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Soil salinity is commonly assessed by measuring the electrical conductivity of the soil saturated paste extract, i.e., pore-water electrical conductivity of saturated soils (σps), yet its accurate determination remains challenging. While Hilhorst (2000) established a linear relationship between bulk soil electrical conductivity (σ) and dielectric constant (Ka) using σps as a parameter, its applicability across diverse soil textures requires further examination. The objectives of this study are to evaluate the σ-Ka relationship for σps estimation σps across a broad texture spectrum, and to develop a generalized relationship between the formation factor (Fs, the ratio of pore-water electrical conductivity σp and σ) and porosity (n) for σps estimation at room temperature (25 ± 1 °C). The model was validated using independent datasets spanning clay content from 0 to 0.47 g g−1 and σps values from 0 to 20 dS m−1. Comparing to exiting methods, the new approach achieved superior performance with an average root mean square error of 0.44 dS m−1. The proposed method enables reliable σps estimation using only n and saturated bulk electrical conductivity measurements, offering practical advantages for field-scale soil salinity monitoring.
Liu et al. (Wed,) studied this question.