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Selected monitoring properties of agricultural soil from the Imielin experimental site

Treść / Zawartość
Identyfikatory
Warianty tytułu
PL
Wybrane parametry monitoringowe gleb rolnych obiektu doświadczalnego Imielin
Języki publikacji
EN
Abstrakty
EN
The effects of two types of agricultural practice: (1) Variable Rate Application (VRA) and (2) uniform (UNI) N dose on selected chemical properties of soil were compared in a field fertilization experiment. Nitrogen, in doses 60 or 80 kgN.ha-1 (UNI), and 55-105 kgN.ha-1 (VRA) was applied to soil farmed with winter wheat (Triticum aestivum L.). The research was conducted in the 2012/2013 growing season in Poland on 22 ha of production fields located in the Imielin countryside (central Poland). The soil samples were taken from three depths: 0.0-0.3 m, 0.3-0.6 m, and 0.6-0.9 m, and the pH, HAC, TEB, CEC, and BS were determined. The application of the nitrogen fertilizer in the two types of agricultural practice - Variable Rate Application (VRA) and uniform (UNI) N dose modified the basic physical and chemical properties of soil. The highest values of pH and hydrolytic acidity were observed at the soil depth of 0.6-0.9 m after the first rate of nitrogen fertilizer was applied. Cation exchange capacity of soils collected after uniform nitrogen rates were characterized by values decreasing with the increasing depth of the soil profile.
PL
Wpływ dwóch rodzajów nawożenia (1) zmienną (VRA) i (2) stałą dawką azotu (UNI) na wybrane właściwości chemiczne gleb została określona w oparciu o doświadczenie polowe. Dawki azotu ilościach 60 i 80 kgN.ha-1 (UNI) i 55-105 kgN.ha-1 (VRA) były dodawane do gleby na której uprawiano pszenicę ozimą (Triticum aestivum L.). Badania przeprowadzono w sezonie wegetacyjnym 2012/2013 na 22 ha polu uprawnym zlokalizowanym w miejscowości Imielin (centralna Polska). Próbki gleb pobrano z trzech głębokości: 0,0-0,3 m, 0,3-0,6 m i 0,6-0,9 m i oznaczono w nich: ph, EC, Hh, S, T, V. Aplikacja nawozów azotowych w zmiennej (VRA) i stałej dawce (UNI) azotu modyfikowała podstawowe fizyko-chemiczne właściwości gleby. Najwyższymi wartościami pH i kwasowości hydrolitycznej charakteryzowała się gleba pochodząca z głębokości pomiarowej 0,6-0,9 m pobrana po pierwszej dawce wysiewu nawozów. Kationowa pojemność gleb pochodzących z poboru po drugiej dawce nawożenia stałą dawką azotu charakteryzowała się wzrostem swej wartości w miarę zwiększania się głębokości pomiarowej.
Rocznik
Strony
105--115
Opis fizyczny
Bibliogr. 40 poz., rys., tab.
Twórcy
  • Wydział Budownictwa i Inżynierii Środowiska SGGW, Katedra Kształtowania Środowiska, 02-787 Warszawa, ul. Nowoursynowska 159, Poland
autor
  • Wydział Budownictwa i Inżynierii Środowiska SGGW, Katedra Geoinżynierii, 02-787 Warszawa, ul. Nowoursynowska 159, Poland
autor
  • Wydział Budownictwa i Inżynierii Środowiska SGGW, Katedra Geoinżynierii, 02-787 Warszawa, ul. Nowoursynowska 159, Poland
autor
  • Wydział Budownictwa i Inżynierii Środowiska SGGW, Katedra Geoinżynierii, 02-787 Warszawa, ul. Nowoursynowska 159, Poland
autor
  • Wydział Budownictwa i Inżynierii Środowiska SGGW, Katedra Geoinżynierii, 02-787 Warszawa, ul. Nowoursynowska 159, Poland
Bibliografia
  • Andersson, S., Nilsson, I. and Saetre, P. (2000). Leaching of dissolved organic carbon (DOC) and dissolved organic nitrogen (DON) in mor humus as affected by temperature and pH. Soil Biology and Biochemistry, 32, 1-10.
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  • Bednarek, W., Dresler, S., Tkaczyk, P. and Hanaka, A. (2012). Influence of liquid manure and NPK on selected sorption properties of soil. Journal of Elementology, 17 (4), 547-557.
  • Bęś, A. and Baciak, M. (2015). The effect of sulfur dioxide on selected deciduous forest trees. Scientific Review – Engineering and Environmental Sciences, 68, 155-166.
  • Cambardella, C.A. Moorman, T.B. Parkin, T.B. Karlen, D.L. Novak, J.M. Turco, R.F. and Konopka, A.E. (1994). Field-Scale Variability of Soil Properties in Central Iowa Soils. Soil Science Society of America Journal’s, 58 (5), 1501-1511.
  • Chagnon, M., Pare’, D., He’Bert, C. and Camire, C. (2001). Effects of experimental liming on collembolan communities and soil microbial biomass in a southern Quebec sugar maple (Acer saccharum Marsh.) stand. Applied Soil Ecology, 17, 81-90.
  • Cleland, E.E. and Harpole, W.S. (2010). Nitrogen enrichment and plant communities. Annals of the New York Academy of Sciences, 1195, 46-61.
  • Enujeke, E.C., Ojeifo, I.M. and Nnaji, G.U. (2013). Residual effects of organic manure and inorganic fertilizer on maize grain weight and some soil properties in Asaba Area of Delta State. International Journal of Advanced Biological and Biomedical Research, 3 (3), 433-442.
  • Ersahin, S., Gunal, H., Kutlu, T., Yetgin, B. and Coban, S. (2006). Estimating specific surface area and cation exchange capacity in soil using fractal dimension of particle-size distribution. Geoderma, 136, 588-597.
  • Flis, S.E., Glenn, A.R. and Dilworth, M.J. (1993). The interaction between aluminium and root nodule bacteria. Soil Biology and Biochemistry, 25, 403-417.
  • Geisseler, D. and Scow, K.M. (2014). Long-term effects of mineral fertilizers on soil microorganisms – A review. Soil Biology and Biochemistry, 75, 54-63.
  • Gondek, K. and Filipek-Mazur, B. (2005). The effects of mineral treatment and the amendments by organic and organomineral fertilizers on the crop yield, plant nutrient status and soil properties. Plant, Soil and Environment, 51 (1), 34-45.
  • Grabowska, K., Kuchar, L. and Dymerska, A. (2014). Prediction of yellow lupin yield (Lupinus luteus L.) for northern Poland using weather-crop model. Annals of Warsaw University of Life Sciences – SGGW Land Reclamation, 46 (3), 233-245.
  • Hartmann, A., Gräsle, W. and Horn, R. (1998). Cation exchange processes in structured soils at various hydraulic properties. Soil and Tillage Research, 47, 67-72.
  • Jasiewicz, C., Antonkiewicz, J., Mazur, Z., Mazur, T. and Krajewski, W. (2007). Agrochemical Properties of soils fertilized with sewage sludge from sewage treatment plant at Olecko. Ecological Chemistry and Engineering, 14, 5-6.
  • Klute, A. (1996). Methods of soil analysis. Agronomy Monograph 9. Madison: American Society of Agronomy.
  • Liu, X.H. and Zhang, X.C. (2012). Effect of biochar on pH of alkaline soils in the loess plateau: results from incubation experiments. International Journal of Agricultural and Biological Engineering, 14, 745-750.
  • Matson, P.A., Parton, W.J., Power, A.G. and Swift, M.J. (1997). Agricultural Intensification and Ecosystem Properties. Science Magazine, 277 (5325), 504-509.
  • Morvan, X., Saby, N.P.A., Arrouays, D., Le Bas, C., Jones, R.J.A, Verheijen, F.G.A., …Kibblewhite, M.G. (2008). Soil monitoring in Europe: A review of existing systems and requirements for harmonization. Science of The Total Environment, 391, 1-12.
  • Monitoring chemizmu gleb ornych w Polsce w latach 2010–2012. (raport końcowy) [Monitoring of arable soils in Poland in 2010–2012 (final report)]. Wyd. IUNG-PIB Puławy [in Polish].
  • Muema, E.K., Cadisch, G., Rohla, K., Vanlauwe, B. and Rasche, F. (2015). Response of ammonia-oxidizing bacteria and archaea to biochemical quality of organic inputs combined with mineral nitrogen fertilizer in an arable soil. Applied Soil Ecology, 95, 128-139.
  • Nazarkiewicz, M. and Kaniuczak, J. (2012). The effect of liming and mineral fertilization on the reaction, hydrolitic acidity, exchangeable acidity and content of exchangeable aluminium in haplic luvisols. Soil Science Annual, 58, 1, 43-48.
  • Nortcliff, S. (2002). Standardization of soil quality attributes. Agriculture Ecosystems & Environment, 88, 161-168.
  • Omar, S.A. and Ismail, M. (1999). Microbial populations, ammonification and nitrification in soil treated with urea and inorganic salts. Folia Microbiologica, 44, 205-212.
  • Paluszek, J. (2004). Estimation of cation exchange capacity and cation saturation of Luvisols developed from loess. Journal of Elementology, 19 (4), 1085-1098.
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  • PN-B-02480:1986. Grunty budowlane. Określenia, symbole, podział i opis gruntów.
  • PN-88/B-04481.Grunty budowlane. Badanie próbek gruntu.
  • Peinemann, N., Amiotti, N.M., Zalba, P. and Villamil, M.B. (2000). Effect of clay minerals and organic matter on the cation exchange capacity of silt fractions. Journal of Plant Nutrition and Soil Science, 163, 47-52.
  • Radziemska, M. and Fronczyk, J. (2015). Level and contamination assessment of soil along an expressway in an ecologically valuable area, central Poland. International Journal of Environmental Research and Public Health, 12, 13372-13387.
  • Roelofsen, H.D., Bodegom, P.M., Kooistra, L., Amerongen, J.J. and Witte, J.P.M. (2015). An evaluation of remote sensing derived soil pH and average spring groundwater table for ecological assessments. International Journal of Applied Earth Observation and Geoinformation’s, 43, 149-159.
  • Schoenholtz, S.H., Van Miegroet, H. and Burger, J.A. (2000). A review of chemical and physical properties as indicators of forest soil quality: challenges and opportunities. Forest Ecology and Management, 138 (1-3), 335-356.
  • Stewart, B.A. (1985). Advances in Soil Science, 3. New York: Springer.
  • Sun, B., Zhou, S. and Zhao, Q. (2003). Evaluation of spatial and temporal changes of soil quality based on geostatistical analysis in the hill region of subtropical China. Geoderma, 115 (1-2), 85-99.
  • Thirukkumaran, C.M. and Parkinson, D. (2000). Microbial respiration, biomass, metabolic quotient and litter decomposition in a lodge pole pine forest floor amended with nitrogen and phosphorous fertilizers. Soil Biology and Biochemistry, 32, 59-66.
  • Wyszkowski, M., Radziemska, M. and Sivitskaya, V. (2009). Effect of compost, zeolite and calcium oxide on mineral nitrogen content in nickel contaminated soil. Ecological Chemistry and Engineering A, 16 (8), 1047-1056.
  • Vitousek, P.M., Aber, J.D., Howarth, R.W., Likens, G.E., Matson, P.A., Schindler, D.W., …Tilman, D.G. (1997). Human alteration of the global nitrogen cycle: sources and consequences. Ecological Applications, 7, 737-750.
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  • Yuan, C., Fitzpatrick, R., Mosley, L.M. and Marschner, P. (2015). Sulfate reduction in sulfuric material after re-flooding: Effectiveness of organic carbon addition and pH increase depends on soil properties. Journal of Hazardous Materials, 298, 138-145.
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2021).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-a2372f32-d734-4342-8393-7ae88c7aac14
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