Technical Papers
Mar 11, 2021

Bender Element Measurement for Small-Strain Shear Modulus of Compacted Loess

Publication: International Journal of Geomechanics
Volume 21, Issue 5

Abstract

This study investigated the small-strain shear modulus behavior of compacted loess under isotropic consolidation. The small-strain shear modulus was obtained from bender element tests during the isotropic consolidation. The effects of excitation frequency, stress level, and stress history on small-strain shear modulus were analyzed. The test results suggested that the excitation frequency affects the measured values of shear wave velocity. An interval of wave path length-to-wavelength ratio was proposed to select the appropriate excitation frequency. Based on the test results, the effect of the stress level and stress history on the small-strain shear modulus of normally consolidated and overconsolidated soil was examined, whereby an empirical model was proposed to characterize the variation of small-strain shear modulus. The logarithmic law relationship mitigates the limitation in existing models that the power law relationship is incapable of accurately predicting the small-strain shear modulus for cases with large overconsolidation ratios. Finally, a framework was established to account for the effects of excitation frequency, stress level, and stress history on the small-strain shear modulus of compacted loess.

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Acknowledgments

This research is supported by the NRF-NSFC 3rd Joint Research Grant (Earth Science) (Grant No. 41861144022).

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International Journal of Geomechanics
Volume 21Issue 5May 2021

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Received: Jun 18, 2020
Accepted: Dec 10, 2020
Published online: Mar 11, 2021
Published in print: May 1, 2021
Discussion open until: Aug 11, 2021

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Fangtong Wang [email protected]
Ph.D. Student, State Key Laboratory of Water Resources and Hydropower Engineering Science, Institute of Engineering Risk and Disaster Prevention, Wuhan Univ., 299 Bayi Rd., Wuhan 430072, P.R. China. Email: [email protected]
Dianqing Li [email protected]
Professor, State Key Laboratory of Water Resources and Hydropower Engineering Science, Institute of Engineering Risk and Disaster Prevention, Wuhan Univ., 299 Bayi Rd., Wuhan 430072, P.R. China (corresponding author). Email: [email protected]
Professor, State Key Laboratory of Water Resources and Hydropower Engineering Science, Institute of Engineering Risk and Disaster Prevention, Wuhan Univ., 299 Bayi Rd., Wuhan 430072, P.R. China. Email: [email protected]
Postdoctoral Researcher, State Key Laboratory of Water Resources and Hydropower Engineering Science, Institute of Engineering Risk and Disaster Prevention, Wuhan Univ., 299 Bayi Rd., Wuhan 430072, P.R. China. Email: [email protected]
Professor, State Key Laboratory of Water Resources and Hydropower Engineering Science, Institute of Engineering Risk and Disaster Prevention, Wuhan Univ., 299 Bayi Rd., Wuhan 430072, P.R. China. ORCID: https://orcid.org/0000-0003-1006-7842. Email: [email protected]

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