Micropile–anchor composite structures (MACSs) are effective in slope stabilisation by combining the active resistance of anchor cables with the passive reinforcement of micropiles. However, the reinforcement mechanism of MACS under prototype conditions remains unclear, as existing studies have focused on small-scale 1-g model tests. This study conducted three centrifuge model tests on soil slopes reinforced with double-row micropiles and double/single-row MACS, respectively, based on a highway slope in Shandong, China. The development of earth pressure, pile bending moment, anchor axial force, and slope deformation was systematically analysed, and crack propagation and failure characteristics were examined. The results demonstrate that MACS significantly improve slope performance by reducing earth pressure and restricting deformation. Lateral earth pressure is redistributed between front and rear micropile rows, and load sharing is affected by reinforcement configuration. Anchor cables enhance the plastic deformation capacity of slopes and inhibit surface crack growth, while double-row micropiles obstruct sliding surface coalescence. Furthermore, micropiles row influence slope deformation at the failure stage, with double-row MACS-reinforced slopes remaining stable with minor surface cracks, whereas single-row MACS-reinforced slopes fail as crushed blocks along a circular sliding surface initiated by main cracks. These findings contribute to understanding the reinforcement mechanism of MACS.
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18 May 2026
Research Article|
March 17 2026
Centrifuge model test on soil slopes reinforced with micropile–anchor composite structure
Xiangzhen Qin;
Xiangzhen Qin
Department of Geological and Hydraulic Engineering, College of Civil Engineering,
Tongji University
, Shanghai, China
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Jianfeng Chen;
Department of Geological and Hydraulic Engineering, College of Civil Engineering,
Tongji University
, Shanghai, China
Corresponding author Jianfeng Chen (jf_chen@tongji.edu.cn)
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Ning Bao;
Ning Bao
Department of Geological and Hydraulic Engineering, College of Civil Engineering,
Tongji University
, Shanghai, China
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Ming Peng;
Ming Peng
Department of Geological and Hydraulic Engineering, College of Civil Engineering,
Tongji University
, Shanghai, China
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Hui Qi
Hui Qi
School of Qilu Transportation,
Shandong University
, Jinan, China
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Corresponding author Jianfeng Chen (jf_chen@tongji.edu.cn)
Competing interests The authors have no competing interests to declare that are relevant to the content of this article.
Publisher: Emerald Publishing
Received:
August 02 2025
Accepted:
January 22 2026
Online ISSN: 2042-6550
Print ISSN: 1346-213X
Funding
Funding Group:
- Award Group:
- Funder(s): National Natural Science Foundation of China
- Award Id(s): U24A20170
- Funder(s):
- Funding Statement(s): Funding was received from the National Natural Science Foundation of China under Grant No. U24A20170.
© 2026 Emerald Publishing Limited
2026
Emerald Publishing Limited
Licensed re-use rights only
International Journal of Physical Modelling in Geotechnics (2026) 26 (3): 136–152.
Article history
Received:
August 02 2025
Accepted:
January 22 2026
Citation
Qin X, Chen J, Bao N, Peng M, Qi H (2026), "Centrifuge model test on soil slopes reinforced with micropile–anchor composite structure". International Journal of Physical Modelling in Geotechnics, Vol. 26 No. 3 pp. 136–152, doi: https://doi.org/10.1680/jphmg.25.00045
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