & Soares-Filho, B. (2016). Deep into the mud: Ecological and socio-economic impacts of the dam breach in Mariana, Brazil. Natureza & Conservação, 14(2), 35–45. https://doi.org/10.1016/j.ncon.2016.10.003
Giljum, S., Maus, V., Sonter, L., Luckeneder, S., Werner, T., Lutter, S., Gershenzon, J., Cole, M. J., Siqueira-Gay, J., & Bebbington, A. (2025). Metal mining is a global driver of environmental change. Nature Reviews Earth & Environment, 6, 441–455. https://doi.org/10.1038/s43017-025-00683-w
Hudson-Edwards, K., Kemp, D., Torres-Cruz, L., Macklin, M., Brewer, P., & Owen, J. (2024). Tailings storage facilities, failures and disaster risk. Nature Reviews Earth & Environment, 5(9), 612–630. https://doi.org/10.1038/s43017-024-00576-4
International Council on Mining and Metals. (2020). Global Industry Standard on Tailings Management (GISTM). ICMM.
Kemp, D., Owen, J., & Lèbre, É. (2021). Tailings facility failures in the global mining industry: Will a ‘transparency turn’ drive change? Business Strategy and the Environment, 30(1), 122–134. https://doi.org/10.1002/bse.2613
Kříbek, B., Nyambe, I., Sracek, O., Mihaljevič, M., & Knésl, I. (2023). Impact of mining and ore processing on soil, drainage and vegetation in the Zambian Copperbelt mining districts: A review. Minerals, 13(3), 384. https://doi.org/10.3390/min13030384
Lin, S., Wang, G., Liu, W., Zhao, B., Shen, Y., & Wang, M. (2022). Regional distribution and causes of global mine tailings dam failures. Metals, 12(6), 905. https://doi.org/10.3390/met12060905
Lovynska, V., Bayat, B., Bol, R., Moradi, S., Rahmati, M., Raj, R., Sytnyk, S., Wiche, O., Wu, B., & Montzka, C. (2024). Monitoring heavy metals and metalloids in soils and vegetation by remote sensing: A review. Remote Sensing, 16(17), 3221. https://doi.org/10.3390/rs16173221
Marais, L., Kemp, D., van der Watt, P., Matebesi, S., Cloete, J., Harris, J., Li Ern, M. A., & Owen, J. (2024). The catastrophic failure of the Jagersfontein tailings dam: An industrial disaster 150 years in the making. International Journal of Disaster Risk Reduction, 109, 104585. https://doi.org/10.1016/j.ijdrr.2024.104585
McFeeters, S. K. (1996). The use of the Normalized Difference Water Index (NDWI) in the delineation of open water features. International Journal of Remote Sensing, 17(7), 1425–1432. https://doi.org/10.1080/01431169608948714
Mukumba, C. P., Sishekanu, M., & Marais, L. (2026). Mine waste disasters on the Zambian Copperbelt: Regulatory and community concerns. Environmental Management, 76(5), 143. https://doi.org/10.1007/s00267-026-02444-x
Nakamura, S., Igarashi, T., Uchida, Y., Ito, M., Hirose, K., Sato, T., Mufalo, W., Chirwa, M., Nyambe, I., Nakata, H., Nakayama, S. M. M., & Ishizuka, M. (2021). Evaluation of dispersion of lead-bearing mine wastes in Kabwe District, Zambia. Minerals, 11(8), 901. https://doi.org/10.3390/min11080901
Nakamura, S., Igarashi, T., Uchida, Y., Ito, M., Hirose, K., Sato, T., Mufalo, W., Chirwa, M., Nyambe, I., Nakata, H., Nakayama, S. M. M., & Ishizuka, M. (2022). Impacts of surface water on windborne lead dispersion from the zinc plant leach residue in Kabwe, Zambia. Minerals, 12(5), 535. https://doi.org/10.3390/min12050535
Nakata, H., Nakayama, S. M. M., Yabe, J., Muzandu, K., Kataba, A., Ikenaka, Y., & Ishizuka, M. (2022). Interdisciplinary approach to addressing lead pollution caused by mining activity in Kabwe, the Republic of Zambia. Environmental Monitoring and Contaminants Research, 2, 94–111.
Neeti, N., & Eastman, J. R. (2011). A contextual Mann-Kendall approach for the assessment of trend significance in image time series. Transactions in GIS, 15(5), 599–611. https://doi.org/10.1111/j.1467-9671.2011.01280.x
Norrgren, L., Pettersson, U., Örn, S., & Bergqvist, P.-A. (2000). Environmental monitoring of the Kafue River, located in the Copperbelt, Zambia. Archives of Environmental Contamination and Toxicology, 38, 334–341. https://doi.org/10.1007/s002449910044
Pyankov, S., Maximovich, N., & Blinov, S. (2021). Water quality assessment of acid mine drainage using Sentinel-2 satellite data: Kizel coal basin, Russia. Remote Sensing, 13(12), 2357. https://doi.org/10.3390/rs13122357
Rana, N., Ghahramani, N., Evans, S. G., Small, A., Skermer, N., McDougall, S., & Take, W. A. (2022). Global magnitude-frequency statistics of the failures and impacts of large water-retention dams and mine tailings impoundments. Earth-Science Reviews, 232, 104144. https://doi.org/10.1016/j.earscirev.2022.104144
Republic of Zambia. (2011). Water Resources Management Act No. 21 of 2011. Government Printer.
Ritchie, J. C., Zimba, P. V., & Everitt, J. H. (2023). Remote sensing techniques for water quality monitoring: A review of 50 years of research. Remote Sensing of Environment, 287, 113384. https://doi.org/10.1016/j.rse.2023.113384
Rotta, L. H. S., Alcântara, E., Park, E., Negri, R. G., Lin, Y. N., Bernardo, N., Mendes, T. S. G., & Souza Filho, C. R. (2020). The 2019 Brumadinho tailings dam collapse: Possible cause and impacts of the worst human and environmental disaster in Brazil. International Journal of Applied Earth Observation and Geoinformation, 90, 102119. https://doi.org/10.1016/j.jag.2020.102119
Ruppen, D., Kuffer, M., & Giupponi, C. (2023). Tracking a mine tailings spill with Sentinel-2: The Catoca mine, Angola. International Journal of Applied Earth Observation and Geoinformation, 118, 103246. https://doi.org/10.1016/j.jag.2023.103246
United States Geological Survey. (2024). Landsat Collection 2 Level-2 science product guide. USGS. https://www.usgs.gov/landsat-missions
Yuan, J., Ding, Z., Bi, Y., Li, J., Wen, S., & Bai, S. (2022). Resource utilization of acid mine drainage (AMD): A review. Water, 14(15), 2385. https://doi.org/10.3390/w14152385
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Copyright (c) 2026 Stanley Kapota, Dabwitso Miti, Musoka Nyongolo, Dr. Penjani Hopkins Nyimbili, Prof. Dr. Erastus Misheng’u Mwanaumo, Prof. Dr. Wellington Didibhuku Thwala, Masauso Sakala (Author)

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