Hydraulic conductivity reduction can be decoupled from plant available water and can influence nitrogen leaching in amended sandy soils

Abstract Improvements in sandy-soil hydraulic behavior are often inferred from reduced permeability rather than from direct gains in plant-available water (AW). This study quantified the extent to which amendment-induced reductions in saturated hydraulic conductivity (K s ) correspond to changes in AW and how these responses influence nitrogen (N) leaching. Controlled soil-column experiments evaluated the effects of clay powder, compost, and a biochar-based biofertilizer (biofertilizer-char) on soil water retention characteristics, K s , water discharge, and N-losses. Clay powder significantly reduced K s but did not significantly increase field capacity, permanent wilting point, or AW, demonstrating that restricted drainage does not necessarily improve water availability. Compost increased saturation percentage (18.6–20.8%), but higher application rates reduced AW (10.4–7.6%) and increased N-leaching. Combined compost and biofertilizer-char treatments maintained AW (~ 10.3%) while reducing water discharge and moderating N-losses. Nitrogen leaching varied among amendment treatments. High compost rates produced the greatest losses (0.63 mg column −1 , 15.75%), while moderate compost and compost + biofertilizer-char treatments reduced losses to 0.09–0.20 mg column −1 (3.25–8.67%). Leached-N increased with initial total N-content (R 2 = 0.378) and decreased with leachate volume (R 2 = 0.253). These findings demonstrate that reduction in K s can be decoupled from gains in AW and that N-leaching is jointly regulated by nitrogen availability and amendment-induced modifications of soil water transport.

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Publication Details

Journal
Scientific Reports
Published
2026-09-17
DOI
https://doi.org/10.1038/s41598-026-65854-1
Primary Topic
Soil and Unsaturated Flow
Type
article
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article

Hydraulic conductivity reduction can be decoupled from plant available water and can influence nitrogen leaching in amended sandy soils

Abd El‐Latif Hesham, Maha Elbana, Eman A. Amer, Kassem A. S. Mohammed et al.
Scientific Reports
Soil and Unsaturated Flow
article

Hydraulic conductivity reduction can be decoupled from plant available water and can influence nitrogen leaching in amended sandy soils

Abd El‐Latif Hesham, Maha Elbana, Eman A. Amer, Kassem A. S. Mohammed, Ola Mohamed Sayed
article en

Abstract

Abstract Improvements in sandy-soil hydraulic behavior are often inferred from reduced permeability rather than from direct gains in plant-available water (AW). This study quantified the extent to which amendment-induced reductions in saturated hydraulic conductivity (K s ) correspond to changes in AW and how these responses influence nitrogen (N) leaching. Controlled soil-column experiments evaluated the effects of clay powder, compost, and a biochar-based biofertilizer (biofertilizer-char) on soil water retention characteristics, K s , water discharge, and N-losses. Clay powder significantly reduced K s but did not significantly increase field capacity, permanent wilting point, or AW, demonstrating that restricted drainage does not necessarily improve water availability. Compost increased saturation percentage (18.6–20.8%), but higher application rates reduced AW (10.4–7.6%) and increased N-leaching. Combined compost and biofertilizer-char treatments maintained AW (~ 10.3%) while reducing water discharge and moderating N-losses. Nitrogen leaching varied among amendment treatments. High compost rates produced the greatest losses (0.63 mg column −1 , 15.75%), while moderate compost and compost + biofertilizer-char treatments reduced losses to 0.09–0.20 mg column −1 (3.25–8.67%). Leached-N increased with initial total N-content (R 2 = 0.378) and decreased with leachate volume (R 2 = 0.253). These findings demonstrate that reduction in K s can be decoupled from gains in AW and that N-leaching is jointly regulated by nitrogen availability and amendment-induced modifications of soil water transport.

Scientific ReportsVol. 16(1)
Beni-Suef University (EG), National Water Research Center (EG), Aswan University (EG)
Clean water and sanitation
Openalex Percentile: Top 17%
Soil and Unsaturated Flow
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