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Analysis of spatio-temporal development of mining landforms using aerial photographs: Case study from the Ostrava–Karviná mining district Cover

Analysis of spatio-temporal development of mining landforms using aerial photographs: Case study from the Ostrava–Karviná mining district

Open Access
|Oct 2024

References

  1. Blachowski, J. (2016). Application of GIS spatial regression methods in assessment of land subsidence in complicated mining conditions: case study of the Walbrzych coal mine (SW Poland). Natural Hazards, 84, 997–1014. https://doi.org/10.1007/s11069-016-2470-2
  2. Brandolini, P., Mandarino, A., Paliaga, G., & Faccini, F. (2021). Anthropogenic landforms in an urbanized alluvial-coastal plain (Rapallo city, Italy). Journal of Maps, 17(4), 86–97. https://doi.org/10.1080/17445647.2020.1793818
  3. Chirico, P. G., Bergstresser, S. E., Dewitt, J. D., & Alessi, M. A. (2021). Geomorphological mapping and anthropogenic landform change in an urbanizing watershed using structure-from-motion photogrammetry and geospatial modeling techniques. Journal of Maps, 17(4), 241–252. https://doi.org/10.1080/17445647.2020.1746419
  4. Dávid, L. (2008). Quarrying: an anthropogenic geomorphological approach. Acta Montanistica Slovaca, 13(1), 66–74.
  5. Doležalová, H., Kajzar, V., Souček, K., & Staš, L. (2009). Evaluation of mining subsidence using GPS data. Acta Geodynamica et Geomaterialia, 6(3), 359–367.
  6. Doležalová, H., Kajzar, V., Souček, K., & Staš, L. (2012). Analysis of surface movements from undermining in time. Acta Geodynamica et Geomaterialia, 9(3), 389–400.
  7. Drlík, R. (1960). Ostravské haldy. Uhlí. Technicko-ekonomický měsíčník ministerstva paliv, 2(3), 85–87.
  8. Drlík, R. (1964). Ostravskokarvinský revír bez hald. Sborník k dějinám a výstavbě města, 2, 151–155.
  9. Dulias, R. (2016). The Impact of Mining on the Landscape. Springer. https://doi.org/10.1007/978-3-319-29541-1
  10. Gerlich, V. (1973). Problematika asanačně rekultivačních prací OKR. 12 str. strojopisu. Archív GÚ ČSAV Brno.
  11. Harnischmacher, S. (2007). Anthropogenic impacts in the Ruhr District (Germany): A contribution to anthropogeomorphology in a former mining region. Geografia Fisica e Dinamica Quaternaria, 30(2), 185–192.
  12. Havrlant, J. (1997a). The Consequences of Coal Mining in the Natural Environment of the Karviná region. Acta Universitatis Carolinae – Geographica, 32, 71–78.
  13. Havrlant, J. (1997b). Hornictví a jeho trvalé následky v poddolované karvinské části Ostravské pánve. Geografie. Sborník ČGS, 102, 279–287. https://doi.org/10.37040/geografie1997102040279
  14. Havrlant, J. (1999). Negative Influences of Coal Extraction in the Mining areas of the Karviná region. Moravian geograpical reports, 7, 56–60.
  15. Havrlant, M. (1967). Dosavadní biogeografický výzkum hald v OKR. Sborník prací Pedagogické fakulty v Ostravě 7. Řada C-2, 3–26.
  16. Havrlant, M. (1980). Antropogenní formy reliéfu a životní prostředí Ostravské průmyslové oblasti. Spisy Pedagogické fakulty v Ostravě, 41.
  17. Havrlant, M., Kincl, M., & Gerlich, V. (1967). Přírodní podmínky a současný stav vegetačního krytu na černouhelných haldách Ostravsko-karvinského revíru. Státní pedagogické nakladatelství. Spisy Pedagogické fakulty v Ostravě, 7.
  18. Henselowsky, F., Rölkens, J., Kelterbaum, D., & Bubenzer, O. (2021). Anthropogenic relief changes in a long-lasting lignite mining area (‘Ville’, Germany) derived from historic maps and digital elevation models. Earth Surface Processes and Landforms, 46, 1725–1738. https://doi.org/10.1002/esp.5103
  19. Hlavatá, M., Dirner, V., & Kučerová, R. (2012). Zhodnocení uhelných kalů z odkališť v ostravsko-karvinském revíru. Životné prostredie, 46(5), 254–257.
  20. Ikemi, H. (2017). Geologically constrained changes to landforms caused by human activities in the 20th century: A case study from Fukuoka Prefecture, Japan. Applied Geography, 87, 115–126. https://doi.org/10.1016/j.apgeog.2017.08.001
  21. Jancewicz, K., Traczyk, A., & Migoñ, P. (2020). Landform modifications within an intramontane urban landscape due to industrial activity, Wałbrzych, SW Poland. Journal of Maps, 17 (4), 194–201. https://doi.org/10.1080/17445647.2020.1805805
  22. Jensen, J. R. (2007). Remote Sensing of the Environment. An Earth Resource Perspective. Pearson Education.
  23. Kadlečík, P., Kajzar, V., Nekvasilová, Z., Wegmüller, U., & Doležalová, H. (2015). Evaluation of the subsidence based on DInSAR and GPS measurements near Karviná, Czech Republic. Acta Universitatis Carolinae Geographica, 50(1), 51–61. https://doi.org/10.14712/23361980.2015.86
  24. Kirchner, K., & Smolová, I. (2010). Základy antropogenní geomorfologie. Univerzita Palackého v Olomouci.
  25. Kroutilík, V. (1954). Haldové pokryvy na území města Ostravy. Přírodovědecký sborník Ostravského kraje. Slezský studijní ústav.
  26. Lausch, A., & Herzog, F. (2002). Applicability of landscape metrics for the monitoring of landscape change: issues of scale, resolution and interpretability. Ecological Indicators, 2(1–2), 3–15. https://doi.org/10.1016/S1470-160X(02)00053-5
  27. Lei, M., Qi-yan, F., Lai, Z., Ping, L., & Quin-jun, M. (2009). Environmental cumulative effects of coal underground mining. Procedia Earth and Planetary Science, 1, 1280–1284. https://doi.org/10.1016/j.
  28. Luberti, G. M., & Del Monte, M. (2020). Landscapes and landforms connected with anthropogenic processes over three millennia: The Servian Walls at the Esquiline Hill (Rome, Italy). The Holocene 30(12), 1817–1832. https://doi.org/10.1177/0959683620950460
  29. Machač, J., & Langrová, P. (2003). Uhelné hornictví v ostravsko-karvinském revíru. Anagram.
  30. Mandarino, A., Faccini, F., Terrone, M., & Paliaga, G. (2021). Anthropogenic landforms and geo-hydrological hazards of the Bisagno Stream catchment (Liguria, Italy). Journal of Maps, 17(3), 122–135. https://doi.org/10.1080/17445647.2020.1866704
  31. Martinec, P., Honěk, J., Beňák, P., Cyroň, J., Hoňková, K., Machalínek, M., …, & Zamarský, V. (2006). Termination of underground coal mining and its impact on the environment. Anagram.
  32. Martinec, P., Hortvík, K., Latová, A., Maníček, J., Krůl, M., Schejbalová, B., …, & Vojvodíková, B. (2003). Atlas map vlivu útlumu hlubinné těžby černého uhlí v české části Hornoslezské pánve na povrch a životní prostředí. Akademie věd ČR, Ústav geoniky Ostrava, 109 p.
  33. Migoñ, P., & Latocha, A. (2017). Human impact and geomorphic change through time in the Sudetes, Central Europe. Quaternary International, 470, 194–206. https://doi.org/10.1016/j.quaint.2018.01.038
  34. Mikulík, O., Havrlant, M., Hrádek, M., Ides, D., Kallabová, E., Kirchner, K., …, & Zapletalová, J. (2004). Soubor map vlivu útlumu hlubinné těžby černého uhlí na krajinu a životní prostředí Ostravska. Documenta Geonica 1/2004. Akademie věd České republiky, Ústav geoniky – pobočka Brno.
  35. Mossa, J., Chen, Y., Walls, S. P., Kondolf, M., & Wu, C. (2017). Anthropogenic landforms and sediments from dredging and disposing sand along the Apalachicola River and its floodplain. Geomorphology, 294, 119–134. https://doi.org/10.1016/j.geomorph.2017.03.010
  36. Mulková, M., & Popelková, R. (2013). Displays of hard coal deep mining in aerial photos. Acta Universitatis Carolinae Geographica, 48(1), 25–39. https://doi.org/10.14712/23361980.2015.8
  37. Ninfo, A., Mozzi, P., & Abba, T. (2016). Integration of LiDAR and cropmark remote sensing for the study of fluvial and anthropogenic landforms in the Brenta–Bacchiglione alluvial plain (NE Italy). Geomorphology, 260, 64–78. https://doi.org/doi:10.1016/j.geomorph.2015.11.006
  38. Popelka, P. (2013). Nová krajina. Počátky rekultivace krajiny ostravskokarvinského revíru (do konce 60. let 20. století). Časopis Matice moravské, 132, 445–476.
  39. Popelka, P., Popelková, R., & Mulková, M. (2016). Black or Green Land? Industrialisation and Landscape Changes of the Ostrava-Karviná Mining District in the 19th and 20th Century. Ostravská univerzita, Ostrava.
  40. Popelková, R., & Mulková, M. (2016). Multitemporal aerial image analysis for the monitoring of the processes in the landscape affected by deep coal mining. European Journal of Remote Sensing, 49(1), 973–1009. https://doi.org/10.5721/EuJRS20164951
  41. Popelková, R., & Mulková, M. (2018). The mining landscape of the Ostrava-Karviná coalfield: Processes of landscape change from the 1830s to the beginning of the 21st century. Applied Geography, 90, 28–43. https://doi.org/10.1016/j.apgeog.2017.11.008
  42. Quanyuan, W., Jiewu, P., Shanzhong, Q., Yiping L., Congcong H., Tingxiang L., & Limei H. (2009). Impacts of coal mining subsidence on the surface landscape in Longkou city, Shandong Province of China. Environmental Earth Sciences, 59, 783–791. https://doi.org/10.1007/s12665-009-0074-9
  43. Raclavský, K. (2004). Environmentální problémy hornické a průmyslové krajiny. https://www.hgf.vsb.cz/546/cs/veda-a-vyzkum/vedecko-vyzkumneprojekty/?projectDetailId=30230&fromPage=/546/cs/veda-a-vyzkum/vedecko-vyzkumne-projekty/index.html.
  44. Raucoules, D., Maisons, C., Carnec, C., Le Mouelic, S., King, C., & Hosford, S. (2003). Monitoring of slow ground deformation by ERS radar interferometry on the Vauvert salt mine (France). Comparison with groundbased measurement. Remote Sensing of Environment, 88, 468–478. https://doi.org/10.1016/j.rse.2003.09.005
  45. Rzętała, M., & Jaguś, A. (2012). New lake district in Europe: origin and hydrochemical characteristics. Water and Environment Journal, 26(1), 108–112. https://doi.org/10.1111/j.1747-6593.2011.00269.x
  46. Santo, E. L., & Sánchez, L. E. (2002). GIS applied to determine environmental impact indicators made by sand mining in a floodplain in southeaster Brazil. Environmental Geology, 41(6), 628–637. https://doi.org/10.1007/s002540100441
  47. Sasaoka, T., Takamoto, H., Shimada, H., Oya, J., Hamanaka, A., & Matsui, K. (2015) Surface subsidence due to underground mining operation under weak geological condition in Indonesia. Journal of Rock Mechanics and Geotechnical Engineering, 7, 337–344. https://doi.org/10.1016/j.jrmge.2015.01.007
  48. Stalmachová, B. (2004). Iniciace přirozených ekosystémů poddolované krajiny pro proces obnovy území Karvinska. https://www.isvavai.cz/cep?ss=detail&h=SE%2F640%2F1%2F01
  49. Szabó, J., Dávid L., & Lóczy, D. (2010). Anthropogenic geomorphology: a guide to man-made landforms. Springer. https://doi.org/10.1007/978-90-481-3058-0
  50. Sklenička, P., & Lhota, T. (2002). Landscape heterogenity – a quantitative criterion for landscape reconstruction. Landscape and Urban Planning, 58(2–4), 147–156. https://doi.org/10.1016/S0169-2046(01)00217-1
  51. Szypuła, B. (2013). Spatial distribution and statistic analysis of the anthropogenic line forms on the different basic fields. Environmental & Socio-economic Studies, 1(2), 1–14. https://doi.org/10.1515/environ-2015-0007
  52. Szypuła, D. (2020). Digital adaptation of the Geomorphological Map of Upper Silesian Industrial Region, Poland (1:50,000) – old map new possibilities. Journal of Maps, 16(2), 614–624. https://doi.org/10.1080/17445647.2020.1800528
  53. Ursu, A., Chelaru, D. A., Mihai, F. C., & Iordache, I. (2011). Anthropogenic Landform Modeling Using GIS Techniques Case Study: Vrancea Region. Geographia Technica, 13(1), 91–100. https://doi.org/10.5281/zenodo.19144
  54. Waga, J. M., Szypula, B., Sendobry, K., & Fajer, M. (2022). Anthropogenic Landforms Derived from LiDAR Data in the Woodlands near Kotlarnia (Koźle Basin, Poland). Sensors, 22(21), 8328–8343. https://doi.org/10.3390/s22218328
  55. Zástěrová, P., Marschalko, M., Durďák, J., & Niemec, D. (2015). Nature conditions of Waste Dumps in the Czech Part of the Upper Silesian Coal Basin. Procedia Earth and Planetary Science, 15, 395–400. https://doi.org/10.1016/j.proeps.2015.08.013
DOI: https://doi.org/10.2478/mgr-2024-0017 | Journal eISSN: 2199-6202 | Journal ISSN: 1210-8812
Language: English
Page range: 201 - 213
Submitted on: Apr 18, 2023
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Accepted on: Jun 19, 2024
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Published on: Oct 6, 2024
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2024 Monika Mulková, Renata Popelková, published by Czech Academy of Sciences, Institute of Geonics
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.