PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
Tytuł artykułu

Scale of resistance of buildings to mining influences - applicability assesment through a case study

Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
This paper presents a case study of the impact of continuous deformations and rock mass tremors on a single-family building, typical of Upper Silesia. In the areas subjected to the influence of ground deformation, a point method for assessing the resistance of buildings to these influences has been developed by the Central Mining Institute. As part of this method, the geometric parameters, structure, materials and technical condition of the facility, as well as the ground on which the building is located, are taken into account. A case study considers a building being simultaneously subjected to continuous deformations and mining tremors. The object’s resistance is assessed according to the point method and its technical condition is assessed after revealing the influence of ground deformation. This is used to assess the validity of the point method for the building. On the basis of the analyses of the state of deformation and the impact of tremors, conclusions are drawn regarding the need to make changes to the scale used to assess the category of resistance of buildings to the effects of continuous deformation.
Rocznik
Strony
51--61
Opis fizyczny
Bibliogr. 31 poz.
Twórcy
  • MSc Eng.; The Silesian University of Technology, Faculty of Civil Engineering, ul. Akademicka 5, 44-100 Gliwice, Poland
  • Prof.; The Silesian University of Technology, Faculty of Mining, Safety Engineering and Industrial Automation, ul. Akademicka 2, 44-100 Gliwice, Poland
  • Prof.; The Silesian University of Technology, Faculty of Civil Engineering, ul. Akademicka 5, 44-100 Gliwice, Poland
Bibliografia
  • [1] Bian Z.F., Miao X.X., Lei S.G. (2012). The challenges of reusing mining and mineral-process in wastes. Science, 337(6095), 702-703.
  • [2] Chudek M. (2010). Mechanika górotworu z podstawami zarządzania ochroną środowiska w obszarach górniczych i pogórniczych (Rock mass mechanics with the basics of environmental protection management in mining and post-mining areas). Wydawnictwo Politechniki Śląskiej.
  • [3] Deck O., Al Heib M., Homand F. (2003). Taking the soil-structure interaction into account in assessing the loading of a structure in a mining subsidence area. Engineering Structures. 25(4), 435-448. Retrieved from https://doi.org/10.1016/S0141-0296(02)00184-0 .
  • [4] Eugênio T.M.C., Fagundes J.F., Viana Q.S., Vilela A.P., Mendes R.F. (2021). Study on the feasibility of using iron ore tailing (iot) on technological properties of concrete roof tiles. Construction and Building Materials, 279, 1-19. Retrieved from
  • https://doi.org/10.1016Zj.conbuildmat.2021.122484.
  • [5] Florkowska L. (2013). Example building damage caused by mining exploitation in disturbed rock mass. Studia Geotechnica et Mechanica, 35(2), 19-38.
  • [6] Instrukcja GIG 12/2000. (2000). Zasady oceny możliwości prowadzenia podziemnej eksploatacji górniczej z uwagi na ochronę obiektów budowlanych (Principles of assessing the possibility of conducting underground mining due to the protection of buildings). Wydawnictwo Głównego Instytutu Górnictwa.
  • [7] Instrukcja ITB nr 416/2006. (2006). Projektowanie budynków na terenach górniczych (Designing buildings in mining areas). Wydawnictwo ITB.
  • [8] Kapusta Ł., Szojda L. (2021). The role of expansion joints for traditional buildings affected by the curvature of the mining area. Engineering Failure Analysis, 128, 1-25. Retrieved from https://doi.org/10.1016/j.engfailanal.2021.105598.
  • [9] Karâcsonyi B. (1979). Guiding principles for the preparation of hydrological maps for building. Bulletin of the International Association of Engineering Geology, 19, 237-241. Retrieved from https://doi.org/10.1007/BF02600481.
  • [10] Knothe S. (1984). Prognozowanie wpływów eksploatacji górniczej (Forecasting the influences of mining exploitation). Wydawnictwo Naukowe “Śląsk”.
  • [11] Kratzsch H. (1983). Mining Subsidence Engineering. Springer-Verlag.
  • [12] Kwiatek J. (2002). Obiekty budowlane na terenach górniczych (Building structures in mining areas). Wydawnictwo Głównego Instytutu Górnictwa.
  • [13] Kwiatek J. et al. (1997). Ochrona obiektów budowlanych na terenach górniczych (Protection of buildings in mining areas). Wydawnictwo Głównego Instytutu Górnictwa.
  • [14] Marescotti P., Azzali E., Servida D. (2010). Mineralogical and geochemical spatial analyses of a waste-rock dump at the Libiola Fe-Cu sulphide mine (Eastern Liguria, Italy). Environmental Earth Sciences, 61, 187-199. Retrieved from https://doi.org/10.1007/s12665-009-0335-7.
  • [15] Mutke G. i inni (2018). Zasady stosowania Górniczej Skali Intensywności Sejsmicznej GSIS-2017 do prognozy i oceny skutków oddziaływania wstrząsów indukowanych eksploatacją na obiekty budowlane oraz klasyfikacji ich odporności dynamicznej (Principles of applying the Mining Seismic Intensity Scale GSIS-2017 to the forecast and assessment of the effects of shocks induced by exploitation on building structures and the classification of their dynamic resistance). Prace Naukowe GIG, Górnictwo i Środowisko, 64.
  • [16] Orwat J. (2020). Mining exploitation forecasted effects caused by a hard coal extraction from a thick seam. Journal of Physics: Conference Series, 1426(1), 1-8.
  • [17] Orwat J., Gromysz K. (2021). Occurrence consequences of mining terrain surface discontinuous linear deformations in a residential building. Journal of Physics: Conference Series, 1781 (1), 1-11.
  • [18] Quanyuan W., Jiewu P., Shanzhong Q., Yiping L., Congcong H., Tingxiang L., Lime H. (2009). Impacts of coal mining subsidence on the surface landscape in Longkou City, Shandong Province of China. Environmental Earth Sciences, 59, 783-791.
  • [19] Rozporządzenie Ministra Środowiska z dnia 8 grudnia 2017 r. w sprawie planów ruchów zakładów górniczych (Regulation of the Minister of the Environment of December 8, 2017 on mining plant operations plans). Dziennik Ustaw z 2017 poz. 2293.
  • [20] Saeidi A., Deck O., Verdel T. (2009). Development of building vulnerability functions in subsidence regions from empirical methods. Engineering Structures, 31 (10), 2275-2286. Retrieved from https://doi.org/10.1016Zj.engstruct.2009.04.010.
  • [21] Słowik L. (2015). Wpływ nachylenia terenu spowodowanego podziemną eksploatacją górniczą na wychylenie obiektów budowlanych (The influence of the slope of the terrain caused by underground mining on the inclination of buildings) (PhD thesis, Building Research Institute), Poland, Warszawa.
  • [22] Stockmann M., Hirsch D., Lippmann-Pipke J. (2013). Geochemical study of different-aged mining dump materials in the Freiberg mining district, Germany. Environmental Earth Sciences, 68, 1153-1168. Retrieved from https://doi.org/10.1007/s12665-012- 1817-6 .
  • [23] Strzałkowski P. (2019). Some remarks on impact of mining based on an example of building deformation and damage caused by mining in conditions of Upper Silesian Coal Basin. Pure and Applied Geophysics, 176(6), 2595-2605.
  • [24] Strzałkowski P. (2015). Zarys ochrony terenów górniczych (Outline of the protection of mining areas). Wydawnictwo Politechniki Śląskiej.
  • [25] Szojda L., Kapusta Ł. (2021). Numerical analysis of the influence of mining ground deformation on the structure of a masonry residential building. Archives of Civil Engineering, 67(3), 243-257.
  • [26] Szojda L., Wandzik G. (2019). Discontinuous terrain deformation - forecasting and consequences of their occurrence for building structures. 29th International Conference on Structural Failures. ICSF 2019, 1-12. Retrieved from https://doi.org/10.1051/matecconf/201928403010.
  • [27] Ścigała R. (2008). Komputerowe wspomaganie prognozowania deformacji górotworu i powierzchni wywołanych podziemną eksploatacją górniczą (Computer aided forecasting of rock mass and surface deformations caused by underground mining). Wydawnictwo Politechniki Śląskiej.
  • [28] Ustawa z dnia 9 czerwca 2011 r. Prawo geologiczne i górnicze (The Act of June 9, 2011 Geological and Mining Law). Dziennik Ustaw z 2011 nr 163 poz. 981 z późn. zm.
  • [29] Vandana M., John S.E., Maya K. (2020). Environmental impact of quarrying of building stones and laterite blocks: a comparative study of two river basins in Southern Western Ghats, India. Environmental Earth Sciences, 79 (14), 1-15. Retrieved from https://doi.org/10.1007/s12665-020- 09104-1.
  • [30] Whittaker B.N., Reddish, D.J. (1989). Subsidence Occurrence, Prediction and Control. Developments in Geotechnical Engineering. Elsevier.
  • [31] Zhu X., Guo G., Zha J., Chen T., Fang Q., Yang X. (2016). Surface dynamic subsidence prediction model of solid backfill mining. Environmental Earth Sciences, 75 (12), 1-9.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-9fd07dab-0ee9-4b81-8ffc-26eabc7d1fde
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.