Study on Catastrophe Mechanisms of Wind Turbine Foundation in Goaf Site
Abstract
1. Introduction
- (1)
- Different discriminant criteria are employed to calculate the influence depth of the wind turbine load, followed by an analysis of the stability of the goaf site in the study area. Based on the calculation method for goaf foundation deformation, the theoretical value of foundation deformation under the wind turbine load is determined.
- (2)
- Based on the similarity theorem, a 1:100 similarity model test of a wind turbine foundation at a coal mine goaf site has been established. The results of the model test are analyzed to examine the changes in foundation displacement, foundation inclination angle, foundation bottom pressure, and soil pressure at various depths under different wind speed conditions.
- (3)
- The ABAQUS numerical simulation software is employed to develop a numerical model of the wind turbine foundation at a goaf site. This simulation reproduces the failure process of the wind turbine foundation, the distribution of foundation stress, and the failure and deformation of the overburden rock in the goaf site. Furthermore, the disaster mechanism of the wind turbine foundation at the goaf site is analyzed. The results of the numerical simulation are compared with data obtained from model tests to verify the reliability of the findings.
2. Materials and Methods
2.1. Suitability Analysis of Foundation in Goaf Site of Wind Turbine
2.1.1. Engineering Overview
2.1.2. Calculation of Safety Distance
- (1)
- Load Influence Depth
- (2)
- Overburden failure height
- (3)
- Safety distance
2.1.3. Foundation Deformation Calculation
- (1)
- Compression deformation of strata
- (2)
- Surface residual deformation
- (3)
- Activation deformation of foundation
2.2. Model Test of Foundation Interaction in Goaf of Wind Turbine
2.2.1. Similar Model Test Design
2.2.2. Similar Model Making
2.3. Subsection Numerical Simulation of Foundation Disaster Mechanism in Goaf of Wind Turbine
2.3.1. Establishment of Numerical Model
2.3.2. Model Parameter Selection
3. Results
3.1. Analysis of Model Test Results
3.1.1. Displacement Analysis
3.1.2. Dip Analysis
3.1.3. Earth Pressure Analysis
3.2. Analysis of Numerical Simulation Results
3.2.1. Vertical Displacement
3.2.2. Foundation Dip Angle
3.2.3. Foundation Stress Analysis
3.3. Comparative Analysis of Model Test and Numerical Simulation Results
3.3.1. Vertical Displacement
3.3.2. Tilt Comparison
4. Discussion
5. Conclusions
- (1)
- Based on the additional stress method and various discriminant criteria, the load influence depth of the wind turbine under extreme wind speed conditions is determined to be 13.5 m. According to the engineering geological data of the goaf, the development height of the caving fracture zone in the goaf is calculated to be 62.8 m. By combining the results of the load influence depth calculation with the caving height of the overburden rock and the safety distance calculation formula, the safety distance of the goaf above the coal seam is established as 11.9 m. Consequently, it is concluded that the load exerted by the wind turbine will not activate the foundation in the goaf, ensuring that the foundation remains in a stable state.
- (2)
- The model test results indicate that the maximum settlement values of the foundation under rated wind speed and extreme wind speed conditions are 0.16 mm and 0.35 mm, respectively, with corresponding foundation inclination angles of 0.04° and 0.18°. As loading cycles increase, the uneven distribution of pressure at the bottom of the foundation progressively expands. At the conclusion of the loading phase, the pressure difference between the two sides of the foundation under rated wind speed is 95.3 kPa, while under extreme wind speed, it is 139 kPa, approximately 1.5 times greater than that under rated wind speed. This demonstrates that extreme wind speed significantly affects the distribution of base pressure, leading to a gradual increase in uneven settlement of the foundation, which may ultimately result in foundation capsize, thereby posing a substantial threat to the safety of the wind turbine.
- (3)
- Under the influence of horizontal dynamic load, the rate of change in soil pressure at the C1 survey line with depth is lower than that at the C2 and C3 survey lines. Additionally, the soil pressure across all three survey lines decreases with increasing depth, indicating a diffusion phenomenon in the transmission of the upper load within the foundation. At the rated wind speed, the soil pressure at the C3 survey line exhibits the largest attenuation rate with depth, approximately 2.4 times greater than that of the C1 survey line. Conversely, under extreme wind speed conditions, the earth pressure at the C1 survey line reaches nearly 0 at a depth of 8 m, while the C2 and C3 survey lines maintain significant earth pressure at the same depth. This suggests that the dynamic load causes a substantial disturbance depth on the leeward side of the foundation.
- (4)
- Using a numerical simulation, the catastrophic mechanism of the foundation under extreme wind speed conditions was analyzed, and the numerical simulation results were compared with those from model tests. It is found that the overall trend of the data curves obtained from the two different research methods is consistent. The magnitude of the wind load is closely related to the settlement deformation of the foundation and the presence of voids beneath it. When the wind load is small, both the windward and leeward sides of the foundation exhibit downward vertical displacement. However, as the wind load increases to a certain threshold, a void phenomenon occurs on the windward side of the foundation, leading to a rapid increase in the inclination angle of the foundation.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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| Working Condition | Horizontal Force/kN | Vertical Force/kN | Bending Moment /kN·m |
|---|---|---|---|
| rated wind speed | 487.16 | 3382 | 40,093.27 |
| extreme wind speed | 722.56 | 3361 | 59,466.69 |
| Soil Layer Number | Soil Layer Name | Soil Layer Thickness/m | Gravity/m | Modulus of Compression/MPa |
|---|---|---|---|---|
| ① | loess | 13 | 19.2 | 8.9 |
| ② | mudstone | 8 | 25 | 25.8 |
| ③ | sandy mudstone | 9 | 25.6 | 33.1 |
| zi/m | zi/b | l/b | Esi/MPa | Point 1 | Point 2 | ||||
|---|---|---|---|---|---|---|---|---|---|
| i | Δsi/mm | ∑Δsi/mm | i | Δsi/mm | ∑Δsi/mm | ||||
| 5 | 0.34 | 0.55 | 8.9 | 0.0228 | 1.24 | 1.24 | 0.2193 | 11.88 | 11.88 |
| 10 | 0.69 | 0.55 | 8.9 | 0.0364 | 2.71 | 3.95 | 0.1853 | 8.19 | 20.07 |
| 14 | 0.96 | 0.55 | 25.8 | 0.0406 | 0.76 | 4.71 | 0.1617 | 1.53 | 21.6 |
| 18 | 1.23 | 0.55 | 25.8 | 0.0416 | 0.67 | 5.38 | 0.1419 | 1.09 | 22.69 |
| 21 | 1.44 | 0.55 | 33.1 | 0.0411 | 0.33 | 5.71 | 0.1292 | 0.46 | 23.15 |
| zi/m | zi/b | l/b | Esi/MPa | Point 1 | Point 2 | ||||
|---|---|---|---|---|---|---|---|---|---|
| i | Δsi/mm | ∑Δsi/mm | i | Δsi/mm | ∑Δsi/mm | ||||
| 5 | 0.42 | 0.66 | 8.9 | 0.0282 | 2.56 | 2.56 | 0.2500 | 19.46 | 19.46 |
| 10 | 0.84 | 0.66 | 8.9 | 0.0421 | 5.09 | 7.65 | 0.2142 | 12.79 | 32.25 |
| 14 | 1.18 | 0.66 | 25.8 | 0.0454 | 1.35 | 9 | 0.1775 | 2.22 | 34.47 |
| 18 | 1.52 | 0.66 | 25.8 | 0.0449 | 1.08 | 10.08 | 0.1521 | 1.54 | 36.01 |
| Parameter | Sign | Numerical Value | Unit | Parameter | Sign | Numerical Value | Unit |
|---|---|---|---|---|---|---|---|
| hub height | Hg | 82 | m | cut-in wind speed | vm | 2.5 | m/s |
| impeller diameter | Dl | 113 | m | cut-out wind speed | vd | 19 | m/s |
| depth of foundation | d | 3.3 | m | rated wind speed | vp | 9 | m/s |
| diameter of foundation bottom | D | 19 | m | the upper structure quality | M1 | 132.6 | t |
| tower bottom diameter | Dg | 4.3 | m | quality of tower | M2 | 178.3 | t |
| upper diameter of tower | Da | 3.3 | m | quality of the foundation | M3 | 1093.7 | t |
| Physical Quantity | Dimension | Unit | Ratio of Similitude | Physical Quantity | Dimension | Unit | Ratio of Similitude |
|---|---|---|---|---|---|---|---|
| geometrical dimension | [L] | m | 1/100 | concentrated force | [M][L][T]−2 | kN | 1/1002 |
| density | [M][L]−3 | kg·m−3 | 1/1.5 | surface loads | [M][L]−1[T]−2 | kPa | 1/1 |
| acceleration | [L][T]−2 | m·s−2 | 1/1 | time | [T] | s | 1/10 |
| elastic modulus | [M][L]−1[T]−2 | MPa | 1/1 | frequency | [T]−1 | Hz | 10/1 |
| Lithologic Characters | Thickness/m | Volumetric Weight/kN·m−3 | Elastic Modulus/GPa | Tensile Strength/MPa | Compressive Strength/MPa | Proportion Number | Similar Material Quality/kg | ||||
|---|---|---|---|---|---|---|---|---|---|---|---|
| Sand | Lime | Gypsum | Water | Borax | |||||||
| loess | 12 | 18 | 0.30 | / | / | 573 | 40.41 | 5.66 | 2.42 | 5.39 | 0.054 |
| mudstone | 11 | 25.6 | 12.1 | 1.7 | 15.8 | 437 | 55.17 | 4.14 | 9.65 | 7.66 | 0.077 |
| sandy mudstone | 7 | 25.8 | 18.5 | 2.8 | 26.4 | 773 | 66.90 | 6.69 | 2.87 | 8.49 | 0.085 |
| limestone | 10 | 28 | 51.3 | 9 | 83.6 | 337 | 56.57 | 5.66 | 13.20 | 8.38 | 0.084 |
| mudstone | 12 | 25.6 | 12.1 | 1.7 | 15.8 | 437 | 77.24 | 5.79 | 13.52 | 10.73 | 0.107 |
| medium grained sandstone | 7 | 26.6 | 29.8 | 3.3 | 34.6 | 664 | 42.99 | 4.30 | 2.87 | 5.57 | 0.056 |
| mudstone | 9 | 25.6 | 12.1 | 1.7 | 15.8 | 437 | 55.17 | 4.14 | 9.65 | 7.66 | 0.077 |
| sandy mudstone | 8 | 25.8 | 18.5 | 2.8 | 26.4 | 955 | 51.01 | 2.83 | 2.83 | 6.30 | 0.063 |
| mudstone | 10 | 25.6 | 12.1 | 1.7 | 15.8 | 437 | 44.14 | 3.31 | 7.72 | 6.13 | 0.061 |
| coal | 4 | 14 | 2.3 | 1.03 | 8.26 | 673 | 12.93 | 1.51 | 0.65 | 1.68 | 0.017 |
| Name | Density/kg·m−3 | Elastic Modulus/MPa | Poisson Ratio | Angle of Internal Friction/° | Force of Cohesion/kPa |
|---|---|---|---|---|---|
| wind turbine foundation | 2550 | 32 | 0.2 | ||
| foundation ring | 7850 | 210 | 0.3 | ||
| cushion | 2430 | 20 | 0.2 | ||
| loess | 1920 | 60 | 0.21 | 26 | 31 |
| mudstone | 2200 | 5500 | 0.19 | 25 | 1560 |
| sandy mudstone | 2100 | 5700 | 0.23 | 26 | 2730 |
| limestone | 2600 | 4700 | 0.2 | 40 | 10,000 |
| medium grained sandstone | 1960 | 4500 | 0.2 | 22 | 2500 |
| coal | 1400 | 1000 | 0.3 | 23 | 530 |
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Jia, S.; Yang, Q.; Feng, W.; Wang, G.; Wang, L. Study on Catastrophe Mechanisms of Wind Turbine Foundation in Goaf Site. Processes 2026, 14, 847. https://doi.org/10.3390/pr14050847
Jia S, Yang Q, Feng W, Wang G, Wang L. Study on Catastrophe Mechanisms of Wind Turbine Foundation in Goaf Site. Processes. 2026; 14(5):847. https://doi.org/10.3390/pr14050847
Chicago/Turabian StyleJia, Shengjin, Quanwei Yang, Wenkai Feng, Gang Wang, and Lujun Wang. 2026. "Study on Catastrophe Mechanisms of Wind Turbine Foundation in Goaf Site" Processes 14, no. 5: 847. https://doi.org/10.3390/pr14050847
APA StyleJia, S., Yang, Q., Feng, W., Wang, G., & Wang, L. (2026). Study on Catastrophe Mechanisms of Wind Turbine Foundation in Goaf Site. Processes, 14(5), 847. https://doi.org/10.3390/pr14050847
