Shaking Table Test of a Transfer-Purge Chamber in Nuclear Island Structure
Abstract
:1. Introduction
2. Design of the Shaking Table Tests
2.1. The Prototype
2.2. Test Apparatus
2.3. Similarity Constants
2.4. The Scale Model of the Transfer-Purge Chamber
2.5. Instrumentation
2.6. Input Ground Motions and Test Cases
3. Results and Discussion
3.1. Seismic Damage
3.2. Dynamic Characteristics
3.3. Acceleration Response
3.4. Strain Response
3.4.1. Anchored Bars
3.4.2. Steel Plates
3.4.3. Concrete
4. Conclusions
- (1)
- The maximum value of PGA in the tests was 0.60 g, and the scale model structure of the transfer-purge chamber was intact without obvious deformation or damage under the ground motions. However, there are microlesions in the joint part of the transfer-purge chamber and the base. There was no obvious crack in the concrete, the steel plates did not buckle or yield, and the welds were perfect. The steel plate is firmly attached to the concrete, and the steel plate and concrete work together well. Under seismic excitation, the overhang of the transfer-purge chamber has sufficient strength and stiffness to ensure that the structure will not overturn or be seriously damaged.
- (2)
- Before the tests, the natural periods of the scale model of the transfer-purge chamber were 0.047 s in the X-direction and 0.050 s in the Y-direction. After the tests, the natural periods of the scale model of the transfer-purge chamber were 0.052 s in the X-direction and 0.051 s in the Y-direction. The natural frequencies of the transfer-purge chamber scale model exceeded 90% of the initial natural frequencies after the tests, which indicates that there was a slight decrease in stiffness of the transfer-purge chamber model structure and a microlesion in the connection of the transfer-purge chamber and the base.
- (3)
- The acceleration response of the transfer-purge chamber was not violent under the earthquake. The acceleration response gradually increased with the height of the structure. The peak acceleration amplification factors of the transfer-purge chamber had nothing to do with the PGA of the input ground motions, but it was closely related to its spectral characteristics. Under the ground motion MZQP, the acceleration response of the structure was more violent than that under the ground motions MZQP and YJ.
- (4)
- Under the excitation of large earthquakes, the peak strains of the concrete and the steel plate of the transfer-purge chamber both were small, far from reaching the yield strength of the material. From the standpoint of structural safety, the design of the transfer-purge chamber is conservative. It is suggested that the design strength of the transfer-purge chamber should be properly reduced under the condition of meeting the requirements of shielding radiation performance.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Physical Type | Physical Quantity | Similitude Relation | Similitude Ratio |
---|---|---|---|
Geometry property | Length l | 1/4.5 | |
Displacement d | 1/4.5 | ||
Material property | Elastic modulus E | 0.32 | |
Dynamic property | Density ρ | 1.2 | |
Acceleration a | 1.2 | ||
Time t | 0.43 | ||
Frequency f | 2.33 | ||
Mass m | 1.32 × 10−2 |
Sensors Name | Interpretation | Data Type |
---|---|---|
A | Piezoelectric accelerometer | Acceleration of the model |
TE | Embedded concrete strain gauge | Concrete strain |
KC | Strain gauge | Concrete strain |
GB | Strain rosette | Steel plate strain |
CJ | Strain gauge | Tie bars strain |
Ground Motions | Interpretation |
---|---|
MZQP | Acceleration record at station MZQP from Ms7.9 Wenchuan earthquake of 12 May 2008 |
MXDB | Acceleration record at station MXDB from Ms7.9 Wenchuan earthquake of 12 May 2008 |
YJ | Artificial acceleration time-history corresponding to the acceleration response spectra at the engineering site of Yangjiang nuclear power plant in China |
WN | White noise |
NO. | Test ID | Input Direction | PGA (g) |
---|---|---|---|
1 | WN-1 | X&Y&Z | 0.05:0.05:0.05 |
2 | MZQP-0.24 | X&Y&Z | 0.24:0.24:0.24 |
3 | MXDB-0.24 | X&Y&Z | 0.24:0.24:0.24 |
4 | YJ-0.24 | X&Y&Z | 0.24:0.24:0.24 |
5 | WN-2 | X&Y&Z | 0.05:0.05:0.05 |
6 | MZQP-0.36 | X&Y&Z | 0.36:0.36:0.36 |
7 | MXDB-0.36 | X&Y&Z | 0.36:0.36:0.36 |
8 | YJ-0.36 | X&Y&Z | 0.36:0.36:0.36 |
9 | WN-3 | X&Y&Z | 0.05:0.05:0.05 |
10 | MZQP-0.48 | X&Y&Z | 0.48:0.48:0.48 |
11 | MXDB-0.48 | X&Y&Z | 0.48:0.48:0.48 |
12 | YJ-0.48 | X&Y&Z | 0.48:0.48:0.48 |
13 | WN-4 | X&Y&Z | 0.05:0.05:0.05 |
14 | MZQP-0.60 | X&Y&Z | 0.60:0.60:0.60 |
15 | MXDB-0.60 | X&Y&Z | 0.60:0.60:0.60 |
16 | YJ-0.60 | X&Y&Z | 0.60:0.60:0.60 |
17 | WN-5 | X&Y&Z | 0.05:0.05:0.05 |
Ground Motion | X-Direction | Y-Direction | Z-Direction | |||
---|---|---|---|---|---|---|
Predominant Period (s) | Amplitude of Sa (g) | Predominant Period (s) | Amplitude of Sa (g) | Predominant Period (s) | Amplitude of Sa (g) | |
MZQP | 0.042 | 1.20 | 0.029 | 0.74 | 0.040 | 1.48 |
MXDB | 0.076 | 1.10 | 0.044 | 1.13 | 0.057 | 1.45 |
YJ | 0.095 | 0.98 | 0.116 | 1.17 | 0.088 | 1.11 |
Test Cases | X-Direction (E-W) | Y-Direction (N-S) | ||||||
---|---|---|---|---|---|---|---|---|
f (Hz) | T (s) | (%) | (%) | f (Hz) | T (s) | (%) | (%) | |
WN-1 | 21.30 | 0.047 | 100 | 100 | 20.20 | 0.050 | 100 | 100 |
WN-2 | 20.60 | 0.049 | 96.7 | 93.5 | 20.00 | 0.050 | 99.0 | 98.0 |
WN-3 | 19.70 | 0.051 | 92.5 | 85.6 | 19.62 | 0.051 | 97.1 | 94.4 |
WN-4 | 19.62 | 0.051 | 92.1 | 84.9 | 19.58 | 0.051 | 96.9 | 94.0 |
WN-5 | 19.40 | 0.052 | 91.1 | 83.0 | 19.58 | 0.051 | 96.9 | 94.0 |
Test Cases | X-Direction (E-W) | Y-Direction (N-S) | ||
---|---|---|---|---|
ξ (%) | (%) | ξ (%) | (%) | |
WN-1 | 2.3 | 0 | 2.3 | 0 |
WN-2 | 2.6 | 13 | 2.4 | 4.3 |
WN-3 | 3 | 30.4 | 2.6 | 13 |
WN-4 | 3.1 | 34.8 | 2.8 | 21.7 |
WN-5 | 3.1 | 34.8 | 2.8 | 21.7 |
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Liu, X.; Li, X.; Wang, X.; Wang, N.; Li, Z. Shaking Table Test of a Transfer-Purge Chamber in Nuclear Island Structure. Materials 2022, 15, 766. https://doi.org/10.3390/ma15030766
Liu X, Li X, Wang X, Wang N, Li Z. Shaking Table Test of a Transfer-Purge Chamber in Nuclear Island Structure. Materials. 2022; 15(3):766. https://doi.org/10.3390/ma15030766
Chicago/Turabian StyleLiu, Xuchen, Xiaojun Li, Xiaohui Wang, Ning Wang, and Zaixian Li. 2022. "Shaking Table Test of a Transfer-Purge Chamber in Nuclear Island Structure" Materials 15, no. 3: 766. https://doi.org/10.3390/ma15030766
APA StyleLiu, X., Li, X., Wang, X., Wang, N., & Li, Z. (2022). Shaking Table Test of a Transfer-Purge Chamber in Nuclear Island Structure. Materials, 15(3), 766. https://doi.org/10.3390/ma15030766