Temperature Field and Stress Analysis of the Heavy-Concrete Transfer–Purge Chamber of the Nuclear Power Plant
Abstract
:1. Introduction
2. Basic Theory of Heat Transfer
3. FE Model
3.1. Material Parameters
- (1)
- (2)
- The steel plates and studs have a modulus of elasticity of 102,000 MPa, a linear expansion coefficient of 1.2 × 10−5/°C [20], a thermal conductivity of 36.7 W/(m∙k), a specific heat capacity of 531 J/(kg∙k) [21], and an initial temperature of 20 °C. Table 1 shows the mechanical and thermal parameters of the materials.
3.2. Boundary Conditions and Constraints
4. Steady State Temperature Field under Normal Operation
4.1. Temperature Field
4.2. Temperature Stress
5. Transient-State Temperature Field under Abnormal Operation
5.1. Temperature Field
5.2. Temperature Stress
6. Conclusions
- (1)
- The effects of the temperature load are non-negligible in the design and operation of NPPs, and a temperature load could lead to the concrete cracking and the studs yielding in the TPC structure.
- (2)
- Under normal operation, the steady state temperature field significantly affects the stress and strain of the TPC structure, especially for the concrete at the TPC junction.
- (3)
- During normal operation, the temperature field of the structure changes relatively uniformly, and the temperature gradient along the direction of thickness is 0.245 ℃/cm. Regarding local changes at the connection between the transfer chamber and the cleaning chamber, the maximum tensile strain of the heavy concrete is 8.84 × 10−3, the maximum compressive strain is 2.04 × 10−3, the peak stress of the steel plate is 98.305 MPa, and the peak stress of the stud is 306.725 MPa due to the influence of wall curvature and deformation constraints.
- (4)
- After 48 h of abnormal operation, the temperatures of the inner surface of the heavy concrete of the wall, the inner steel plate of the wall, the outer surface of the heavy concrete of the wall, and the inner steel plate of the wall increase by 8.12, 8.11, 0.31, and 0.30 °C, respectively. The tensile strain of the heavy concrete of the wall increased significantly by 52.64%, and the compressive strain of the concrete increased by 67.33%. The stresses of the studs and steel plates increased by only 1.57% and 6.79%, respectively. Compared with normal operating conditions, there are significantly greater stress–strain increments for concrete than for steel plates and studs under abnormal operating conditions.
- (5)
- The distribution of stress and strain in the TPC structure is uneven under the action of temperature load, and there is a relatively serious phenomenon of temperature stress concentration. Affected by the large local curvature of the outer surface of the structure, the stress or strain levels of the outer steel plates, studs, and concrete at the connection between the transfer chamber and the cleaning chamber are even higher than those of other parts. Optimizing this junction or taking other measures to eliminate the temperature stress concentration in this part is recommended.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Parameter | C40 Hematite Concrete | Q355 Steel Plates | ML15 Studs |
---|---|---|---|
Modulus of elasticity (MPa) | 50,000 | 206,000 | 210,000 |
Poisson’s ratio | 0.30 | 0.2 | 0.2 |
Density (kg·m−3) | 3700 | 7850 | 7850 |
Yield strength (MPa) | 19.1 (compressive) 2.01 (tensile) | 345 | 270 |
Linear expansion coefficient (°C−1) | 1.0 × 10−5 | 1.2 × 10−5 | 1.2 × 10−5 |
Thermal conductivity [W/(m∙k)] | 2.85 | 36.7 | 36.7 |
Specific heat capacity [J/(kg∙k)] | 912 | 531 | 531 |
Component | Designation of Serial Node | Location of Node | Temperature under Normal Operation (°C) | Temperature after 48 h of Abnormal Operation (°C) | Temperature Variation (°C) |
---|---|---|---|---|---|
Concrete | A | Inner surface of transfer sub-chamber ceiling | 39.33 | 50.96 | 11.63 |
B | Inner surface of transfer sub-chamber wall | 32.68 | 40.81 | 8.13 | |
C | Outer surface of transfer sub-chamber wall | 9.06 | 9.37 | 0.31 | |
D | Inner surface of purge sub-chamber ceiling | 39.29 | 50.94 | 11.65 | |
E | Inner surface of purge sub-chamber wall | 32.59 | 40.70 | 8.11 | |
F | Outer surface of purge sub-chamber wall | 9.01 | 9.32 | 0.31 | |
Steel plate | G | Inner steel plate of transfer sub-chamber | 32.65 | 40.76 | 8.11 |
H | Outer steel plate of transfer sub-chamber | 9.02 | 9.33 | 0.31 | |
I | Inner steel plate of purge sub-chamber | 32.65 | 40.76 | 8.11 | |
J | Outer steel plate of purge sub-chamber | 8.98 | 9.28 | 0.30 |
Item | Normal Operation | After 48 h of Abnormal Operation | Ratio of Increase |
---|---|---|---|
Maximum tensile strain of heavy concrete of the wall | 52.64% | ||
Maximum compressive strain of heavy concrete of the wall | 67.33% | ||
Maximum von Mises stress of steel plates | 98.98 MPa | 105.70 MPa | 6.79% |
Maximum von Mises stress of studs | 306.61 MPa | 311.42 MPa | 1.57% |
Maximum tensile strain of the concrete ceiling | 47.35% | ||
Maximum compressive strain of concrete ceiling | 42.43% |
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Wang, X.; Li, X.; Liu, X.; Wang, Y.; Liu, A.; He, Q.; Hou, C. Temperature Field and Stress Analysis of the Heavy-Concrete Transfer–Purge Chamber of the Nuclear Power Plant. Materials 2023, 16, 613. https://doi.org/10.3390/ma16020613
Wang X, Li X, Liu X, Wang Y, Liu A, He Q, Hou C. Temperature Field and Stress Analysis of the Heavy-Concrete Transfer–Purge Chamber of the Nuclear Power Plant. Materials. 2023; 16(2):613. https://doi.org/10.3390/ma16020613
Chicago/Turabian StyleWang, Xiaohui, Xiaojun Li, Xuchen Liu, Yushi Wang, Aiwen Liu, Qiumei He, and Chunlin Hou. 2023. "Temperature Field and Stress Analysis of the Heavy-Concrete Transfer–Purge Chamber of the Nuclear Power Plant" Materials 16, no. 2: 613. https://doi.org/10.3390/ma16020613
APA StyleWang, X., Li, X., Liu, X., Wang, Y., Liu, A., He, Q., & Hou, C. (2023). Temperature Field and Stress Analysis of the Heavy-Concrete Transfer–Purge Chamber of the Nuclear Power Plant. Materials, 16(2), 613. https://doi.org/10.3390/ma16020613