PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
Tytuł artykułu

A long-term influence of anthropogenic alkalization on molluscs biodiversity in an area affected by cement industry : Świętokrzyskie Mountains, South-Central Poland

Treść / Zawartość
Identyfikatory
Warianty tytułu
PL
Długotrwały wpływ antropogemicznej alkalizacji na bioróżnorodność mięczaków w obszarze oddziaływania przemysłu cementowo-wapienniczego : południowo-centralna Polska
Języki publikacji
EN
Abstrakty
EN
The presented paper reports data from malacological and pedological studies carried out at sites representing diverse biotopes (beech wood, coniferous forest, and meadow) located 2 km away from the Dyckerhoff Cement Plant in Sitkówka-Nowiny in 1992 and in 2008–2009. The studies aimed to determine physicochemical properties of soils exposed to cement and limestone dust emission and to identify composition of snail communities inhabiting three different biotopes in relation to physicochemical properties of soils, and to grasp the dynamics of the alkalization-dependent changes in physicochemical properties of soils and their impact on the composition and ecological structure of malacofauna.
PL
Prezentowana praca przedstawia wyniki wieloletnich badań malakologicznych i gleboznawczych, które zostały przeprowadzone w zróżnicowanych biotopach (las, bór, łąka) znajdujących się do 2 km od emitora pyłów, Cementowni Dyckerhoff Sitkówka-Nowiny w latach: 1992–1993 oraz 2008–2009. Celem pracy było przedstawienie zmian właściwości fizyczno-chemicznych gleb, przekształconych pod wpływem alkalizacji, które zadecydowały o składzie gatunkowym malakofauny bytującej w 3 różnych biotopach.
Rocznik
Strony
49--61
Opis fizyczny
Bibliogr. 50 poz., tab., wykr.
Twórcy
  • Jan Kochanowski University, Poland Faculty of Environmental Protection and Management, Institute of Biology, Department of Zoology
autor
  • Jan Kochanowski University, Poland Faculty of Environmental Protection and Management, Department of Soil and Cultural Landscape Conservation
Bibliografia
  • [1] Abele, S.E. (2010). Gastropod diversity in the boreal mixedwood forest of northern Alberta – variation among forest types and response to partial harvesting, M.S. Thesis. University of Alberta, Edmonton, Alberta 2010.
  • [2] Ade-Ademilua, O.E. & Obalola, D.A. (2008). The effect of cement dust pollution on Celosia Argentea (Lagos Spinach) Plant, Journal of Environmental Science and Technology, 1 (2), pp. 47–55.
  • [3] Addo, M., Darko, E., Gordon, C. & Nyarko, B.J.B. (2013). Contamination of soils and loss of productivity of (Vigna unguiculata L.) caused by cement dust pollution. Research Journal of Chemistry and Environment, 3,1, pp. 272–282.
  • [4] Addison, J.A. &. Barber, K.N. (1997). Response of soil invertebrates to clearcutting and partial cutting in a boreal mixedwood forest in Northern Ontario, Natural Resources Canada, Canadian Forest Service, Great Lakes Forestry Centre. Information Report GLC-X-1, Canada 1997.
  • [5] Alexandrowicz, S.W. (1987). Malakofauna late Holocene Vistulian and central part of the Malopolska Upland, Prace Naukowe Uniwersytetu Śląskiego, 712, Katowice 1987. (in Polish)
  • [6] Alexandrowicz, S.W. & Alexandrowicz, W.P. (2011). Malacological analysis. Test methods and interpretation, Rozprawy Wydziału Przyrodniczego, Kraków, t. 3. (in Polish)
  • [7] Baba, K. & Podani, J. (1992). A multivariate analysis of snail distribution in the Bükk Mountains, Hungary, Proceedings of the Ninth International Malacofauna Congress, pp. 35–90.
  • [8] Baba, K., Sárkány & Kiss, A. (2008). Terrestrial snail fauna in the Somes/Szamos river Valley from the spring region to the river Tisza, Tiscia Monograph, pp. 279–296.
  • [9] Barga-Więcławska, J. (1997). Succession snails in landfills Świętokrzyskie region, Wyższa Szkoła Pedagogiczna, Kielce 1997. (in Polish)
  • [10] Barga-Więcławska, J. (2005). Snails sensitive biomarkers environmental acidification in the Łysogóry, Biblioteka Monitoringu Środowiska, Poznań, pp. 335–346. (in Polish)
  • [11] Barga-Więcławska, J. (2009). Southern strip of Kampinos Park moors malakofauna as an indicator of ecological conditions in its habitats, Kampinoski Park Narodowy, Izabelin, pp. 387–396. (in Polish)
  • [12] Beeby, A. & Richmond, L. (2004). Do the soft tissues of helix aspersa serve as a quantitative sentinel of predicted free lead concentrations in solis? Applied Soli Ecology, 22, 2, pp. 159–165.
  • [13] Brożek, S. & Zwydak, M. (2003). Polish Atlas forest soils. Centrum Informacyjne Lasów Państwowych 2003. (in Polish)
  • [14] Chétail, M. & Krampitz, G. (1982). Calcium and skeletal structures in mollusks: concluding remarks. Proceedings of the 7th. International Malacofauna Congress Malacologia, 22, (1–2), pp. 337–339.
  • [15] Degórski, M. (1998). Physico-chemical differentiation of the soil properties of pine and Mied pine forest habitats along a transect of climate and a “Silesian” transect. Dokumentacja Geograficzna, 13, pp. 41–53. (in Polish)
  • [16] Derome, J., Kukkola, M. & Malkonen, E. (1986). Forest liming on mineral soils, National Swedish Environmental Protection Board. Report 3084, Solna 1986.
  • [17] Fourniaé, J. & Chétail, M. (1982). Accumulation calcique au niveau cellulaire chez les Mollusques, Malacologia, 22, pp. 265–284.
  • [18] Götmark, F., von Proschwitz, T. & Franc, N. (2008). Are small sedentary species affected by habitat fragmentation? Local vs. landscape factors predicting species richness and composition of land mollusks in Swedish conservation forests, Journal of Biogeography, 35,(6), pp. 1062–1076.
  • [19] Gosteli, M. (1996). Diversities of snail fauna and ecological relationships between snail communities and vegetation in dry habitats of the northern Swiss Jura (Gastropoda, Prosobranchia, Pulmonata) Malakologische Abhandlungen Staatliches Museum für Tierkunde Dresden, 18, (10), pp.102–128.
  • [20] Hawkins, J.W., Lankester, M.W., Lautenschlager, R.A. & Bell, F.W. (1997). Effects of alternative conifer release treatments on terrestrial gastropods in northwestern Ontario, Forestry Chronicle, 73, pp. 91–98.
  • [21] Horsak, M. & Hajek, M. (2003). Composition and species richness of molluscan communities in relation to vegetation and water chemistry in the western Carpathian spring fens: the poovrich gradient, Journal of Molluscan studies, 69, pp. 349–357.
  • [22] Horsak, M., Hajek, M., Tichy, L. & Juričova, L. (2007). Plant indicator values as a tool for land mollusc autecology assessment, Acta Oecologica, 3, pp. 161–171.
  • [23] Hylander, K. (2011). The response of land snails assemblages below aspens to forest fire and clear-cutting in Fennoscandian boreal forests, Forest Ecology and Management, 261, pp. 1811–1819.
  • [24] Iqbal, M.Z. & Shafig, M. (2001). Periodical effect of cement dust pollution on the growth of some plant species, Turkish Journal of Botany, pp. 19–24.
  • [25] Jaworska, H., Dąbrowska-Naskręt, H. & Sawilska, K. (2010). The influence of cement dust on some properties of soils and the state of pine stands from the “Lafarge” factory in Bielawy, Proceedings of ECopole, 4(1), pp 141–146. (in Polish)
  • [26] Juričkova, L., Horsak, M., Cameron R., Hylander, M., Mikovcova, A., Hlavac, J.C. & Rohovec, J. (2008). Land snail distribution patterns within a site: The role of different calcium sources, European Journal of Soil Biology, 44, pp. 172–179.
  • [27] Kappes, H. (2005). Influence of coarse woody debris on the gastropod community of a managed calcareous beech forest in Western Europe, Journal of Molluscan Studies, 71(2), pp. 85–91.
  • [28] Kappes, H. (2006). Relations between forest management and slug assemblages (Gastropoda) of deciduous regrowth forests, Forest Ecology and Management, 237, pp. 450–457.
  • [29] Kappes, H., Toop, W., Zach, P. & Kufan, J. (2006). Coarse woody debris, soil properties and snails (Molusca: Gastropoda) in European primeval forests of different environmental conditions, European Journal of Soil Biology, 42(3), pp. 139–146.
  • [30] Kowalkowski, A. & Świercz, A. (1993). Parent rocks lithogenic and autogenic soils Malik Hill in the Holy Cross Mountains, Rocznik Świętokrzyski, 14, pp. 91–106. (in Polish)
  • [31] Kozłowski, R. (2013). The functioning of the Polish geoecosystems selected varied in terms of human pressure on the example of low mountains and foothills, Landform Analysis, 23, 2013. (in Polish)
  • [32] Kumari, A. & Pandey, D.D. (2011). Response of maize to cement dust pollution, World Journal of Science and Technology, 1(5), pp. 150–155.
  • [33] Ložek, V. (1964). Quartärmollusken der Tschechoslowakei – Rozpravy Ústředního ústavu geologického, Praha, pp. 31–374, Praga 1964. (in Czech)
  • [34] Łubek, A. (2010). Lichenes [In:] A Monograph of the Chęcińsko-Kielecki Landscape Park, UJK, Kielce, pp. 191–197. (in Polish)
  • [35] Mandre, M. & Lukjanova, A. (2011). Biochemical and structural characteristics of scots pine in alkaline environment, Estonian Journal of Ecology, 60,(4), pp. 264–283.
  • [36] Martin, K. & Sommer, M. (2004). Relationships between land snail assemblage patterns and soil properties in temperate-humid forest ecosystems, Journal of Biogeography, 3 (4), pp. 531–542.
  • [37] Niemelä, J. (1997). Invertebrates and boreal forest management, Conservation Biology 11, pp. 601–610.
  • [38] Oekland, F. (1930). Quantitative Untersuchungen der landschneckenfauna, Norvegens. (in German)
  • [39] Zeitschrift für Morphologie und Ökologie der Tiere, Berlin, 16 (3–4), pp. 748–804.
  • [40] Ondina, P., Hermida, J., Outeri, A. & Mato, S. (2004). Relationships between terrestial gastropod distribution and soil properties in Galicia (NW Spain), Applied Soil Ecology, 26, (1), pp. 1–9.
  • [41] Ostrowska, A., Gawliński, S. & Szczubiałka, Z. (1991). ). Methods of analysis and assessment of soil properties and plant, first ed., Institute of Environmental Protection pp. 333. (in Polish)
  • [42] Piechocki, A. (1981). Modern and sub-fossil snails (Mollusca) Holly Cross Mountains, Acta Universitatis Lodziensis, 177. (in Polish)
  • [43] Riedel, A. (1988). Gastropoda terrestria. Catologus faunae Poloniae, 36, 1, pp. 3–316. (in Polish)
  • [44] Simpson, J.E., Slade, E., Riutta T. & Taylor, M.E. (2012). Factors affecting soil fauna feeding activity in a fragmented lowland temperature deciduous woodland, PLoS ONE 7(1), e29616. doi.10.1371/journal.pone.0029616.
  • [45] Świercz, A. (1995). Characteristics rendzinas soils and the Tilio-Carpinetum in Monitoring Station Malik Hill, Biblioteka Monitoringu Środowiska, pp. 47–64. (in Polish)
  • [46] Świercz, A. (1997). The effect of alkalic emission on soils and pine forest in “Białe Zagłębie”, PAN-Oddział w Krakowie, KTN, Kielce 1997. (in Polish)
  • [47] Świercz, A. (2005). Analysis of soil processes and vegetation transformations in the alkalized forestial habitats in the Świetokrzyski Region, PAN, Komitet „Człowiek i Środowisko”, Zeszyty Naukowe, 39, Warszawa–Kielce 2005.
  • [48] Świercz, A. (2006). Suitability of pine bark to evaluate pollution caused by cement-lime dust, Journal of Forest Science, 52, pp. 93–98.
  • [49] Świercz, A. (2010). Soils cover and use [In:] A Monograph of the Chęcińsko-Kielecki Landscape Park, UJK, Kielce, pp. 93–117. (in Polish)
  • [50] Tervahattu, H., Lodenius, M. & Tulisalo, E. (2001). Effects of the reduction of cement plant pollution on foliar and bark chemical composition of Scots pine, Boreal Environment Research, 6, pp. 251–259.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-cf470573-3aa3-454a-83d1-ef4f14d2d0f9
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.