Differences in soil properties and crop yields after application of biochar blended with farmyard manure in sandy and loamy soils

Vladimír Šimanský, Dušan Šrank, Martin Juriga

Abstract


Article Details: Received: 2018-07-07 | Accepted: 2018-01-18 | Available online: 2019-01-31
https://doi.org/10.15414/afz.2019.22.01.21-25

In recent years, the importance of biochar application in world´s soils have increased tendency mainly due to its opposite effects. Therefore, the effort of many companies is based on the development of soil amendment which together improved properties and crop productivity in a lot of soils. In this short study, we have verified the effectiveness of biochar blended with farmyard manure named Effeco on soil properties and crop yields in different textural soils (1. sandy soil in Dolná Streda and 2. loamy soil in Veľké Uľany). Our results showed that the Effeco increased soil pH in both soils. In sandy soil, the Effeco more significantly affected sorptive parameters and soil organic carbon content than in loamy soil. Water retention in capillary pores after Effeco application in sandy and loamy soils was higher by 22% and 4%, respectively compared to control. On the other hand, more significant effect of Effeco application on soil structure was observed in loamy soil. The total crop productions in sandy and loamy soils due to the Effeco application were higher by 82% and 16%, respectively, compared to control plots. All in all, we concluded that the effects of biochar blended with farmyard manure differ mainly on soil texture.

Keywords: Effeco, sorptive parameters, soil organic matter, water retention, soil structure, loamy soil, sandy soil

References:

Agegnehu, G. et al. (2016) Benefits of biochar, compost and biochar-compost for soil quality, maize yield and greenhouse gas emissions in a tropical agricultural soil. Sci. Tot. Environ., 543, pp. 295–306.
Ahmad , M. et al. (2014) Biochar as asorbent for contaminant management in soil and water: a review. Chemosphere, 99, pp. 19–33. doi: https://doi.org/10.1016/j.chemosphere.2013.10.071
AJAYI, A.E. and HORN, R. (2016) Modification of chemical and hydrophysical properties of two texturally differentiated soils due to varying magnitudes of added biochar. Soil Tillage Res. doi: http://dx.doi.org/10.1016/j.still.2016.01.011
Brodowski , S. et al. (2006) Aggregate-occluded black carbon in soil. Eur. J. Soil Sci., no. 57, pp. 539–546.
DONG, X. et al. (2019) Biochar increased field soil inorganic carbon content five years after application. Soil & Tillage Research, no. 186, pp. 36–41. Doi: https://doi.org/10.1016/j.still.2018.09.013
El-Naggara , A. et al. (2019) Biochar application to low fertility soils: A review of current status, and future prospects. Geoderma, 337, pp. 536–557. doi: https://doi.org/10.1016/j.geoderma.2018.09.034
Fischer, D. and Glaser, B. (2012) Synergisms between Compost and Biochar for Sustainable Soil Amelioration. In Kumar, S. (ed.) Management of Organic Waste. Earthscan, Rijeka, pp. 167–198.
Haider, G. et al. (2017) Biochar reduced nitrate leaching and improved soil moisture content without yield improvements in a four-year field study. Agric. Ecosyst. Environ., 237, pp. 80–94. doi: https://doi.org/10.1016/j.agee.2016.12.019
Hrivňákov á, K. et al. (2011) Uniform methods of soil analyses (in Slovak) VÚPOP: Bratislava.
IBI (2013) Standarized product definition and product testing guidelines for biochar that i sused in soil, IBI-STD-0.1-1, International Biochar Initiative.
Ibrahim , H.M. et al. (2013) Effect of Conocarpus biochar application on the hydraulic properties of a sandy loam soil. Soil Sci., 178, pp.165–173.
Jeffery , S. et al. (2011) A quantitative review of the effects of biochar application to soils on crop productivity using metaanalysis. Agr. Ecosyst. Environ., 144, pp. 175–187.
Kotorov á, D. et al. (2018) The long-term different tillage and its effect on physical properties of heavy soils. Acta fytotechn zootechn, vol. 21, no. 3, pp. 100–107. doi: https://doi.org/10.15414/afz.2018.21.03.100-107
Laghari , M. et al. (2015) Effects of biochar application rate on sandy desert soil properties and sorghum growth. Catena, 135, pp. 313–320. doi: https://doi.org/10.1016/j.catena.2015.08.013
LEHMANN, J. and JOSEPH, S. (eds.). (2015) Biochar for environmental management. 2nd ed. London, New York: Routledge, Taylor and Francis Group. 544 p.
Lopez-Capel, E. et al. (2016) Biochar properties, In: Shackley, S. et al. (eds.): Biochar in European soils and agriculture, Routledge, London, New Your, pp. 41–72.
Obia, A. et al. (2016) In situ effects of biochar on aggregation, water retention and porosity in light-textured tropical soils. Soil Tillage Res., 155, pp. 35–44. doi: http://dx.doi.org/10.1016/j.still.2015.08
Omondi, M.O. et al. (2016) Quantification of biochar effects on soil hydrological properties using meta-analysis of literature data. Geoderma, 274, pp. 28–34. Doi: https://doi.org/10.1016/j.geoderma.2016.03.029
Pollákov á, N. et al. (2018) The influence of soil organic matter fractions in aggregates stabilization in agricultural and forest soils of selected Slovak and Czech hilly lands. Journal of Soils and Sediment, vol. 18, no. 8, pp. 2790–2800.
ŠIMANSKÝ, V. et al. (2017) Carbon sequestration in waterstable aggregates under biochar and biochar with nitrogen fertilization. Bulgrian Journal of Agricultural Research, vol. 23, no. 3, pp. 429–435.
Szombathov á N. (2010) Chemical and physico-chemical properties of soil humic hubstances as an indicator of anthropogenic changes in ecosystems (localities Báb and Dolná Malanta). Nitra: Slovak Univ. of Agriculture (in Slovak).
van Zwieten, L. et al. (2010) Effects of biochar from slow pyrolysis of papermill waste on agronomic performance and soil fertility. Plant Soil, 327, pp. 235–246.
WANG, Y. et al. (2013) Comparisons of biochar properties from wood material and crop residues at different temperatures and residence times. Energ. Fuel., 27, pp. 5890–5899.
Zhang, R. et al. (2017) Biochar enhances nut quality of Torreyagrandi sand soil fertility under simulated nitrogen deposition. For. Ecol. Manag., 391, pp. 321–329. doi: https://doi.org/10.1016/j.foreco.2017.02.036
Zimmerman , A.R. et al. (2011) Positive and negative carbon mineralization priming effects among a variety of biocharamended soils. Soil Biology and Biochemistry, 43, pp. 1169–1179.


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