Mineral Nitrogen Retention, Nitrogen Availability and Plant Growth in the Soil Influenced by Addition of Organic and Mineral Fertilizers – Lysimetric Experiment
Commenced in January 2007
Frequency: Monthly
Edition: International
Paper Count: 32804
Mineral Nitrogen Retention, Nitrogen Availability and Plant Growth in the Soil Influenced by Addition of Organic and Mineral Fertilizers – Lysimetric Experiment

Authors: Lukáš Plošek, Jaroslav Hynšt, Jaroslav Záhora, Jakub Elbl, Antonín Kintl, Ivana Charousová, Silvia Kovácsová

Abstract:

Compost can influence soil fertility and plant health. At the same time compost can play an important role in the nitrogen cycle and it can influence leaching of mineral nitrogen from soil to underground water.

This paper deals with the influence of compost addition and mineral nitrogen fertilizer on leaching of mineral nitrogen, nitrogen availability in microbial biomass and plant biomass production in the lysimetric experiment. Twenty one lysimeters were filed with topsoil and subsoil collected in the area of protection zone of underground source of drinking water - Březová nad Svitavou. The highest leaching of mineral nitrogen was detected in the variant fertilized only mineral nitrogen fertilizer (624.58 mg m-2), the lowest leaching was recorded in the variant with high addition of compost (315.51 mg m-2). On the other hand, losses of mineral nitrogen are not in connection with the losses of available form of nitrogen in microbial biomass. Because lost of mineral nitrogen was detected in variant with the least change in the availability of N in microbial biomass.

The leaching of mineral nitrogen, yields as well as the results concerning nitrogen availability from the first year of long term experiment suggest that compost can positive influence the leaching of nitrogen into underground water.

Keywords: Nitrogen, Compost, Biomass production, Lysimeter.

Digital Object Identifier (DOI): doi.org/10.5281/zenodo.1094311

Procedia APA BibTeX Chicago EndNote Harvard JSON MLA RIS XML ISO 690 PDF Downloads 2726

References:


[1] F. Amlinger, B. Götz, P. Dreher, J. Geszti and Ch. Weissteiner, "Nitrogen in biowaste and yard waste compost: dynamics of mobilisation and availability—a review", Europien Journal of Soil Biology, vol. 39, pp. 107-116, 2003.
[2] D. Binkley, S. C. Hart, "The Components of Nitrogen Availability Assessments in Forest Soils”, Advances in Soil Science, vol. 10, pp. 57-112, 1989.
[3] L. G. Bundy and J. J. Meisinger, "Nitrogen availability indice”, in Methods of soil analysis. Part 2. Microbiological and biochemical properties, R. W. Weaver, S. Angle, P. Bottomley, D. Bezdicek, S. Smith, A. Tabatabai, A.Wollum, Eds. Madison: Soil Society of Amerika, 1994, pp. 951-984.
[4] A. Cellier, C. Francou, S. Houot, Ch. Ballini, T. Gauquelin and V. Baldy. "Use of urban composts for the regeneration of a burnt Mediterranean soil: A laboratory approach", Journal of Environmental Management, vol. 95, pp. 238-244, 2012.
[5] P. Cosser (Ed.), Nutrients in Marine and Estuarine Environments. Australia: State of the Environment Technical Paper Series (Estuaries and the Sea), Central Queensland University, Canberra. 1997. T.
[6] D´Hose, M. Cougnon, A. De Vliegher, B. Vandecasteele, N. Viaene, W. Cornelis, E. Van Bockstaele and D. Reheul, "The positive relationship between soil quality and crop production: A case study on the effect of farm compost application", Applied Soil Ecology, vol. 75, pp. 189-198, 2014.
[7] L. F. Diaz, M. de Bertoldi, W. Bidlingmaier, E. Stentiford, Compost science and technology. Boston: MA Elsevier, 2007.
[8] J. Elbl, J. K. Friedel, J. Záhora, L. Plošek, A. Kintl, J. Přichystalová, J. Hynšt, L. Dostálová and. K. Zákoutská, "Leaching of Mineral Nitrogen and Phosphate from Rhizosphere Soil Stressed by Drought and Intensive Rainfall", International Journal of Agricultural Biosystems Science and Engineering, vol. 7, no. 11, pp. 182-187, 2013.
[9] E. Erhart, W. Hartl and B. Putz, "Biowaste compost affects yield, nitrogen supply during the vegetation period and crop quality of agricultural crops", European Journal of Agronomy, vol. 23, pp. 305-314, 2005.
[10] E. Erhart, F. Feichtinger, W. Hartl, "Nitrogen leaching losses under crops fertilized with biowaste compost compared with mineral fertilization", Journal of Plant Nutrition and Soil Science, vol. 170, pp. 608-614, 2007.
[11] J. G. Fuchs, A. Berner, J. Mayer, E. Smidt and K. Schleiss, "Influence of compost and digestates on plant growth and health: potentials and limits”, in Proceedings of the international congress CODIS 2008, Frick, pp.101-110.
[12] J. Galloway and E. B. Cowling, "Reactive nitrogen and the world”, A Journal of the Human Environment, vol. 31, no. 2, pp. 64-71, 2002.
[13] M. Chalhoub, P. Garnier, Y. Coquet, B. Mary, F. Lafolie and S. Houot, "Increased nitrogen availability in soil after repeated compost applications: Use of the PASTIS model to separate short and long-term effects", Soil Biology & Biochemistry, vol. 65, pp. 144-157, 2013.
[14] A. Kintl, J. Hynst, J. Zahora, J. Elbl, L. Plosek, L. Halada, I. Tůma, F. Kohút, "Contrasting effect of nitrogen and phosphorus addition on soil microbial activities at alpine meadow”, in Proceedings of International Masaryk conference for Ph.D. students and young researchers, Hradec Králové, pp. 3693-3702, 2012.
[15] F. Kirschenmann, Alternative agriculture in an energy- and resource-depleting future. Reneable. Agriculture Food Systems, vol. 25, pp. 85–89. 2010.
[16] M. B. Peoples, A. W. Faizah, B. Rerkasem and D. F. Herridge, Methods for evaluating nitrogen fixation by modulated legumes in the field. Canberra: Australian Centre for International Agricultural Research, 1989.
[17] L. Plošek, F. Nsanganwimana, B. Pourrut, J. Elbl, J. Hynšt, A. Kintl, D. Kubná and J. Záhora, "The Effect oc Compost Addition on Chemical and Nitrogen Characteristics, Respiration Activity and Biomass Production in Prepared Reclamation Substrates", International Journal of Environmental, Earth Science and Engineering, vol. 7, no. 11, pp. 167-172, 2013.
[18] C. Romero, P. Ramos, C. Costa and M. C. Márquez, "Raw and digested municipal waste compost leachate as potential fertilizer: comparison with a commercial fertilizer", Journal of Cleaner Production, vol. 59, pp. 73-78, 2013.
[19] M. A. Sutton, The European nitrogen assessment: sources, effects and policy perspectives. New York: Cambridge University Press, 2011, cha. 1, 5.
[20] M. Tejada, I. Gomez, T. Hernandez and C. Garcia,"Utilization of Vermicompost in Soil Restoration: Effect on Soil Biological Properties", Soil Science Society of America Journal, vol. 74, pp. 525-532, 2010.
[21] S. M. Vaughan, R. C. Dalal, S. M. Harper and N. W. Menzies, "Effect of fresh green waste and green waste compost on mineral nitrogen, nitrous oxide and carbon dioxide from a Vertisol", Waste Management, vol. 31, pp. 1720-1728, 2011.
[22] P. M. Vitousek, J. D. Aber, R. W. Howarth, G. E. Likens, P. A. Matson, D. W. Schindler, W. H. Schlesinger, G. D. Tilman, 1997. "Human alteration of the global nitrogen cycle: Sources and consequences", Ecological Applications, vol. 7, pp. 737-750, 1997
[23] J. Záhora and L. Mejzlík, "The leaching of mineral nitrogen into underground water from soil environment of different ecosystems”, Ekológia Travného Porastu, no. 7, pp. 170-174, 2007.