The Nature of the Technosols on the Waste from Nickel Production
Abstract
:1. Introduction
2. Materials and Methods
3. Results
3.1. Study Area
3.2. External Natural and Anthropogenic Factors and Conditions of Study Area
3.3. The Properties of the Metallurgical Sludge
4. Discussion
5. Conclusions
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- With respect to the geographical location, the landfill lies in the agricultural landscape of the Danubian Lowland,
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- with respect to the relief, the surface of the landfill body is not stable, and it is subject to fluvial processes on the slopes and to the dangerous process of wind erosion as well as the anthropogenic erosion by the mining, which accelerates all of these processes,
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- with respect to the amount of sludge, its toxicity as well as the length of time (57 years) it has been present has induced an impact on the environment and the health of the population,
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- critically, the landfill is private property today and entry is only possible with the consent of the owners.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Metal Production | Quantity in [t] | Annual Waste Production | Waste Production over 30 Years Total [t] |
---|---|---|---|
Annual production of nickel and cobalt | 2510 | 2450 [t] nickel, 60 [t] cobalt | 75,300 |
Annual production of waste | 300,000 | 120 [t] of waste per 1 [t] of metal | 9,000,000 |
Annual consumption of chemicals | 5624 | 2.25 [t] chemicals per 1 [t] of metal | 168,720 |
Annual deflation of sludge into the air | 20,000 | An average of 55 [t] per day | 600,000 [t]—30 years 1,140,000 [t]—57 years |
Fractions in mm | PM10 < 0.01 mm | Dust 0.01–0.05 mm | Sand 0.05–2.0 mm |
---|---|---|---|
Share in % | 17.05 | 35.55 | 47.40 |
Content of Dust Particles of Fraction >0.01 in Individual Horizon of Probes in % | Probe No. 1 | Probe No. 2 | Probe No. 3 | Probe No. 4 | Probe No. 5 | Average |
---|---|---|---|---|---|---|
Surface horizon | 11.1 | 15.5 | 14.2 | 11.9 | 30.2 | 16.0 |
First subsurface horizon | - | 27.7 | 35.0 | - | 46.4 | 33.0 |
Second subsurface horizon | - | 11.3 | 39.7 | - | 11.2 | 18.2 |
Third subsurface horizom—only in probe No.3 | - | - | 11.2 | - | - | 11.2 |
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Michaeli, E.; Solár, V.; Maxin, M.; Vilček, J.; Boltižiar, M. The Nature of the Technosols on the Waste from Nickel Production. Sustainability 2021, 13, 406. https://doi.org/10.3390/su13010406
Michaeli E, Solár V, Maxin M, Vilček J, Boltižiar M. The Nature of the Technosols on the Waste from Nickel Production. Sustainability. 2021; 13(1):406. https://doi.org/10.3390/su13010406
Chicago/Turabian StyleMichaeli, Eva, Vladimír Solár, Matúš Maxin, Jozef Vilček, and Martin Boltižiar. 2021. "The Nature of the Technosols on the Waste from Nickel Production" Sustainability 13, no. 1: 406. https://doi.org/10.3390/su13010406
APA StyleMichaeli, E., Solár, V., Maxin, M., Vilček, J., & Boltižiar, M. (2021). The Nature of the Technosols on the Waste from Nickel Production. Sustainability, 13(1), 406. https://doi.org/10.3390/su13010406