Technical Papers
Dec 27, 2023

Numerical Investigation on the Grouting Penetration Process of Quick-Setting Grout in Discrete Fractured Rock Mass Based on the Combined Finite–Discrete-Element Method

Publication: International Journal of Geomechanics
Volume 24, Issue 3

Abstract

In this study, a combined finite–discrete-element method (FDEM)-based grouting simulator, in which the effect of time-dependent rheological characteristic caused by grout hydration on grouting penetration is adequately considered, was developed for more accurately modeling the grouting penetration process in the fractured rock mass, especially for quick-setting grout. To implement the grouting penetration process, the time-dependent Bingham model for characterizing the time-dependent rheological characteristic of grout, the flow network searching algorithm combining with the grout flow solver for solving the grout flow, and the hydromechanical (HM) coupling algorithm for characterizing the grout–rock interaction were systematically integrated into the FDEM framework. After that, to validate the developed simulator for modeling the grouting penetration of time-dependent Bingham grout and the grout–rock interaction, two benchmark tests were conducted. Finally, to further demonstrate the capability of the developed simulator, the rheological model for characterizing the cement and sodium silicate (C–S) grout, a quick-setting grout, was embedded in the simulator to simulate the grouting penetration process in the discrete fracture network. The results indicated that the developed simulator can accurately capture the effect of time-dependent rheological characteristic caused by grout hydration on the grouting penetration process. As the water–cement ratio (W/C) increased or the cement–sodium silicate (C/S) ratio decreased, both the penetration rate and grouting ratio increased significantly. Increasing the W/C ratio was more effective than decreasing the C/S ratio to increase the penetration range. Decreasing the C/S ratio can increase the grouting penetration range more significantly than increasing the grouting pressure.

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Data Availability Statement

All data and models that support the findings of this study are available from the corresponding author upon reasonable request.

Acknowledgments

This work was supported by the National Natural Science Foundation of China (Major Program) (No. U22A20234), the National Natural Science Foundation of China (Nos. 52278412, 42077246, 41941018, and U21A20153), and the Guangdong Basic and Applied Basic Research Foundation (No. 2021A1515110304). The authors are grateful for this financial support.

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Go to International Journal of Geomechanics
International Journal of Geomechanics
Volume 24Issue 3March 2024

History

Received: May 25, 2023
Accepted: Sep 10, 2023
Published online: Dec 27, 2023
Published in print: Mar 1, 2024
Discussion open until: May 27, 2024

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Xiuliang Yin [email protected]
Ph.D. Candidate, School of Civil Engineering, Wuhan Univ., Wuhan 430072, China. Email: [email protected]
Professor, School of Civil Engineering, Wuhan Univ., Wuhan 430072, China (corresponding author). ORCID: https://orcid.org/0000-0001-7475-660X. Email: [email protected]; [email protected]
Xiangyu Xu, Ph.D. [email protected]
School of Civil Engineering, Wuhan Univ., Wuhan 430072, China; Wuhan Univ. Shenzhen Research Institute, Shenzhen 518057, China. Email: [email protected]
Associate Researcher, School of Civil Engineering, Wuhan Univ., Wuhan 430072, China. Email: [email protected]
Quansheng Liu [email protected]
Professor, School of Civil Engineering, Wuhan Univ., Wuhan 430072, China. Email: [email protected]

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