Bearing Capacity Analysis of the Weak Basement, Progressive Destruction Analysis, and Evaluation of the Dump on an Inclined Strip Section Using the Upper-Limit Method: A Case Study in an Anonymous Open-Cast Coal Mine
Abstract
:1. Introduction
2. The Basic Principle of the Oblique Slice Upper-Limit Method
2.1. The Basic Equation of the Upper-Limit Method
2.2. Determination of the Critical Sliding Surface
3. Project Overview
3.1. Disposal Status
3.2. Base Form
3.3. Physical and Mechanical Indicators
4. Calculation of the Ultimate Bearing Capacity of the Base of the Earthworks Using the Oblique Strip Method and Numerical Simulation
4.1. Calculation Sections
4.2. Calculation Hypothesis Conditions
4.3. Calculation of the Current Base Ultimate Bearing Capacity of the Earthworks
4.4. Analysis of Factors Affecting Base Ultimate Bearing Capacity and Stability
4.4.1. Slope Angle
4.4.2. Foundation Width B
5. Comparative Explication of Computational Results
6. Conclusions
- (1)
- The results of the slope strip upper-limit method and numerical simulation are very close, with a calculation error within 5%, and the critical sliding surface is consistent, proving the reliability of the slope strip upper-limit method in solving the ultimate bearing capacity of the soft foundation of the open-pit mine dumping ground.
- (2)
- The ultimate bearing capacity of the soft foundation of the open-pit mine dumping ground is mainly controlled by the triangular load, the current ultimate bearing capacity of the foundation is 3781 kPa, and the foundation destruction mode is along the whole shearing sliding of the foundation of the dumping ground.
- (3)
- For slopes with a height of 60–100 m, the slope base angle increases from 12° to 18°, and the foundation stability coefficient and the critical bearing capacity coefficient decrease by about 21% and 46%, respectively; when the slope height increases from 60 m to 100 m, and the slope base increases to 18°, the foundation stability coefficient and the critical bearing capacity coefficient of the slope decrease by about 2.1% and 6.6%, respectively; when the foundation width increases from 860 m to 1260 m, the foundation stability coefficient and the critical bearing capacity coefficient of the foundation increase by about 0.01% and 0.48%, respectively. It can be seen that the foundation stability coefficient and the critical bearing capacity coefficient of the slope are greatly affected by the slope angle and are relatively little affected by the slope height, and there is almost no width effect.
- (4)
- Compared with the Terzaghi method and the Prandtl method, the ultimate bearing capacity of the foundation of the dumping ground determined by the slope strip upper-limit method proposed in this paper is closer to the numerical simulation calculation results and is also more consistent with the surface uplift parts monitored by engineering practice. Adopting the slope strip upper-limit method to analyze the soft foundation of the open cast mine dumping ground can provide a more reliable reference for engineering design and construction.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Nomenclature
V | Displacement velocity of rigid body |
C | Cohesion of soil strip |
u | Pore water pressure |
Tx | The component of the external load T in the x direction |
Ty | The component of the external load T in the y direction |
T* | Limit value of bearing capacity of substrate |
L | Length of adjacent boundary surfaces |
T0 | The actual external load on the basement |
Greek Alphabets | |
φ | Internal friction angle of soil strip |
φej | Angle between soil strip and adjacent interface |
Ce, φe | Strength index reduced by safety factor Fs |
α | Positive angle between base interface and x axis |
η′ | Horizontal seismic acceleration coefficient |
η | Critical bearing coefficient |
θj | The angle between the velocity Vj and the positive x axis |
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Material | γ/kN·m−3 | E/GPa | μ | c/kPa | φ/(°) |
---|---|---|---|---|---|
Man-made deposits | 18.6 | 0.12 | 0.4 | 15.13 | 14 |
Topsoil substrate | 18.6 | 0.15 | 0.28 | 7 | 11 |
B/m | Terzaghi Method P1/kPa | Prandtl Method P2/kPa | Inclined Strip Section Upper-Limit Method P3/kPa | Finite Difference Method P4/kPa | P-S Numerical Method P5/kPa |
---|---|---|---|---|---|
330 | 1896.8 | 306.2 | 3772 | 3965 | 4000 |
380 | 2174.9 | 306.2 | 3775 | 3965 | 4000 |
430 | 2453 | 306.2 | 3780 | 3965 | 4000 |
480 | 2731.1 | 306.2 | 3781 | 3965 | 4000 |
530 | 3009.1 | 306.2 | 3775 | 3965 | 4000 |
580 | 3287.2 | 306.2 | 3783 | 3965 | 4000 |
630 | 3565.2 | 306.2 | 3779 | 3965 | 4000 |
680 | 3843.3 | 306.2 | 3780 | 3965 | 4000 |
730 | 4121.4 | 306.2 | 3781 | 3965 | 4000 |
780 | 4399.4 | 306.2 | 3780 | 3965 | 4000 |
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Hong, Y.; Du, H.; Chen, M. Bearing Capacity Analysis of the Weak Basement, Progressive Destruction Analysis, and Evaluation of the Dump on an Inclined Strip Section Using the Upper-Limit Method: A Case Study in an Anonymous Open-Cast Coal Mine. Sustainability 2023, 15, 10240. https://doi.org/10.3390/su151310240
Hong Y, Du H, Chen M. Bearing Capacity Analysis of the Weak Basement, Progressive Destruction Analysis, and Evaluation of the Dump on an Inclined Strip Section Using the Upper-Limit Method: A Case Study in an Anonymous Open-Cast Coal Mine. Sustainability. 2023; 15(13):10240. https://doi.org/10.3390/su151310240
Chicago/Turabian StyleHong, Yan, Han Du, and Mingxi Chen. 2023. "Bearing Capacity Analysis of the Weak Basement, Progressive Destruction Analysis, and Evaluation of the Dump on an Inclined Strip Section Using the Upper-Limit Method: A Case Study in an Anonymous Open-Cast Coal Mine" Sustainability 15, no. 13: 10240. https://doi.org/10.3390/su151310240
APA StyleHong, Y., Du, H., & Chen, M. (2023). Bearing Capacity Analysis of the Weak Basement, Progressive Destruction Analysis, and Evaluation of the Dump on an Inclined Strip Section Using the Upper-Limit Method: A Case Study in an Anonymous Open-Cast Coal Mine. Sustainability, 15(13), 10240. https://doi.org/10.3390/su151310240