Publications in year 2017

Vol. 31, Issue 4



Physical parameters of Fluvisols on flooded and non-flooded terraces

International Agrophysics
Year : 2017
DOI : 10.1515/intag-2016-0026
Volumen : 31
Issue : 1
Pages : 73 - 82
  PDF 2.15 MB
Authors: M. Kercheva1, Z. Sokołowska2, M. Hajnos2, K. Skic2, T. Shishkov1

1Department of Soil Physics, Institute of Soil Science, Agrotechnology and Plant Protection “N. Poushkarov”, Shosse Bankya 7, Sofia 1080, Bulgaria
2Institute of Agrophysics, Polish Academy of Sciences, Doświadczalna 4, 20-290 Lublin, Poland
Abstract :

The heterogeneity of soil physical properties of Fluvisols, lack of large pristine areas, and different moisture regimes on non-flooded and flooded terraces impede the possibility to find a soil profile which can serve as a baseline for estimating the impact of natural or anthropogenic factors on soil evolution. The aim of this study is to compare the pore size distribution of pristine Fluvisols on flooded and non-flooded terraces using the method of the soil water retention curve, mercury intrusion porosimetry, nitrogen adsorption isotherms, and water vapour sorption. The pore size distribution of humic horizons of pristine Fluvisols on the non-flooded terrace differs from pore size distribution of Fluvisols on the flooded terrace. The peaks of textural and structural pores are higher in the humic horizons under more humid conditions. The structural characteristics of subsoil horizons depend on soil texture and evolution stage. The peaks of textural pores at about 1 mm diminish with lowering of the soil organic content. Structureless horizons are characterized by uni-modal pore size distribution. Although the content of structural pores of the subsoil horizons of Fluvisols on the non-flooded terrace is low, these pores are represented by biopores, as the coefficient of filtration is moderately high. The difference between non-flooded and flooded profiles is well expressed by the available water storage, volume and mean radius of pores, obtained by mercury intrusion porosimetry and water desorption, which are higher in the surface horizons of frequently flooded Fluvisols.

Keywords : soil porous system, Fluvisols, soil water retention, mercury intrusion porosimetry, nitrogen adsorption, water vapour desorption
Language : English