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Open AccessArticle
Numerical Study and Parametric Insights of Mechanized Shaft Excavation in Soft Clay
by
Sebastian Rivera
Sebastian Rivera 1,
Zeren Tang
Zeren Tang 1,
Chunjing Ma
Chunjing Ma 2,
Ba Trung Cao
Ba Trung Cao 3
and
Xian Liu
Xian Liu 1,*
1
College of Civil Engineering, Tongji University, No. 1239 Siping Road, Shanghai 200092, China
2
Guangzhou Municipal Engineering Design and Research Institute Co., Ltd., 348 Huanshi East Road, Guangzhou 510098, China
3
Institute for Structural Mechanics, Ruhr University Bochum, Universitätsstraße 150, 44801 Bochum, Germany
*
Author to whom correspondence should be addressed.
Buildings 2026, 16(10), 2045; https://doi.org/10.3390/buildings16102045 (registering DOI)
Submission received: 10 April 2026
/
Revised: 13 May 2026
/
Accepted: 18 May 2026
/
Published: 21 May 2026
Abstract
The excavation of deep shafts using Vertical Shaft Sinking Machine (VSM) technology in stratified soft soils involves complex soil-structure interaction (SSI) mechanisms that are often oversimplified by conventional numerical approaches. This study develops a robust three-dimensional numerical framework to investigate ground deformation induced by VSM operations, explicitly incorporating the phased construction sequence, segmental lining installation, and site-specific stratigraphy. The model is calibrated and validated against high-resolution field monitoring data, employing a prediction envelope approach and statistical performance metrics (RMSE and R2). The results suggest that ground response during VSM excavation is predominantly stiffness-controlled under the investigated conditions. Mobilized shear stresses remain significantly below the available soil capacity, indicating that deformation under serviceability conditions is driven by progressive strain accumulation. Horizontal displacement profiles suggest a relatively stable depth of influence, indicating that the excavation process amplifies deformations within a pre-established domain without significant deep-seated propagation. Sensitivity analyses indicate soil stiffness modules (E50,Eoed,Eur) and the SSI interface factor (Rinter) as the primary drivers of deformation magnitude. Furthermore, stratigraphic contrasts specifically clay-sand sequences, act as a mechanical filter, concentrating strains in soft layers while limiting vertical propagation through stiffer strata. The proposed framework provides a mechanically coherent basis for serviceability-oriented design, deformation prediction, and risk-mitigation strategies for mechanized shafts in saturated soft ground.
Share and Cite
MDPI and ACS Style
Rivera, S.; Tang, Z.; Ma, C.; Cao, B.T.; Liu, X.
Numerical Study and Parametric Insights of Mechanized Shaft Excavation in Soft Clay. Buildings 2026, 16, 2045.
https://doi.org/10.3390/buildings16102045
AMA Style
Rivera S, Tang Z, Ma C, Cao BT, Liu X.
Numerical Study and Parametric Insights of Mechanized Shaft Excavation in Soft Clay. Buildings. 2026; 16(10):2045.
https://doi.org/10.3390/buildings16102045
Chicago/Turabian Style
Rivera, Sebastian, Zeren Tang, Chunjing Ma, Ba Trung Cao, and Xian Liu.
2026. "Numerical Study and Parametric Insights of Mechanized Shaft Excavation in Soft Clay" Buildings 16, no. 10: 2045.
https://doi.org/10.3390/buildings16102045
APA Style
Rivera, S., Tang, Z., Ma, C., Cao, B. T., & Liu, X.
(2026). Numerical Study and Parametric Insights of Mechanized Shaft Excavation in Soft Clay. Buildings, 16(10), 2045.
https://doi.org/10.3390/buildings16102045
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