Comprehensive analysis of pumice sand: physical, chemical, and mechanical behavior under static and cyclic triaxial testing

Pumice sand is a highly porous and crushable volcanic soil widely distributed in volcanic regions such as Japan, where it may contribute to earthquake-induced ground deformation, liquefaction, and slope instability. However, the coupled effects of particle crushability, density, and confining pressure on its monotonic and cyclic behavior remain insufficiently clarified, resulting in uncertainty in geotechnical design for volcanic deposits. This study investigates the mechanical characteristics and liquefaction resistance of pumice sand obtained from Miyakonojo City, Miyazaki Prefecture, Kyushu, Japan. A comprehensive laboratory testing program was conducted, including chemical analysis, single-particle strength tests, one-dimensional consolidation compression tests, static and cyclic triaxial tests. The results show that the tested pumice sand is predominantly composed of silica (SiO 2 ) and has considerably lower particle strength than conventional sands such as Toyoura sand and carbonate sand, confirming its highly crushable nature. The consolidation response indicates a yield stress intermediate between typical sand and clay-like behavior, reflecting the influence of its porous particle structure. Static triaxial tests reveal that particle crushing is more pronounced under drained conditions than under undrained conditions. Cyclic triaxial tests further demonstrate that liquefaction resistance is governed by relative density and confining pressure, with denser specimens requiring a greater number of loading cycles to reach liquefaction. In addition, lower confining pressure results in higher apparent liquefaction resistance, which may be attributed to reduced particle crushing during cyclic loading. These findings clarify the distinctive mechanical response of pumice sand and provide an experimental basis for improving liquefaction assessment and geotechnical design in volcanic regions.

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Journal
SOILS AND FOUNDATIONS
Published
2026-09-07
DOI
https://doi.org/10.1016/j.sandf.2026.101868
Primary Topic
Geotechnical Engineering and Soil Mechanics
Type
article
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0.00

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article

Comprehensive analysis of pumice sand: physical, chemical, and mechanical behavior under static and cyclic triaxial testing

Zentaro Furukawa, Ahmad Rifa’i, Kiyonobu Kasama, Noriyuki Yasufuku et al.
SOILS AND FOUNDATIONS
Geotechnical Engineering and Soil Mechanics
article

Comprehensive analysis of pumice sand: physical, chemical, and mechanical behavior under static and cyclic triaxial testing

Zentaro Furukawa, Ahmad Rifa’i, Kiyonobu Kasama, Noriyuki Yasufuku, I Wayan Ariyana Basoka
article en

Abstract

Pumice sand is a highly porous and crushable volcanic soil widely distributed in volcanic regions such as Japan, where it may contribute to earthquake-induced ground deformation, liquefaction, and slope instability. However, the coupled effects of particle crushability, density, and confining pressure on its monotonic and cyclic behavior remain insufficiently clarified, resulting in uncertainty in geotechnical design for volcanic deposits. This study investigates the mechanical characteristics and liquefaction resistance of pumice sand obtained from Miyakonojo City, Miyazaki Prefecture, Kyushu, Japan. A comprehensive laboratory testing program was conducted, including chemical analysis, single-particle strength tests, one-dimensional consolidation compression tests, static and cyclic triaxial tests. The results show that the tested pumice sand is predominantly composed of silica (SiO 2 ) and has considerably lower particle strength than conventional sands such as Toyoura sand and carbonate sand, confirming its highly crushable nature. The consolidation response indicates a yield stress intermediate between typical sand and clay-like behavior, reflecting the influence of its porous particle structure. Static triaxial tests reveal that particle crushing is more pronounced under drained conditions than under undrained conditions. Cyclic triaxial tests further demonstrate that liquefaction resistance is governed by relative density and confining pressure, with denser specimens requiring a greater number of loading cycles to reach liquefaction. In addition, lower confining pressure results in higher apparent liquefaction resistance, which may be attributed to reduced particle crushing during cyclic loading. These findings clarify the distinctive mechanical response of pumice sand and provide an experimental basis for improving liquefaction assessment and geotechnical design in volcanic regions.

SOILS AND FOUNDATIONSVol. 66(5)
Kyushu University (JP), Okayama University (JP), Universitas Gadjah Mada (ID), Warmadewa University (ID), National Institute for Land and Infrastructure Management (JP)
Ministry of Education, Culture, Sports, Science and Technology, Japan International Cooperation Agency
Climate action
Openalex Percentile: Top 17%
Geotechnical Engineering and Soil Mechanics
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