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Dynamika uwalniania azotu z nawozów o powolnym działaniu w eksperymencie laboratoryjnym

Treść / Zawartość
Identyfikatory
Warianty tytułu
EN
Dynamic of Nitrogen Leachate from Slow-action Fertilizers in a Laboratory Experiment
Języki publikacji
PL
Abstrakty
EN
Sustainable fertilization is one of the most important treatments of modern agriculture. Organic agriculture with new demands on agricultural practice, seeks to restrict the use of mineral fertilizers in favor of slow-action organic fertilizers. The fertilizers which are made on the farm are particularly valuable due to their quality and the absence of costs of purchase and transport. From this point of view, the new possibilities of using an organic matter which comes from waste of the food industry or biodegradable wastes from households proves to be interesting. Due to the absence of contamination with other types of waste, it can be used for the production of a fertilizer which could be used even in organic crop production. This paper presents the results of the release dynamics of nitrogen forms from the fertilizer tablets made by covering a mixture made of spent coffee grounds (SCG) with membrane, modified by ash from the low-temperature combustion of biomass. Collagen, polyvinyl acetate, polyvinyl alcohol, shellac, and sodium water glass were used as the test membranes, in order to slowdown of elution of the components from fertilizer. Leaching tests were performed in accordance with PN-EN-13266 norm, for 118 days at 25°C. The obtained results indicate high differences in nitrogen and organic matter leaching speed from fertilizer tablets, depending from the used membrane. A strong inhibition of the emission of components through the membrane of shellac and polyvinyl acetate was observed. Other membranes do not inhibit the release of nutrients in a long time period, but they can be used in agricultural practice as well.
Rocznik
Strony
506--517
Opis fizyczny
Bibliogr. 27 poz., tab., rys.
Twórcy
  • Uniwersytet Opolski
  • Instytut Podstaw Inżynierii Środowiska PAN
autor
  • Instytut Ceramiki i Materiałów Budowlanych
  • Instytut Ceramiki i Materiałów Budowlanych
Bibliografia
  • 1. Ballesteros, L.F., Teixeira, J.A., Mussatto, S.I. (2014). Chemical, Functional, and Structural Properties of Spent Coffee Grounds and Coffee Silverskin. Food Bioprocess Technol., 7, 3493-3503 DOI 10.1007/s11947-014-1349-z.
  • 2. Caetano, N.S., Silva, V.M.F., Melo, A.C., Martins, A.A., Mata, T.M. (2014). Spent coffee grounds for biodiesel production and other applications. Clean Techn Environ Policy, 16, 1423-1430 DOI 10.1007/s10098-014-0773-0.
  • 3. Cesaro, A., Belgiorno, V., Guida, M. (2015). Compost from organic solid waste: Quality assessment and European regulations for its sustainable use. Resources, Conservation and Recycling, 94, 72-79.http://dx.doi.org/10.1016 /j.resconrec.2014.11.003.
  • 4. Chang, K.H., Wu, R.Y., Chuang, K.Ch., Hsieh, T.F., Chung, R.S. (2010). Effects of chemical and organic fertilizers on the growth, flower quality and nutrient uptake of Anthurium andreanum, cultivated for cut flower production. Scientia Horticulturae, 125, 434-441. doi:10.1016/j.scienta.2010.04.011,
  • 5. Ciesielczuk, T., Rosik-Dulewska, Cz., Kochanowska, K. (2014). The influence of biomass ash on the migration of heavy metals in the flooded soil profile – model experiment. Archives of Environmental Protection, 40(4), 3-15 DOI: 10.2478/aep-2014-0034.
  • 6. Ciesielczuk, T., Rosik-Dulewska, Cz., Wiśniewska, E. (2015). Possibilities of coffee spent ground use as a slow action organo-mineral fertilizer. Rocznik Ochrona Środowiska, 17, 422-437.
  • 7. Demeyer, A., Voundi-Nkana, J.C., Verloo, M.G. (2001).Characteristics of wood ash and infuence on soil properties and nutrient uptake: an overview. Bioresource Technology, 77, 287-295.
  • 8. Golcz, A. & Komosa, A. (2006). Uwalnianie się azotu, fosforu i potasu z nawozu wolnodziałającego osmocote plus w uprawie papryki (Capsicum annuum L.). Acta Agrophysica, 7(3), 567-576.
  • 9. Goswami, L., Patel, A.K., Dutta, G., Bhattacharyya, P., Gogoi, N., Bhattacharya, S.S. (2013). Hazard remediation and recycling of tea industry and paper mill bottom ash through vermiconversion. Chemosphere, 92, 708-713 http://dx.doi.org/10.1016 /j.chemosphere.2013.04.066.
  • 10. Kubiak, J. (2008). Analiza efektywności mikoryzacji i nawożenia w uprawie kontenerowej sosny – Pinus nigra nawozami o spowolnionym działaniu. Inżynieria Rolnicza, 1(99), 217-222.
  • 11. Lityński, T. & Mazur, K. (1963). Preparaty formaldehydowo-mocznikowe jako wolno działające nawozy azotowe. Roczniki Gleboznawcze, 13, 277-280.
  • 12. Lopes, C., Herva, M., Franco-Uría, A., Roca, E. (2011). Inventory of heavy metal content in organic waste applied as fertilizer in agriculture: evaluating the risk of transfer into the food chain. Environ Sci Pollut Res, 18, 918-939 DOI 10.1007/s11356-011-0444-1.
  • 13. Ludwig, B., Geisseler, D., Michel, K., Joergensen, R.G., Schulz, E., Merbach, I., Raupp, J., Rauber, R., Hu, K., Niu, L., Liu, X. (2011). Effects of fertilization and soil management on crop yields and carbon stabilization in soils. A review. Agron. Sustain. Dev., 31, 361-372 DOI: 10.1051/agro/2010030.
  • 14. Mazur, Z., Radziemska, M., Tomaszewska, Z., Świątkowski, Ł. (2013). Effect of sodium chloride salinization on the seed germination of selected vegetable plants. Scientific Review – Engineering and Environmental Sciences, 62, 444-453.
  • 15. Meller, E., Niedźwiecki, E., Rogalska, P., Jarnuszewski, G., Wilczyński, D. (2015). Fertiliser value and trace element content of composts produced from different wastes. Journal of Ecological Engineering, 16(4), 154-160 DOI: 10.12911/22998993/59365.
  • 16. Mussatto, S.I., Machado, E.M.S., Martins, S., Teixeira, J.A. (2011). Production, Composition, and Application of Coffee and Its Industrial Residues. Food Bioprocess Technol. 4, 661-672 DOI 10.1007/s11947-011-0565-z.
  • 17. Poulsen, P.H.B., Magid, J., Luxhøi, J., de Neergaard, A. (2013). Effects of fertilization with urban and agricultural organic wastes in a field trial – Waste imprint on soil microbial activity. Soil Biology & Biochemistry, 57, 794-802 doi:10.1016 /j.soilbio.2012.02.031.
  • 18. Powlson, D.S., Gregory, P.J., Whalley, W.R., Quinton, J.N., Hopkins, D.W., Whitmore, A.P., Hirsch, P.R., Goulding, K.W.T. (2011). Soil management in relation to sustainable agriculture and ecosystem services. Food Policy, 36, 72-87 doi:10.1016/j.foodpol.2010.11.025.
  • 19. Pujol, D., Liu, C., Gominho, J., Olivella, M.À., Fiol, N., Villaescusa, I., Pereira, H. (2013). The chemical composition of exhausted coffee waste. Industrial Crops and Products, 50, 423-429 http://dx.doi.org/10.1016 /j.indcrop. 2013.07.056
  • 20. Rocznik Statystyczny Rolnictwa 2015.
  • 21. Rosik-Dulewska, Cz., Glowala, K., Karwaczyńska, U., Robak, J. (2008). Elution of heavy metals from granulates produced from minicipal sewage deposits and fly-ash of hard and Brown coal in the aspect of recycling for fertilization purposes. Archives of Environmental Protection, 34(2), 63-71.
  • 22. Rosik-Dulewska, Cz., Głowala, K., Karwaczyńska, U., Szydło, E. (2006). The Mobility of Chosen Pollutants from Ash-Sludge Mixtures. Polish J. of Environ. Stud., 15(6), 895-904.
  • 23. Rosik-Dulewska, Cz., Robak, J., Głowala, K. (2007). Granulated organic and mineral fertilizers: Technology and utility properties. Polish Journal of
  • 24. Chemical Technology, 9(4), 36-39 doi: 10.2478/v10026-007-0085-9. Roy, M., Karmakar, S., Debsarcar, A., Sen, P.K., Mukherjee, J. (2013). Application of rural slaughterhouse waste as an organic fertilizer for pot cultivation of solanaceous vegetables in India. International Journal Of Recycling of Organic Waste in Agriculture, 2-6.
  • 25. Sampaio, A., Dragone, G., Vilanova, M., Oliveira, J.M., Teixeira, J.A., Mussatto, S.I. (2013). Production, chemical characterization, and sensory profile of a novel spirit elaborated from spent coffee grodunds. LWT - Food Science and Technology. 54: 557-563 http://dx.doi.org/10.1016/j.lwt.2013.05.042.
  • 26. www.eurostat.eu (access: 30.01.2016).
  • 27. Xiao, R., Chen X,., Wang, F., Yu, G. (2011). The physicochemical properties of different biomass ashes at different ashing temperature. Renewable Energy, 36, 244-249.
Uwagi
Opracowanie ze środków MNiSW w ramach umowy 812/P-DUN/2016 na działalność upowszechniającą naukę.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-aee72f9a-8ac6-42f8-b20e-28220599279f
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