A Comprehensive Scientific Study on Hydraulic Conductivity in Sandy, Clayey, and Silty Soils With Reference to the USDA Soil Taxonomy Classification (2026)

Authors

  • Asmaa Younis Badr Agricultural and Animal Research Center, Tripoli, Libya Author

DOI:

https://doi.org/10.65419/albahit.v5i3.149

Keywords:

Hydraulic conductivity, Soil hydrophysical properties, Soil texture, Saturated and unsaturated flow, USDA Soil Taxonomy, Libya

Abstract

Hydraulic conductivity is one of the most important hydrophysical properties in soil science, as it determines the rate and volume of water flow through soil pores. This property is strongly influenced by soil particle-size composition (texture), internal structure, organic matter content, and degree of water saturation. Hydraulic conductivity values vary widely among different soil types: sandy soils record the highest values due to their large pore size, whereas clayey soils record the lowest values due to their fine particles and compaction. Silty soils occupy an intermediate position between the two. This study examines saturated and unsaturated hydraulic conductivity in sandy, clayey, and silty soils, reviews the American classification of these soils according to the USDA Soil Taxonomy system at the suborder level, reviews previous studies conducted on related soil properties in Libya, analyzes results derived from recent scientific studies, and concludes with practical recommendations of benefit to the agricultural, hydrological, and environmental sectors.

References

• Abagandura, G. O., Nasr, G. E.-D. M., & Moumen, N. M. (2017). Influence of tillage practices on soil physical properties and growth and yield of maize in Jabal Al Akhdar, Libya. Open Journal of Soil Science, 7(6), 118–132.

• Aburas, M. M. (2009). Assessment of soil erodibility in relation to soil degradation and land use in Mediterranean Libya [Doctoral dissertation, University of Newcastle Upon Tyne].

• Alsanousi, A. et al. (2024). Investigating soil properties on the north and south slopes at different elevations in Al-Jabal Al-Akhdar, Libya. Forest Science and Technology, 286–299.

• Assessment of soil erodibility in relation to land degradation, Al-Jabal Al-Akhdar, Libya. (2020). Journal of Marine Science and Environmental Technologies, 6(1).

• Brady, N. C., & Weil, R. R. (2017). The nature and properties of soils (15th ed.). Pearson Education.

• Brooks, R. H., & Corey, A. T. (1964). Hydraulic properties of porous media (Hydrology Paper No. 3). Colorado State University.

• Clapp, R. B., & Hornberger, G. M. (1978). Empirical equations for some soil hydraulic properties. Water Resources Research, 14(4), 601–604.

• Darcy, H. (2004). Les fontaines publiques de la ville de Dijon (P. Bobeck, Trans.). Kendall Hunt Publishing. (Original work published 1856)

• Effect of topography and land use on soil erosion rates in Al-Jabal Al-Akhdar, Libya. (n.d.). Journal of Misurata University for Agricultural Sciences.

• Ferreras, L., García, E., Toresani, S., Fernández, E., & Gorini, R. (2000). Effect of organic amendments on some physical, chemical and biological properties in a horticultural soil. Bioresource Technology, 75(1), 9–16.

• Food and Agriculture Organization. (2015). World reference base for soil resources 2014, update 2015: International soil classification system for naming soils and creating legends for soil maps (World Soil Resources Reports No. 106). FAO.

• Habel, A. Y. (2013). The role of climate on the aggregate stability and soil erodibility of selected El-Jabal Al-Akhdar soils-Libya. Alexandria Journal of Agricultural Research, 58, 261–271.

• Hillel, D. (2004). Introduction to environmental soil physics. Elsevier Academic Press.

• Morgan, R. P. C. (2005). Soil erosion and conservation (3rd ed.). Blackwell Publishing.

• Mualem, Y. (1976). A new model for predicting the hydraulic conductivity of unsaturated porous media. Water Resources Research, 12(3), 513–522.

• Natural Resources Conservation Service. (2019). Keys to soil taxonomy (12th ed.). United States Department of Agriculture.

• Rawls, W. J., Brakensiek, D. L., & Saxton, K. E. (1982). Estimation of soil water properties. Transactions of the American Society of Agricultural Engineers, 25(5), 1316–1320, 1328.

• Saxton, K. E., & Rawls, W. J. (2006). Soil water characteristic estimates by texture and organic matter for hydrologic solutions. Soil Science Society of America Journal, 70(5), 1569–1578.

• Schaap, M. G., Leij, F. J., & van Genuchten, M. Th. (2001). ROSETTA: A computer program for estimating soil hydraulic parameters with hierarchical pedotransfer functions. Journal of Hydrology, 251(3–4), 163–176.

• Šimůnek, J., Šejna, M., & van Genuchten, M. Th. (2016). HYDRUS-1D software package for simulating the one-dimensional movement of water, heat, and multiple solutes in variably-saturated media (Version 4.xx). University of California.

• Soil Survey Staff. (2022). Keys to soil taxonomy (13th ed.). USDA Natural Resources Conservation Service.

• van Genuchten, M. Th. (1980). A closed-form equation for predicting the hydraulic conductivity of unsaturated soils. Soil Science Society of America Journal, 44(5), 892–898.

• Warrick, A. W. (2002). Soil physics companion. CRC Press.

• Zhang, Z. F. (2010). Soil water retention and relative permeability for conditions from oven-dry to full saturation. Vadose Zone Journal, 9(2), 145–156.

• California Bearing Ratio (CBR) Value for Expansive Soil Subgrade Stabilized Using Brick Dust-Lime Mixtures . (2026). Albahit Journal of Applied Sciences, 5(2), 54-63. https://doi.org/10.65419/albahit.v5i2.136

• Fadwa Ibrahim Salem Elagori. (2026). The Relationship between Land Surface Temperature and Soil Moisture in the Ecosystem of the Region – An Applied Study Based on Data from Shahat Station for the Period 1981–2024. Journal of Libyan Academy Bani Walid, 2(1), 961–977. https://doi.org/10.61952/jlabw.v2i1.484

• Jamal. S. M. Taher, Awad M. Mohamad, & Shukri. M. Elsbia. (2026). Soil pH Dynamics in a Calcareous Soil as Influenced by Organic and Sulfur Amendments under Different Irrigation Water Qualities. Journal of Libyan Academy Bani Walid, 2(1), 11–17. https://doi.org/10.61952/jlabw.v2i1.385

• Mohamed Saleh Alamin Hassan, Ibrahim Abobaker Ali Langer, & Omar Imsiry Omar. (2026). The Impact of Climatic Factors on Desertification Acceleration in Southwestern Libya: A Field Study of) Murzuq and Ubar(. Journal of Libyan Academy Bani Walid, 2(1), 114–126. https://doi.org/10.61952/jlabw.v2i1.423

Downloads

Published

2026-07-05

Issue

Section

Articles

How to Cite

A Comprehensive Scientific Study on Hydraulic Conductivity in Sandy, Clayey, and Silty Soils With Reference to the USDA Soil Taxonomy Classification (2026). (2026). Albahit Journal of Applied Sciences, 5(3), 15-23. https://doi.org/10.65419/albahit.v5i3.149