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Simulation of Grouting Process in Rock Masses Under a Dam Foundation Characterized by a 3D Fracture Network.

Authors :
Deng, Shaohui
Wang, Xiaoling
Yu, Jia
Zhang, Yichi
Liu, Zhen
Zhu, Yushan
Source :
Rock Mechanics & Rock Engineering; Jun2018, Vol. 51 Issue 6, p1801-1822, 22p
Publication Year :
2018

Abstract

Grouting plays a crucial role in dam safety. Due to the concealment of grouting activities, complexity of fracture distribution in rock masses and rheological properties of cement grout, it is difficult to analyze the effects of grouting. In this paper, a computational fluid dynamics (CFD) simulation approach of dam foundation grouting based on a 3D fracture network model is proposed. In this approach, the 3D fracture network model, which is based on an improved bootstrap sampling method and established by VisualGeo software, can provide a reliable and accurate geometric model for CFD simulation of dam foundation grouting. Based on the model, a CFD simulation is performed, in which the Papanastasiou regularized model is used to express the grout rheological properties, and the volume of fluid technique is utilized to capture the grout fronts. Two sets of tests are performed to verify the effectiveness of the Papanastasiou regularized model. When applying the CFD simulation approach for dam foundation grouting, three technical issues can be solved: (1) collapsing potential of the fracture samples, (2) inconsistencies in the geometric model in actual fractures under complex geological conditions, and (3) inappropriate method of characterizing the rheological properties of cement grout. The applicability of the proposed approach is demonstrated by an illustrative case study—a hydropower station dam foundation in southwestern China. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
07232632
Volume :
51
Issue :
6
Database :
Complementary Index
Journal :
Rock Mechanics & Rock Engineering
Publication Type :
Academic Journal
Accession number :
129794668
Full Text :
https://doi.org/10.1007/s00603-018-1436-y