Time-Average Heat Transfer Coefficient for Steam-Air Condensation during the Dropping of Containment Pressure
Abstract
:1. Introduction
2. Experimental Facility
2.1. Details of the Facility
2.2. Experimental Procedures and Conditions
3. Results and Discussion
3.1. Time-Average Condensation Heat Transfer Coefficient
3.2. Time-Average Condensation HTC vs. Various Conditions
3.3. The Empirical Correlation
3.4. Self-Sustaining Stability
4. Conclusions
- (1)
- Time-average condensation HTC is defined to quantitatively characterize heat transfer intensity during the whole transient running of PCCS. Moreover, a detailed empirical correlation for the time-average condensation HTC is developed. The equation matches experimental data well with a fitting error of ±20%.
- (2)
- The more considerable initial gas mixture pressure and smaller air mass fraction can enhance the transient heat transfer. Moreover, the time-average HTC is more closely related to the initial air mass fraction. Thus, a simplified empirical correlation that only includes air mass fraction is also proposed to roughly predict the transient heat transfer.
- (3)
- PCCS has good self-sustaining stability. When an interference occurs during the long-term operation of PCCS, PCCS responds quickly and reruns to the new steady state.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Nomenclature
Abbreviations | |
HTC | Heat transfer coefficient |
General notation | |
A | Heat transfer area, m2 |
d | Diameter of heat transfer tube, m |
h | Heat transfer coefficient, W·m−2·K−1 |
K | Correction factor,/ |
L | Tube length, m |
P | Pressure, MPa |
q | Heat transfer rate, W |
Q | Energy, J |
T | Temperature, K |
V | Containment volume, m3 |
W | Mass fraction,/ |
Mass density, kg·m−3 | |
Time, s | |
End moment, s | |
Start moment, s | |
Wall subcooling, K | |
Subscripts | |
a | Air |
b | Containment bulk |
c | Cooling water |
i | Each moment |
s | Steam |
sta | Standard atmospheric |
t | Total |
w | Heat transfer tube wall |
0 | Initial moment |
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Parameter. | Value |
---|---|
Containment pressure, MPa | 0.2–0.6 |
Air mass fraction | 15.1–82.3% |
Coolant water temperature, °C | 25, 60, 70, 77 |
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Li, S.; Hui, K.; Ke, Z.; Li, Y. Time-Average Heat Transfer Coefficient for Steam-Air Condensation during the Dropping of Containment Pressure. Energies 2022, 15, 9034. https://doi.org/10.3390/en15239034
Li S, Hui K, Ke Z, Li Y. Time-Average Heat Transfer Coefficient for Steam-Air Condensation during the Dropping of Containment Pressure. Energies. 2022; 15(23):9034. https://doi.org/10.3390/en15239034
Chicago/Turabian StyleLi, Shaodan, Kai Hui, Zhiwu Ke, and Yong Li. 2022. "Time-Average Heat Transfer Coefficient for Steam-Air Condensation during the Dropping of Containment Pressure" Energies 15, no. 23: 9034. https://doi.org/10.3390/en15239034
APA StyleLi, S., Hui, K., Ke, Z., & Li, Y. (2022). Time-Average Heat Transfer Coefficient for Steam-Air Condensation during the Dropping of Containment Pressure. Energies, 15(23), 9034. https://doi.org/10.3390/en15239034