Abstract

Dynamics of material composition, migration and accumulation of salts is determined by chemical equilibrium in soil solution. Soil solution contains associated electrically neutral ion pairs CaCO30; CaSO40, MgCO30, MgSO40, charged ion pairs CaHCO3+, MgHCO3+, NaCO3-, NaSO4-, CaOH+, MgOH+. Calculation method is proposed for quantitative assessment of real ion forms in the soil solution of chestnut solonetz soil complex. Were proposed equations to calculate free and associated forms of ions. To solve the equations were used an iteration, a linear interpolation of equilibrium constants, a Method of Ionic Pairs including a law of initial concentration preservation, a law of the operating masses of equilibrium system, the concentration constants of ion pair dissociation on the law of operating masses. Was determined the quantity of ion free form and a coefficient of ion association as ratio of ions free form to analytical content I³e = Cass/Can. The association of ions varies in individual soils and soil layer. Increasing soil solution salinity amplifies the ions association. In form of ionic pairs in soil solution are: 11.8-53.8% of Ca2+; 9.4-57.3% of Mg2+; 0.7-11.9% of Na+; 2.2-22.3% of HCO3-, 11.8-62.7% of SO42-. The ion CO32- is high associated, the share of ions in associated form is up to 92.7%. The degree of soil solution saturation was obtained for three level of approximation accounting on analytical concentration, calculated association coefficient, calculated coefficient of association. Relating to thermodynamic solubility product S0, the mathematical product of analytical ionic pairs indicated super saturation of soil solutions up to K1 = 100, taking into account calculated coefficient of association ion activity super saturation of soil solutions is absent, K3≈1. Only for solonetz chestnut meadow K3≈2-5. The soil solution saturation degree in soil profile and laterally in landscape varies. The quantitative assessment of real ion forms in the soil solution allows explain evolution of landscape of salted soils, structure of soil cover. Calculations fulfilled show that a possibility of soil degradation scenario taking into account the laws of association of ions in soil solution is much more probable and dangerous than it was assessed before. New understanding of water-salt transfer, geochemical barriers and ecological functions of soil will help to improve rainfed and irrigational agriculture.

Highlights

  • The chemical equilibrium in soil solution cause properties

  • The calculation of ion association of soil solution according to Equation 1-19 for soil solution was presented in details in our previous report (Endovitsky et al, 2014b)

  • To understand better the processes in soil solution of salted soil, the degree of soil solution saturation is of high importance

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Summary

Introduction

The chemical equilibrium in soil solution cause properties A.A. et al / American Journal of Agricultural and Biological Sciences 9 (3): 420-429, 2014 and in different chemical systems (Endovitsky et al, 2014a; 2014b; Kar and Berenjian, 2013; Mary and Carol, 2014; Plugatyr et al, 2011) This balance plays an important role in the genesis and evolution of soil (Kalinichenko et al, 2011; 2012a; 2012b; 2014; Maiti and Rogers, 2011; Lui et al, 2011; Luo et al, 2013). The properties of landscape depend on thermodynamic equilibrium in soil solution of each element of SSC The unity of these equilibria influences migration, accumulation of salts in soil continuum and causes the evolution of SSC. The knowledge of thermodynamic equilibria of soil solution is the fundamental base to find the ways of correct anthropogenous transformation of soil and landscape, ensure steady operated soil evolution, increase the soil fertility by method of Biogeo system technique (Kalinichenko et al, 2011; 2012a; 2012b; 2014)

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