Effect of Organic-waste Compost Addition on Leaching of Mineral Nitrogen from Arable Land and Plant Production
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Effect of Organic-waste Compost Addition on Leaching of Mineral Nitrogen from Arable Land and Plant Production

Authors: Jakub Elbl, Lukas Plošek, Antonín Kintl, Jaroslav Záhora, Jitka Přichystalová, Jaroslav Hynšt

Abstract:

Application of compost in agriculture is very desirable worldwide. In the Czech Republic, compost is the most often used to improve soil structure and increase the content of soil organic matter, but the effects of compost addition on the fate of mineral nitrogen are only scarcely described. This paper deals with possibility of using combined application of compost, mineral and organic fertilizers to reduce the leaching of mineral nitrogen from arable land. To demonstrate the effect of compost addition on leaching of mineral nitrogen, we performed the pot experiment. As a model crop, Lactuca sativa L. was used and cultivated for 35 days in climate chamber in thoroughly homogenized arable soil. Ten variants of the experiment were prepared; two control variants (pure arable soil and arable soil with added compost), four variants with different doses of mineral and organic fertilizers and four variants of the same doses of mineral and organic fertilizers with the addition of compos. The highest decrease of mineral nitrogen leaching was observed by the simultaneous applications of soluble humic substances and compost to soil samples, about 417% in comparison with the control variant. Application of these organic compounds also supported microbial activity and nitrogen immobilization documented by the highest soil respiration and by the highest value of the index of nitrogen availability. The production of plant biomass after this application was not the highest due to microbial competition for the nutrients in soil, but was 24% higher in comparison with the control variant. To support these promising results the experiment should be repeated in field conditions.

Keywords: Nitrogen, Compost, Salad, Arable land.

Digital Object Identifier (DOI): doi.org/10.5281/zenodo.1088974

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References:


[1] J. D. Aber, K. J. Nadelhoffer, P. Steudler, J. M. Melillo. “Nitrogen saturation in northern forest ecosystem: Excess nitrogen from fossil fuel combustion may stress the biosphere”, BioScience, vol. 39, no. 6, pp. 378-386, 1989.
[2] P. Bazzoffi, S. Pellegrini, A. Rocchini, M. Morandi, O. Grasselli, “The effect of urban refuse compost and different tractors tyres on soil physical properties, soil erosion and maize yield”, Soil and Tillage Research, vol. 48, pp. 275-286, 1998.
[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. B. Martin-Diana, D. Rico, C. Barry-Ryan, J. M. Frias, J. Mulcahy, G. T. M. Henehan, “Calcium lactate washing treatments for salad-cut Iceberg lettuce: Effect of temperature and concentration on quality retention parametrs”, Food Research International, vol. 38, no. 7, pp. 729-740, 2005.
[5] L. F. Diaz, M. de Bertoldi, W. Bidlingmaier, E. Stentiford, Compost science and technology. Boston: MA Elsevier, 2007, cha. 3.
[6] J. Elbl, A. Kintl, J. Zahora, “Leaching of mineral nitrogen from arable land in relation to the previous type of soil fertilization”, in Proceedings of international Ph.D. Students Conference MendelNet, Brno, 2012, pp. 392-400.
[7] J. Galloway, E. B. Cowling, “Reactive nitrogen and the world”, A Journal of the Human Environment, vol. 31, no. 2, pp. 64-71, 2002.
[8] J. N. Galloway, J. D. Aber, J. W. Erisman, S. P. Seittzinger, R. W. Howarth, E. B. Cowling, B. J. Cosby. “The Nitrogen cascade”, BioScience, vol. 53, no. 4, pp. 341-356, 2003.
[9] 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, 2012, pp. 3693-3702.
[10] H. Keith and S. C. Wong, “Measurement of soil CO2 efflux using soda lime absorption: both quantitative and reliable”, Soil Biology and Biochemistry, vol. 38, no. 5, pp. 1121-1131, 2006.
[11] G. M. Liu, J. S. Yang and R. J. Yao, “Electrical conductivity in soil extracts: chemical factors and their intensity”, Soil Science Society of China, vol. 16, no. 1, pp. 100-107, 2005.
[12] J. G. Martin and P. V. Bolstad, “Variation of soil respiration at three spatial scales: Components within measurements, intra-site variation and patterns on the landscape”, Soil Biology and Biochemistry, vol. 41, no. 3, pp. 530-543, 2009.
[13] F. Nevens and D. Reheul, “The application of vegetable, fruit and garden waste (VFG) compost in addition to cattle slurry in a silage maize monoculture: nitrogen availability and use”, European Journal of Agronomy, vol. 19, no. 2, pp. 189-203, 2003.
[14] I. Novosadova, J. Zahora and J. D. R. Sinoga, “The availability of mineral nitrogen in mediterranean open steppe dominated by Stipa tenacissima L”, Acta Universitatis Agriculturae et Silviculturae Mendelianae Brunensis, vol. 59, no. 5, pp. 187-192, 2011.
[15] M. B. Peoples, A. W. Faizah, B. Rerkasem, D. F. Herridge, Methods for evaluating nitrogen fixation by modulated legumes in the field. Canberra: Australian Centre for International Agricultural Research, 1989.
[16] M. A. Sutton, The European nitrogen assessment: sources, effects and policy perspectives. New York: Cambridge University Press, 2011, cha. 1, 5.
[17] M. Simek, L. Jisova and D. W. Hopkins, “What is the so-called optimum pH for denitrification in soil?”, Soil Biology and Biochemistry, vol. 34, no. 9, pp. 1227-1234, 2002.
[18] M. Simek, S. Virtanen, V. Kristufek, A. Simojoki, M. Yli-Halla, “Evidence of rich microbial communities in the subsoil of a boreal acid sulphate soil conducive to greenhouse gas emissions”, Agriculture, Ecosystems and Enviroment, vol. 140, no. 1-2, pp. 113-122, 2011.
[19] C. O. Tamm, Nitrogen in terrestrial ecosystems: Questions of productivity, vegetational changes and ecosystem stability, Berlin: Springer Verlag, 1991, cha. 2.
[20] B. Wolf, G. H. Snyder, Sustainable soils: the place of organic matter in sustaining soils and their productivity. New York: Food Products Press, 2003.