Soil & Water Res., 2024, 19(3):133-143 | DOI: 10.17221/17/2024-SWR
Temporal changes of soil characteristics on Lítov spoil heap, Czech RepublicOriginal Paper
- 1 Department of Soil Science and Soil Protection, Faculty of Agrobiology, Food and Natural Resources, Czech University of Life Sciences Prague, Prague, Czech Republic
- 2 Department of Landscape Architecture, Faculty of Agrobiology, Food and Natural Resources, Czech University of Life Sciences Prague, Prague, Czech Republic
This study aimed to examine the changes in selected soil properties at Lítov spoil heap (Sokolov, Czech Republic) and compare the current situation with the situation described twenty years ago. A total of 110 soil samples were taken at Lítov at the same sites as in 1998. The analyses of basic soil characteristics involved: exchangeable soil pH (pHKCl), organic carbon content (Cox), quality of humic substances (A400/A600), exchangeable acidity (Ea), and two types of aluminium contents in the soil. Changes in all soil characteristics between 1998 and 2018 were statistically evaluated, compared, and visualized using Geographical Information Systems (GIS). We have observed an increase of pHKCl, Cox and a slight improvement in humus quality compared to the results from 1998. The temporal changes of soil characteristics were evident in the whole area, and the influence of reclamation methods was also pronounced. Soil development close to the regional common natural conditions was found in the area where agricultural reclamation measures (i.e., covering with topsoil) were carried out. Furthermore, afforestation – mainly by deciduous trees – supported the improvement of soil characteristics favourable for plant growth. High pyrite content and marshland were identified as the main causes that led to vegetation cover mortality.
Keywords: acidification; aluminium; anthropogenic soil; mining; pH; reclamation
Received: February 20, 2024; Revised: May 3, 2024; Accepted: May 20, 2024; Prepublished online: June 2, 2024; Published: September 25, 2024 Show citation
References
- Álvarez E., Fernández-Marcos M.L., Monterroso C., Fernández-Sanjurjo M.J. (2005): Application of aluminium toxicity indices to soils under various forest species. Forest Ecology and Management, 211: 227-239.
Go to original source...
- Asensio V., Covelo E.F., Kandeler E. (2013): Soil management of copper mine tailing soils - Sludge amendment and tree vegetation could improve biological soil quality. Science of the Total Environment, 456-457: 82-90.
Go to original source...
Go to PubMed...
- Asensio V., Vega F.A., Covelo E.F. (2014): Effect of soil reclamation process on soil C fractions. Chemosphere, 95: 511-518.
Go to original source...
Go to PubMed...
- Borůvka L., Kozák J. (2001): Geostatistical investigation of a reclaimed dumpsite soil with emphasis on aluminum. Soil and Tillage Research, 59: 115-126.
Go to original source...
- Borůvka L., Kozák J., Drábek O. (1999): Influence of some soil properties on the content of selected A1 forms in the soil of the dumpsite Lítov. Rostlinná Výroba, 45: 9-15.
- Borůvka L., Kozák J., Mühlhanselová M., Donátová H., Nikodem A., Němeček K., Drábek O. (2012): Effect of covering with natural topsoil as a reclamation measure on brown-coal mining dumpsites. Journal of Geochemical Exploration, 113: 118-123.
Go to original source...
- Bowman W.D., Cleveland C.C., Halada Ĺ., Hreško J., Baron J.S. (2008): Negative impact of nitrogen deposition on soil buffering capacity. Nature Geoscience, 1: 767-770.
Go to original source...
- Bussinow M., Šarapatka B., Dlapa P. (2008): Effect of old mining activities on nutrient and toxic elements concentration in the biomass of Norway spruce (Picea abies L. Karst.) and European Birch (Betula pendula L.). International Journal of Environment and Pollution, 33: 235-247.
Go to original source...
- Bussinow M., Šarapatka B., Dlapa P. (2012): Chemical degradation of forest soil as a result of polymetallic ore mining activities. Polish Journal of Environmental Studies, 21: 1551-1561.
- Čížková B., Woś B., Pietrzykowski M., Frouz J. (2018): Development of soil chemical and microbial properties in reclaimed and unreclaimed grasslands in heaps after opencast lignite mining. Ecological Engineering, 123: 103-111.
Go to original source...
- Dang T., Mosley L.M., Fitzpatrick R., Marschner P. (2016): Addition of organic material to sulfuric soil can reduce leaching of protons, iron and aluminium. Geoderma, 271: 63-70.
Go to original source...
- Drábek O., Borůvka L., Mladková L., Kočárek M. (2003): Possible method of aluminium speciation in forest soils. Journal of Inorganic Biochemistry, 97: 8-15.
Go to original source...
Go to PubMed...
- Dunger W., Wanner M., Hauser H., Hohberg K., Schulz H.J., Schwalbe T., Seifert B., Vogel J., Voigtländer K., Zimdars B., Zulka K.P. (2001): Development of soil fauna at mine sites during 46 years after afforestation. Pedobiologia, 45: 243-271.
Go to original source...
- Echevarria G., Morel J.L. (2015): Technosols of mining areas. Tópicos em Ciência do Solo, 9: 1-20.
- Frouz J., Nováková A. (2005): Development of soil microbial properties in topsoil layer during spontaneous succession in heaps after brown coal mining in relation to humus microstructure development. Geoderma, 129: 54-64.
Go to original source...
- Frouz J., Keplin B., Pižl V., Tajovský K., Starý J., Lukešová A., Nováková A., Balík V., Háněl L., Materna J., Düker C., Chalupský J., Rusek J., Heinkele T. (2001): Soil biota and upper soil layer development in two contrasting post-mining chronosequences. Ecological Engineering, 17: 275-284.
Go to original source...
- Frouz J., Prach K., Pižl V., Háněl L., Starý J., Tajovský K., Materna J., Balík V., Kalčík J., Řehounková K. (2008): Interactions between soil development, vegetation and soil fauna during spontaneous succession in post mining sites. European Journal of Soil Biology, 44: 109-121.
Go to original source...
- Frouz J., Livečková M., Albrechtová J., Chroňáková A., Cajthaml T., Pižl V., Háněl L., Starý J., Baldrian P., Lhotáková Z., Šimáčková H., Cepáková Š. (2013): Is the effect of trees on soil properties mediated by soil fauna? A case study from post-mining sites. Forest Ecology and Management, 309: 87-95.
Go to original source...
- Hagvall K., Persson P., Karlsson T. (2015): Speciation of aluminum in soils and stream waters: The importance of organic matter. Chemical Geology, 417: 32-43.
Go to original source...
- Hendrychová M. (2008). Reclamation success in post-mining landscapes in the Czech Republic: A review of pedological and biological studies. Journal of Landscape Studies, 1: 63-78.
- Jačka L., Walmsley A., Kovář M., Frouz J. (2021): Effects of different tree species on infiltration and preferential flow in soils developing at a clayey spoil heap. Geoderma, 403: 115372.
Go to original source...
- James B.R., Clark C.J., Riha S.J. (1983): An 8-hydroxyquinoline method for labile and total aluminum in soil extracts. Soil Science Society of America Journal, 47: 893-897.
Go to original source...
- Jelenová H., Majzlan J., Amoako F.Y., Drahota P. (2018): Geochemical and mineralogical characterization of the arsenic-, iron-, and sulfur-rich mining waste dumps near Kaňk, Czech Republic. Applied Geochemistry, 97: 247-255.
Go to original source...
- Kabrna M. (2011): Studies of land restoration on spoil heaps from brown coal mining in the Czech Republic - A literature review. Journal of Landscape Studies, 4: 59-69.
- Kotowski M., Pawłowski L., Seip H.M., Vogt R.D. (1994): Mobilization of aluminium in soil columns exposed to acids or salt solutions. Ecological Engineering, 3: 279-290.
Go to original source...
- Liu X., Bai Z., Zhou W., Cao Y., Zhang G. (2017): Changes in soil properties in the soil profile after mining and reclamation in an opencast coal mine on the Loess Plateau, China. Ecological Engineering, 98: 228-239.
Go to original source...
- MacDonald S.E., Landhäusser S.M., Skousen J., Franklin J., Frouz J., Hall S., Jacobs D.F., Quideau S. (2015): Forest restoration following surface mining disturbance: Challenges and solutions. New Forests, 46: 703-732.
Go to original source...
- Merino A., Macías F., García-Rodeja E. (1998): Aluminium dynamics in experimentally acidified soils from a humid-temperate region of South Europe. Chemosphere, 36: 1137-1142.
Go to original source...
- Pająk M., Krzaklewski W. (2007): Selected physical properties of initial soils on the outside spoil bank of the Bełchatów brown coal mine. Journal of Forest Science, 53: 308-313.
Go to original source...
- Parrotta J.A., Knowles O.H. (2001): Restoring tropical forests on lands mined for bauxite: Examples from the Brazilian Amazon. Ecological Engineering, 17: 219-239.
Go to original source...
- Pavlů L., Borůvka L., Drábek O., Nikodem A. (2019): Effect of natural and anthropogenic acidification on aluminium distribution in forest soils of two regions in the Czech Republic. Journal of Forestry Research, 32: 363-370.
Go to original source...
- Pospíšil F. (1964): Fractionation of humus substances of several soil types in Czechoslovakia. Rostlinná Výroba, 10: 567-580.
- Pospíšil F. (1981): Group- and fractional composition of the humus of different soils. Transactions of the 5th International Soil Science Conference, 1: 135-138.
- Rimstidt D.D., Vaughan D.J. (2003): Pyrite oxidation: A state-of-the-art assessment of the reaction mechanism. Geochimica et Cosmochimica Acta, 67: 873-880.
Go to original source...
- Sheoran V., Sheoran A.S., Poonia P. (2010): Soil reclamation of abandoned mine land by revegetation: A Review. International Journal of Soil, Sediment and Water, 3: 13.
- Shrestha R.K., Lal R. (2011): Changes in physical and chemical properties of soil after surface mining and reclamation. Geoderma, 161: 168-176.
Go to original source...
- Schmitt M., Watanabe T., Jansen S. (2016): The effects of aluminium on plant growth in a temperate and deciduous aluminium accumulating species. AoB PLANTS, 8: plw065.
Go to original source...
- Šourková M., Frouz J., Šantrůčková H. (2005): Accumulation of carbon, nitrogen and phosphorus during soil formation on alder spoil heaps after brown-coal mining, near Sokolov (Czech Republic). Geoderma, 124: 203-214.
Go to original source...
- Spasić M., Vacek O., Vejvodová K., Tejnecký V., Vokurková P., Krížová P., Polák F., Vašát R., Borůvka L., Drábek O. (2023): Which trees form the best soil? Reclaimed mine soil properties under 22 tree species: 50 years later - assessment of physical and chemical properties. European Journal of Forest Research, 143: 561-579.
Go to original source...
- Spasić M., Vacek O., Vejvodová K., Borůvka L., Tejnecký V., Drábek O. (2024): Profile development and soil properties of three forest reclamations of different ages in Sokolov mining basin, Czech Republic. Forests, 15: 650.
Go to original source...
- Swab R.M., Lorenz N., Byrd S., Dick R. (2017): Native vegetation in reclamation: Improving habitat and ecosystem function through using prairie species in mine land reclamation. Ecological Engineering, 108: 525-536.
Go to original source...
- Vachova P., Vach M., Skalicky M., Walmsley A., Berka M., Kraus K., Hnilickova H., Vinduskova O., Mudrak O. (2022): Reclaimed mine sites: Forests and plant diversity. Diversity, 14: 13.
Go to original source...
- Wang L., Coles N., Wu C., Wu J. (2014): Effect of long-term reclamation on soil properties on a Coastal Plain, Southeast China. Journal of Coastal Research, 30: 661-669.
Go to original source...
- Wanner M., Dunger W. (2001): Biological activity of soils from reclaimed open-cast coal mining areas in Upper Lusatia using testate amoebae (protists) as indicators. Ecological Engineering, 17: 323-330.
Go to original source...
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