Continuous internal erosion, commonly manifested as piping, is a major cause of failure in earthen structures. This study employs the hole erosion test to examine the internal erosion resistance of zein biopolymer–treated soil, encompassing three sandy soil types with varying particle sizes. The gelation mechanism of the zein binder is evaluated through rheological and shear wave analyses. Treated and untreated specimens are subjected to hydraulic gradients at constant flow rates. The erosion analysis focuses on changes in axial diameter, particle loss rate, shear stress, and erosion rate. The biopolymer gel demonstrates evolving rheological behaviour, transitioning from shear thickening to shear thinning after a 4-hour curing period. Treated specimens exhibit improved shear stress and erosion rate over time, which vary with particle sizes. Hydraulic shear stress decreases with the curing period, and particle size increases, correlating with erosion rate reduction. Higher consistency index of the biopolymer gel leads to decreased hydraulic shear stress, influenced by gel internal friction. Hydraulic shear stress linearly relates to shear wave velocity of the treated specimen. Zein biopolymer enhances erosion resistance of cohesionless sand through gel internal friction and treated specimen shear stiffness.
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May 2025
Research Article|
April 24 2025
Improving erosion resistance of sandy soils using zein biopolymer Available to Purchase
Quadri Olakunle Babatunde, MSc;
Quadri Olakunle Babatunde, MSc
PhD Candidate, Department of Agricultural Civil Engineering, Kyungpook National University, Daegu, Republic of Korea
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Dong Geon Son, MSc;
Dong Geon Son, MSc
PhD Student, School of Civil, Environmental, and Architectural Engineering, Korea University, Seoul, Republic of Korea
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Dong-Ju Kim, PhD;
Dong-Ju Kim, PhD
Postdoctoral Researcher, School of Civil, Environmental, and Architectural Engineering, Korea University, Seoul, Republic of Korea
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Donghwi Jung, PhD;
Donghwi Jung, PhD
Associate Professor, School of Civil, Environmental, and Architectural Engineering, Korea University, Seoul, Republic of Korea
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Yong-Hoon Byun, PhD
Yong-Hoon Byun, PhD
Associate Professor, Department of Agricultural Civil Engineering, Kyungpook National University, Daegu, Republic of Korea (corresponding author: yhbyun@knu.ac.kr)
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Publisher: Emerald Publishing
Received:
June 16 2024
Accepted:
March 12 2025
Emerald Publishing Limited: All rights reserved
2025
Environmental Geotechnics (2025) 12 (4): 289–302.
Article history
Received:
June 16 2024
Accepted:
March 12 2025
Citation
Babatunde QO, Son DG, Kim D, Jung D, Byun Y (2025), "Improving erosion resistance of sandy soils using zein biopolymer". Environmental Geotechnics, Vol. 12 No. 4 pp. 289–302, doi: https://doi.org/10.1680/jenge.24.00090
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