Can soil properties of Fluvisols be influenced by river flow gradient?

Vladimír Šimanský

Abstract


Received: 2018-04-19 | Accepted: 2018-05-15 | Available online: 2018-06-30

https://doi.org/10.15414/afz.2018.21.02.63-76

The occurrence of Fluvisols is associated with the rivers, which means that their properties can be greatly influenced by the fluvial activity of the rivers. Therefore, the aim of this work were to (1.) find out whether the flow gradient along the river influenced the soil properties of Fluvisols (2.) evaluate the soil properties of Fluvisols. Soil samples were taken from Nitra River Catchment between villages Výčapy-Opatovce and Jelšovce near Nitra city. There were excavated five soil pits and soils were classified according to the World Reference Base for Soil Resources as follows: Profile 1 as Eutric Fluvisol (Loamic, Humic) (soil use: restored forest), Profile 2 as Eutric Fluvisol (Loamic, Humic) (soil use: arable soil), Profile 3 as Eutric Fluvisol (Loamic, Humic) (soil use: fallow soil), Profile 4 as Eutric Gleyic Fluvisol (Loamic, Humic) (soil use as: forest), Profile 5 as Eutric Fluvisol (Loamic, Humic) (soil use: raid forest). The investigated Fluvisols had different chemical and physical properties, but not as a consequence of the flow gradient along the river. Differences in chemistry and physical properties of Fluvisols developed along the Nitra River have been significantly affected mainly by its use, soil management practices and depth of the soil profile.

Keywords: physical and hydrophysical properties, soil structure, soil sorptive parameters, Fluvisols

References
ATSIVOR, L. et al. (2001) Farming systeminduced variability of some soil properties in a sub-humid zone of Ghana. In Plant Soil, vol. 236, pp. 83–90. doi: http://dx.doi.org/10.1023/A:101190742
BIELEK, P. (2017) Soil evaluation for enviromanagers. Nitra:
 Slovak University of Agriculture (in Slovak).
BOIX-FAYOS, C. et al. (2001) Influence of soil properties on the aggregation of some Mediterranean soils and the use
 of aggregate size and stability as land degradation indicators. In Catena, vol. 44, pp. 47–67. doi: http://dx.doi.org/10.1016/
S0341-8162(00)00176-4
BRONICK, C.J. and LAL, R. (2005) The soil structure and land
management: a review. In Geoderma, vol. 124, no. 1–2, pp. 3–22.
 doi: http://dx.doi.org/10.1016/j.geoderma.2004.03.005
DIMOYIANNIS D.G. et al. (1998) Factors affecting aggregate stability of Greek agricurtural soils. In Communications in Soil Science and plant analysis, vol. 29, no. 10, pp. 1239–1251. doi:
http://dx.doi.org/10.1080/00103629809370023
ELLIOTT, E.T. (1986) Physical and mechanical properties of Oxisols. In B.K.G. Theng (ed.) Soils with variable charge, pp. 303–324. Palmerston North: Offset Publications.
FULAJTÁR, E. (2006) Physical properties of soil. Bratislava: VÚPOP (in Slovak).
GONET, S. et al. (2002) Zawartość rozpususzczonego wegla organicznego w glebach I nawozach organicznych. Wroclaw:
PTSH.
HAGHIGHI, F. et al. (2010) A study of effects of land use changes on soil physical properties and organic matter. In Land Degradation and Development, vol. 21, pp. 496–502. doi: http://dx.doi.org/10.1002/ldr.999
HAYNES, R.J. and NAIDU, R. (1998) Influence of lime, fertilizer and manure applications on soil organic matter content and soil physical conditions: a review. In Nutr. Cycl. Agroecosyst., vol.
51, pp. 123–137. doi: http://dx.doi.org/10.1023/A:100973830
HRIVŇAKOVÁ, K. et al. (2011) The uniform methods of soil
analysis. Bratislava : VÚPOP (in Slovak).
IUSS Working Group WRB (2015) World reference base for soil resources 2014. International soil classification system for naming soils and creating legends for soil maps. Update 2015. In World Soil Resources Reports, no. 106. Rome: FAO.
JONCZAK, J. et al. (2015) Characteristics of iron and aluminium forms and quantification of soil forming processes in Chernozems of western Slovakia. In Polish Journal of Soil Science, vol. 48, no. 2, pp. 259–269. doi: http://dx.doi.org/10.17951/pjss/2015.48.2.241
KAY, B.D. (1998) Soil structure and organic carbon: a review.
 In Soil Processes and the Carbon Cycle. Boca Raton: CRC Press.
KOTOROVÁ, D. (2007) The changes of clay-loamy soil properties at its different tillage. In Agriculture (Poľnohospodárstvo), vol. 53, no. 4, pp. 183–190.
KOTOROVÁ, D. (2013) The development of selected properties of heavy soil at different tillage conditions. In Acta fytotechn. zootechn., vol. 16, no. 2, pp. 39–44.
KOTOROVÁ, D. and ŠOLTÝSOVÁ, B. (2011) Physical and chemical properties of heavy soils. Piešťany: CVRV (in Slovak).
KUTÍLEK, M. (1966) Soil water management. Praha: SNTL,
 VTL (in Czech).
LI, X.G. et al. (2007) Soil physical properties and their relations to organic carbon pools as affected by land use in an alpine pastureland. In Geoderma, vol. 139, pp. 98–105. doi:
 http://dx.doi.org/10.1016/j.geoderma.2007.01.006
MATI, R. et al. (2011) Development of evapotranspiration and water supply of clay–loamy soil on the East Slovak Lowland. In Agricultural Water Management, vol. 98, pp. 1133–1140. doi:
http://dx.doi.org/10.1016/j.agwat.2011.02.007
MEHRA, O. and JACKSON, J. (1960) Iron oxide removal from soils and clays by a dithionite-citrate system buffered with sodium bicarbonate. In Clay and Clays Minerals, vol. 5, pp. 317–327.
PAPINI, R. et al. (2011) Influence of land use on organic carbon pool and chemical properties of Vertic Cambisols in central and southern Italy. In Agriculture, Ecosystems & Environment, vol. 140, pp. 68–79. doi: http://dx.doi.org/10.1016/j.agee.2010.11.013
PLANTE, A.F. and McGILL, W.B. (2002) Soil aggregate dynamics and the retention of organic matter in laboratoryincubated soil with differing simulated tillage frequencies. In Soil Till Res, vol. 66, pp. 79–92. doi: http://dx.doi.org/10.1016/S0167-1987(02)00015-6
PODRÁDZKÝ, V. and PROCHÁDZKA, J. (2009) Effects of the reforestation of agricultural lands on the humus form development in the midle altitudes. In Scientia Agriculturae Bohemica, vol. 40, no. 1, pp. 41–46.
POLLÁKOVÁ, N. (2012) Physical properties of arable soil changed to forest soil with introduced Cryptomeria japonica Cristata. In Acta fytotechnica et zootechnica, vol. 15, no. 2, pp. 42–46.
POLLÁKOVÁ, N. and ŠIMANSKÝ, V. 2015. Physical properties of Urban soil in the campus of Slovak University of Agriculture Nitra. In Acta fytotechnica et zootechnica, vol. 18, no. 2, pp. 30–35. doi: http://dx.doi.org/10.15414/afz.2015.18.02.30–35
SAFADOUST, A. et al. (2014) Least limiting water range as affected by soil texture andcropping system. In Agricultural Water Management, vol. 136, pp. 34–41. doi: http://dx.doi.org/10.1016/j.agwat.2014.01.007
SCHEFFER, F. and SCHACHTSCHABEL, P. (1970) Lehrbuch der Bodenkunde. Stuttgart: Verlag F. Enke
SHUKLA, M.K. (2014) Soil physics an introduction. Boca Raton: CRC Press.
ŠIMANSKÝ, V. and JONCZAK, J. (2016) Water-stable aggregates as a key element in the stabilization of soil organic matter in the Chernozems. In Carpathian journal of earth and environmental sciences, vol. 11, no. 2, pp. 511–517.
ŠIMANSKÝ, V. and JONCZAK, J. (2017) Posúdenie vplyvu pôdnej organickej hmoty a oxidov železa na agregáciu. In Agrochémia, vol. XXI (51), no. 1, pp. 25–29.
ŠIMANSKÝ, V., KOLENČÍK, M. and PUŠKEĽOVÁ, Ľ. (2014) Effects of carbonates and bivalent cations and their relationships with soil organic matter from the view point of aggregate formation. In Agriculture (Poľnohospodárstvo), vol. 60, no. 3, pp. 77–86. doi: http://dx.doi.org/10.2478/agri-2014-0009
TARNÍK, A. and IGAZ, D. (2015) Determination of plant available soil water storage in agricultural land of the Nitra River Catchment. In Acta Horticulturae et Regiotecturae, vol. 18, no. 1, pp. 16–19. doi: http://dx.doi.org/10.1515/ahr-2015-0004
TISDALL, J.M. (1996) Formation of soil aggregates and accumulation of soil organic matter. In: Carter, M.R. – Stewart, B.A. (eds). Structure and Organic Matter Storage in Agricultural
Soils. Boca Raton: CRC Press, pp. 57–96.
VADJUNINA, A.F. and KORCHAGINA, Z.A. (1986) Methods of Study of Soil Physical Properties. Moscow: Agropromizdat (in
Russian).
Van REEUWIJK, L. (1995) Procedures for soil analysis. Technical Paper no. 9 of International Soil Reference and Information Centre.
WIEWIÓRA, A. and WEISS, Z. (1990) Crystallochemical classifications of phyllosilicates based on the unified system of projection of chemical composition: 11. The chlorite group. In Clay Minerals, vol. 25, pp. 83–92.
WU, X. et al. (2016) Spatial variations of aggregate stability in relation to sesquioxides for zonal soils, South-central China. In Soil & Tillage Research, vol. 157, pp. 11–22. doi: http://dx.doi.org/10.1016/j.still.2015.11.005
ZAUJEC, A. et al. (2009) Pedology and introduction to geology. Nitra: SUA (in Slovak).


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