Soil & Water Res., 2011, 6(2):55-60 | DOI: 10.17221/55/2010-SWR
Urban soil contamination by potentially risk elementsOriginal Paper
- Department of Soil Science and Soil Protection, Faculty of Agrobiology, Food and Natural Resources, Czech University of Life Sciences, Prague, Czech Republic
A high displacement of inhabitants into large towns, presence of industry, and constantly growing traffic have a high impact on the environment and considerable exposure of human health to environmental risks. Therefore, putting emphasis on the best environmental quality is necessary. In this work, the pollution level of urban parks was studied, the influence of the type of pollution source was analysed, and the effect of shading by trees was studied. The analyses were carried out on soil samples taken from thirteen parks in two towns of the Czech Republic, in Prague, a town considered to be mainly residential, and Ostrava, a predominantly industrial town (steel working plant). The sampling points were selected to cover the whole towns equally. In each park, two sampling points were chosen, the first one under trees, the second one in the open area. The sampling was done in the summer of 2006 in the depths of 0-10 and 10-20 cm. In addition to basic soil analyses performed by routine methods, potentially risk elements (Zn, Cd, Pb, Cu, and As) in cold 2M HNO3 extract were determined. Differences between the sampling points shaded and not shaded by trees were evidenced, with higher concentrations of risk elements under trees. The element contents differed between both towns as well. Significantly higher values of lead (mean 86 mg/kg) and copper (mean 28 mg/kg) were found in Prague, as a traffic consequence, compared to Ostrava, where lead reached the mean of 41 mg/kg and copper of 18 mg/kg. Maximum permissible limits were exceeded in Ostrava parks especially with Cd, in Prague with Pb.
Keywords: contamination; risk elements; soil; urban park
Published: June 30, 2011 Show citation
References
- Alov N.V., Bulgachev R.V., Oskolok K.V. (2001): Features of technogenic metal pollution of roadside soil according to X-ray fluorescence monitoring data. Journal of Soils and Sediments, 1: 164-167.
Go to original source...
- Augusto L., Ranger J., Binkley D., Rothe A. (2002): Impact of several common tree species of European temperate forests on soil fertility. Annuals of Forest Science, 59: 233-253.
Go to original source...
- Borůvka L., Drábek O. (2004): Heavy metal distribution between fractions of humic substances in heavily polluted soils. Plant, Soil and Environmental, 50: 339-345.
Go to original source...
- Bretzel F., Calderisi M. (2006): Metal contamination in urban soils of coastal Tuscany (Italy). Environmental Monitoring and Assessment, 118: 319-335.
Go to original source...
Go to PubMed...
- Charlesworth S., Everett M., McCarthy R., Ordonez A., Miguel E. (2003): A comparative study of heavy metal concentration and distribution in deposited street dusts in a large and small urban area: Birmingham and Coventry, West Midlands, UK. Environment International, 29: 563-573.
Go to original source...
Go to PubMed...
- Chronopoulos J., Haidouti C., Chronopoulou-Sereli A., Massas I. (1997): Variations in plant and soil lead and cadmium content in urban parks in Athens, Greece. The Science of the Total Environment, 196: 91-98.
Go to original source...
- Gupta S.K., Vollmer M.K., Krebs R. (1996): The importance of mobile, mobilisable and pseudo total heavy metal fractions in soil for three-level risk assessment and risk management. The Science of the Total Environment, 178: 11-20.
Go to original source...
- Herawati N., Rivai I.F., Koyama H., Suzuki S., Lee Y. (1998): Copper in rice and in soils according to soil type in Japan, Indonesia, and China: A baseline study. Bulletin of Environmental Contamination and Toxicology, 60: 266-272.
Go to original source...
Go to PubMed...
- Imperato M., Adamo P., Naimo D., Arienzo M., Stanzione D., Violante P. (2003): Spatial distribution of heavy metals in urban soils of Naples city (Italy). Environmental Pollution, 124: 247-256.
Go to original source...
Go to PubMed...
- IPCS (1992): Cadmium. Environmental Health Criteria 134. World Health Organization, Geneva.
- IPCS (1995): Lead. Environmental Health Criteria 85. World Health Organization, Geneva.
- Jonsson A., Lindström M., Bergbäck B. (2002): Phasing out cadmium and lead - emissions and sediment loads in an urban area. The Science of the Total Environment, 292: 91-100.
Go to original source...
Go to PubMed...
- Kabata-Pendias A., Pendias H. (1992): Trace elements in soils and plants. 2nd Ed. CRC Press, London, 365.
- Kim N., Fergusson J. (1993): Concentrations and sources of cadmium, copper, lead and zinc in house dust in Christchurch, New Zealand. The Science of the Total Environment, 138: 1-21.
Go to original source...
Go to PubMed...
- Komarnicki G.J.K. (2005): Lead and cadmium in indoor air and the urban environment. Environmental Pollution, 136: 47-61.
Go to original source...
Go to PubMed...
- Li X., Poon Ch., Liu P.S. (2001): Heavy metal contamination of urban soils and street dusts in Hong Kong. Applied Geochemistry, 16: 1361-1368.
Go to original source...
- Manta D.S., Angelone M., Bellanca A., Neri R., Sprovieri M. (2002): Heavy metal in urban soils: a case study from the city of Palermo (Sicily), Italy. The Science of the Total Environment, 300: 229-243.
Go to original source...
Go to PubMed...
- Matýsek D., Ráclavská H., Ráclavský K. (2008): Correlation between magnetic susceptibility and heavy metal concentrations in forest soils of the eastern Czech Republic. Journal of Environmental and Engineering Geophysics, 13: 13-26.
Go to original source...
- Němeček J., Podlešáková E., Pastuszková M. (1995): Background contents of the potentially hazardous elements in soils of the Czech Republic (contents in the 2M HNO3 extract). Rostlinná Výroba, 41: 25-29. (in Czech)
- Němeček J., Macků J., Vokoun J., Vavříček D., Novák P. (2001): Taxonomic Classification System of Soils of the Czech Republic. Czech University of Life Sciences, Prague. (in Czech)
- Podlešáková E., Němeček J., Sirový V., Lhotský J., Macurová H., Ivanek O., Bumerl M., Hudcová O., Voplakal K., Hálová G., Blahovec F. (1992): Soil, Water and Plant Analysis. [Research Project No. 2783 Minimalisation of Risk Elements Content in System Soil-Water-Plant-Production.] Research Institute for Soil Improvement, Prague. (in Czech)
- Pospíšil F. (1964): Fractionation of humus substances of several soil types in Czechoslovakia. Rostlinná Výroba, 10: 567-580. (in Czech)
- Pospíšil F. (1981): Group- and fractional composition of the humus of different soils. In: Transactions 5th Int. Soil Science Conf. Vol. I. Research Institute for Soil Improvement, Prague, 135-138.
- Smrček L., Vrubel J., Pavelka J. (1993): Heavy metal contents in agricultural soils in Ostrava. Úroda, 5: 197-198.
- Sucharová J., Suchara I. (1998): Atmospheric deposition levels of chosen elements in the Czech Republic determinates in the framework of the International Bryomonitoring Program 1995. The Science of the Total Environment, 223: 37-52.
Go to original source...
Go to PubMed...
- You S.J., Yin Y., Allen H.E. (1999): Partitioning of organic matter in soils: effects of pH and water/soil ratio. The Science of the Total Environment, 227: 155-160.
Go to original source...
- Zbíral J., Tieffová P., Fritch K., Srnková J., Urbánková E., Rychlý M. (2003): Soil Analysis II. Central Institute for Supervising and Testing in Agriculture, Brno. (in Czech)
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