Numerical Study on Mechanical Characteristics of Tower Sections with Main Member Disconnection
Abstract
:1. Introduction
2. Materials and Methods
2.1. Principle of Slenderness Ratio Correction of Main Members
- (1)
- Substitute the ultimate bearing capacity of each disconnected main member obtained from the finite element calculation into formula (1) to deduce the stability coefficient of the compression φ.
- (2)
- Calculate the corrected slenderness ratio based on the stability coefficient φ value table provided in reference to DL/T 5154-2012.
- (3)
- The slenderness ratio correction coefficient of the main member can be obtained by dividing the corrected slenderness ratio derived from step (2) by the nominal slenderness ratio, as shown in Equation (2).
2.2. Tower Section Model
2.2.1. Tower Section Structure and Disconnection Design
2.2.2. Main Member Disconnection Joints
2.2.3. Load Conditions
2.2.4. Finite Element Model
3. Results and Discussion
3.1. Analysis of Finite Element Results for Axial Loading of Tower Section
3.1.1. Combination form of Inner and Outer Steel Cladding
3.1.2. Steel Cladding Area Ratio
3.2. Analysis of Finite Element Results for Tension and Compression Coupled Loading of Tower Section
3.3. Slenderness Ratio Correction Factor for Disconnection Main Members
4. Conclusions
- (1)
- Considering the same steel cladding area ratio, the ultimate bearing capacity of the main member will be affected by the combination of internal and external steel cladding on the disconnected joint. Increasing the thickness of the inner cladding will increase the stiffness at the disconnection joint position to a certain extent, thereby enhancing the ultimate bearing capacity of the main member. Therefore, the influence of the combination form of the inner and outer steel cladding on the joint should be considered when designing the disconnection joint in the main member of the transmission tower.
- (2)
- The ultimate bearing capacity of the main member increases significantly at first and then slowly with the steel cladding area ratio set to 1.0 as the boundary. When the area ratio of steel cladding is greater than or equal to 1.0, the disconnection joint can improve the ultimate bearing capacity of the main member. Especially, the most significant improvement in the ultimate bearing capacity of the main member is achieved when the disconnection joint is located at the middle end of the main member. It is recommended that the middle end of the main member can be chosen as the disconnection position, and the steel cladding area ratio at the disconnection joint can be set to 1.0.
- (3)
- The mode of tower section instability is out-of-plane deformation, and the disconnection joint in the main member reduces the stability of the tower section significantly. When there is a disconnection joint in the main member, the stability of the tower section is not affected by the location of the disconnection joint in the main member.
- (4)
- Because the ultimate bearing capacity of the main member is affected by the disconnection joint in the main member, the slenderness ratio correction coefficient formulas have been derived in this paper for the upper end disconnected main member, the middle end disconnected main member, and the lower end disconnected main member.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Design Steel Cladding Area Ratio | Number | Internal Steel Cladding (mm) | External Pasting Plate (mm) | Main Members (mm) | Actual Steel Cladding Ratio |
---|---|---|---|---|---|
0.8 | A1 | L200 × 11 | 198 × 15 | L250 × 26 | 0.83 |
A2 | L200 × 13 | 198 × 13 | L250 × 26 | 0.83 | |
A3 | L200 × 15 | 198 × 11 | L250 × 26 | 0.82 | |
A4 | L200 × 18 | 198 × 8 | L250 × 26 | 0.82 | |
0.9 | B1 | L200 × 14 | 198 × 15 | L250 × 26 | 0.92 |
B2 | L200 × 15 | 198 × 14 | L250 × 26 | 0.92 | |
B3 | L200 × 16 | 198 × 13 | L250 × 26 | 0.92 | |
B4 | L200 × 17 | 198 × 12 | L250 × 26 | 0.91 | |
1.0 | C1 | L200 × 15 | 198 × 17 | L250 × 26 | 1.01 |
C2 | L200 × 16 | 198 × 16 | L250 × 26 | 1.01 | |
C3 | L200 × 17 | 198 × 15 | L250 × 26 | 1.01 | |
C4 | L200 × 18 | 198 × 14 | L250 × 26 | 1.01 | |
1.1 | D1 | L200 × 15 | 198 × 20 | L250 × 26 | 1.14 |
D2 | L200 × 16 | 198 × 19 | L250 × 26 | 1.11 | |
D3 | L200 × 17 | 198 × 18 | L250 × 26 | 1.11 | |
D4 | L200 × 18 | 198 × 17 | L250 × 26 | 1.10 | |
1.2 | E1 | L200 × 13 | 198 × 25 | L250 × 26 | 1.21 |
E2 | L200 × 14 | 198 × 24 | L250 × 26 | 1.21 | |
E3 | L200 × 16 | 198 × 22 | L250 × 26 | 1.21 | |
E4 | L200 × 17 | 198 × 21 | L250 × 26 | 1.20 | |
1.3 | F1 | L200 × 14 | 198 × 28 | L250 × 26 | 1.34 |
F2 | L200 × 16 | 198 × 26 | L250 × 26 | 1.33 | |
F3 | L200 × 18 | 198 × 24 | L250 × 26 | 1.33 | |
F4 | L200 × 21 | 198 × 21 | L250 × 26 | 1.32 |
Type | Steel Cladding Area Ratio | Ultimate Thrust (kN) | Out-of-Plane Displacement (mm) |
---|---|---|---|
No disconnection | non | 463.6 | 141.5 |
Upper end disconnection | 0.8 | 395.4 | 167.8 |
0.9 | 395.4 | 167.5 | |
1.0 | 395.4 | 167.4 | |
1.1 | 401.2 | 167.8 | |
1.2 | 395.4 | 168.7 | |
1.3 | 395.4 | 171.0 | |
Mid end disconnection | 0.8 | 401.0 | 167.7 |
0.9 | 401.0 | 167.7 | |
1.0 | 401.0 | 167.7 | |
1.1 | 401.0 | 167.7 | |
1.2 | 401.0 | 167.4 | |
1.3 | 401.0 | 167.2 | |
Lower end disconnection | 0.8 | 396.2 | 165.6 |
0.9 | 396.3 | 165.6 | |
1.0 | 396.3 | 165.6 | |
1.1 | 396.8 | 165.6 | |
1.2 | 396.2 | 165.6 | |
1.3 | 396.4 | 165.7 |
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Zheng, H.; Wu, C.; Liu, J.; Zhong, L.; Li, K.; Yan, Z. Numerical Study on Mechanical Characteristics of Tower Sections with Main Member Disconnection. Buildings 2024, 14, 2998. https://doi.org/10.3390/buildings14092998
Zheng H, Wu C, Liu J, Zhong L, Li K, Yan Z. Numerical Study on Mechanical Characteristics of Tower Sections with Main Member Disconnection. Buildings. 2024; 14(9):2998. https://doi.org/10.3390/buildings14092998
Chicago/Turabian StyleZheng, Hengwei, Changli Wu, Jinhong Liu, Lang Zhong, Kai Li, and Zhitao Yan. 2024. "Numerical Study on Mechanical Characteristics of Tower Sections with Main Member Disconnection" Buildings 14, no. 9: 2998. https://doi.org/10.3390/buildings14092998
APA StyleZheng, H., Wu, C., Liu, J., Zhong, L., Li, K., & Yan, Z. (2024). Numerical Study on Mechanical Characteristics of Tower Sections with Main Member Disconnection. Buildings, 14(9), 2998. https://doi.org/10.3390/buildings14092998