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2025 | OriginalPaper | Chapter

Sustainable Method for Liquefaction Mitigation Using Natural Coir Fibers

Authors : Balaji Lakkimsetti, R. N. Anagha, Gali Madhavi Latha

Published in: Proceedings of 9IYGEC 2023, Volume 2

Publisher: Springer Nature Singapore

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Abstract

Liquefaction in sands is of grave concern for geotechnical engineers to ensure the stability of soil structures subjected to dynamic loadings like earthquakes. Grouting, installing seismic drains, and compaction are the traditional liquefaction remediation methods. These techniques are expensive, energy and resource intensive. Finding sustainable substitutes for these methods is essential. This study proposes the usage of naturally available coir fibers for liquefaction mitigation. Coir fibers have extremely high tensile strength and are abundantly available as a major byproduct from the coconut business and have the potential to replace other materials and techniques for controlling liquefaction in sands. The liquefaction response of clean sand and coir fiber reinforced sand is assessed by performing stress-controlled cyclic simple shear tests on sand mixed with 0% and 0.5% coir fiber content by weight of sand. Test results show that coir fiber increases the liquefaction resistance of sand to a great extent. Further, shaking table tests were performed to validate and verify the proposed method for a large-scale application. Coir fiber is found to be a potential sustainable natural material for liquefaction mitigation in sands.

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Literature
1.
go back to reference Seed HB, Lee KL (1966) Liquefaction of saturated sands during cyclic loading. J Soil Mech Found Div 92(6):105–134CrossRef Seed HB, Lee KL (1966) Liquefaction of saturated sands during cyclic loading. J Soil Mech Found Div 92(6):105–134CrossRef
2.
go back to reference Ishihara K, Tatsuoka F, Yasuda S (1975) Undrained deformation and liquefaction of sand under cyclic stresses. Soils Found 15(1):29–44CrossRef Ishihara K, Tatsuoka F, Yasuda S (1975) Undrained deformation and liquefaction of sand under cyclic stresses. Soils Found 15(1):29–44CrossRef
3.
go back to reference Lade PV, Yamamuro JA (1997) Effects of nonplastic fines on static liquefaction of sands. Can Geotech J 34(6):918–928CrossRef Lade PV, Yamamuro JA (1997) Effects of nonplastic fines on static liquefaction of sands. Can Geotech J 34(6):918–928CrossRef
4.
go back to reference Papadopoulou A, Tika T (2008) The effect of fines on critical state and liquefaction resistance characteristics of non-plastic silty sands. Soils Found 48(5):713–725CrossRef Papadopoulou A, Tika T (2008) The effect of fines on critical state and liquefaction resistance characteristics of non-plastic silty sands. Soils Found 48(5):713–725CrossRef
5.
go back to reference Zhu Z, Zhang F, Peng Q, Dupla JC, Canou J, Cumunel G, Foerster E (2021) Effect of the loading frequency on the sand liquefaction behaviour in cyclic triaxial tests. Soil Dyn Earthq Eng 147:106779CrossRef Zhu Z, Zhang F, Peng Q, Dupla JC, Canou J, Cumunel G, Foerster E (2021) Effect of the loading frequency on the sand liquefaction behaviour in cyclic triaxial tests. Soil Dyn Earthq Eng 147:106779CrossRef
6.
go back to reference Latha GM, Lakkimsetti B (2022) Morphological perspectives to quantify and mitigate liquefaction in Sands. Indian Geotech J 52(5):1244–1252CrossRef Latha GM, Lakkimsetti B (2022) Morphological perspectives to quantify and mitigate liquefaction in Sands. Indian Geotech J 52(5):1244–1252CrossRef
7.
go back to reference Basu D, Montgomery J, Stuedlein AW (2022) Observations and challenges in simulating post-liquefaction settlements from centrifuge and shake table tests. Soil Dyn Earthq Eng 153:107089CrossRef Basu D, Montgomery J, Stuedlein AW (2022) Observations and challenges in simulating post-liquefaction settlements from centrifuge and shake table tests. Soil Dyn Earthq Eng 153:107089CrossRef
8.
go back to reference Gu X, Wu D, Zuo K, Tessari A (2022) Centrifuge shake table tests on the liquefaction resistance of sand with clayey fines. J Geotech Geoenvironmental Eng, 148(2), p 04021180 Gu X, Wu D, Zuo K, Tessari A (2022) Centrifuge shake table tests on the liquefaction resistance of sand with clayey fines. J Geotech Geoenvironmental Eng, 148(2), p 04021180
9.
go back to reference Brennan AJ, Madabhushi SPG (2006) Liquefaction remediation by vertical drains with varying penetration depths. Soil Dyn Earthq Eng 26(5):469–475CrossRef Brennan AJ, Madabhushi SPG (2006) Liquefaction remediation by vertical drains with varying penetration depths. Soil Dyn Earthq Eng 26(5):469–475CrossRef
10.
go back to reference Shahir H, Pak A, Ayoubi P (2016) A performance-based approach for design of ground densification to mitigate liquefaction. Soil Dyn Earthq Eng 90:381–394CrossRef Shahir H, Pak A, Ayoubi P (2016) A performance-based approach for design of ground densification to mitigate liquefaction. Soil Dyn Earthq Eng 90:381–394CrossRef
11.
go back to reference Rasouli H, Fatahi B, Nimbalkar S (2020) Liquefaction and post-liquefaction assessment of lightly cemented sands. Can Geotech J 57(2):173–188CrossRef Rasouli H, Fatahi B, Nimbalkar S (2020) Liquefaction and post-liquefaction assessment of lightly cemented sands. Can Geotech J 57(2):173–188CrossRef
12.
go back to reference Sri Bhanupratap Rathod R, Venkatarama Reddy BV (2021) Strength and stress–strain characteristics of fibre reinforced cement stabilised rammed earth, Mater Struct, 54, pp 1–13 Sri Bhanupratap Rathod R, Venkatarama Reddy BV (2021) Strength and stress–strain characteristics of fibre reinforced cement stabilised rammed earth, Mater Struct, 54, pp 1–13
13.
go back to reference Standard test methods for specific gravity of soil solids by water pycnometer, ASTM D854: 2014. ASTM International, West Conshohocken, PA Standard test methods for specific gravity of soil solids by water pycnometer, ASTM D854: 2014. ASTM International, West Conshohocken, PA
14.
go back to reference Standard test methods for maximum index density and unit weight of soils using a vibratory table, ASTM D4253: 2016. ASTM International, West Conshohocken, PA Standard test methods for maximum index density and unit weight of soils using a vibratory table, ASTM D4253: 2016. ASTM International, West Conshohocken, PA
15.
go back to reference Standard test methods for minimum index density and unit weight of soils and calculation of relative density, ASTM D4254: 2016. ASTM International, West Conshohocken, PA Standard test methods for minimum index density and unit weight of soils and calculation of relative density, ASTM D4254: 2016. ASTM International, West Conshohocken, PA
16.
go back to reference Standard test method for tensile properties of single textile fibers, ASTM D3822: 2020. ASTM International, West Conshohocken, PA Standard test method for tensile properties of single textile fibers, ASTM D3822: 2020. ASTM International, West Conshohocken, PA
17.
go back to reference Dyvik R, Berre T, Lacasse S, Raadim B (1987) Comparison of truly undrained and constant volume direct simple shear tests. Geotechnique 37(1):3–10CrossRef Dyvik R, Berre T, Lacasse S, Raadim B (1987) Comparison of truly undrained and constant volume direct simple shear tests. Geotechnique 37(1):3–10CrossRef
18.
go back to reference Standard test method for consolidated undrained cyclic direct simple shear test under constant volume with load control or displacement control, ASTM D8296: 2019. ASTM International, West Conshohocken, PA Standard test method for consolidated undrained cyclic direct simple shear test under constant volume with load control or displacement control, ASTM D8296: 2019. ASTM International, West Conshohocken, PA
Metadata
Title
Sustainable Method for Liquefaction Mitigation Using Natural Coir Fibers
Authors
Balaji Lakkimsetti
R. N. Anagha
Gali Madhavi Latha
Copyright Year
2025
Publisher
Springer Nature Singapore
DOI
https://doi.org/10.1007/978-981-97-6988-9_2