Study of Safety Auxiliary Facilities to Prevent the Start-Up Failure of Large Axial Flow Pump Systems under Gate Failure Working Conditions
Abstract
:1. Introduction
2. Research Object
2.1. LAPS Model
2.2. Safety Auxiliary Facilities
3. Numerical Schemes and Experimental Setup
3.1. Mathematical Equations and Methods
3.2. Simulation Strategy and Simulation Model
3.3. Experimental Platform and Experimental Model
4. Model Validation
4.1. Steady-State Simulation Verification
4.2. Transient Simulation Verification
5. Results and Discussion
5.1. Gate Refusal Working Condition Equipped with OVHO
5.2. Gate Refusal Working Conditions Equipped with FLVA
5.3. Gate Refusal Working Conditions with Both FLVA and OVHO
5.4. Gate Refusal Working Condition and Limited FLVA Area
5.5. Gate Refusal Working Condition and Limited OVHO Height
5.6. Analysis of Different Safety Auxiliary Facilities to Prevent Starting Failure
6. Conclusions
- Auxiliary OVHO or FLVA equipment can help LAPS in reducing risks that may occur during start-up failure to some extent under gate refusal working conditions. The LAPSs equipped with FLVA or OVHO are basically free from backflow during start-up operations. Moreover, the time periods with respect to FLVA or OVHO assist LAPS’s outflow and are minimally influenced by FLVA’s area or OVHO’s elevation;
- Under the gate refusal working condition, when Pis during the start-up process is reduced by setting up safety auxiliary facilities, LAPS falls into the saddle area after start-up operations are completed, and the start-up is unstable. When equipped with only one type of safety aid, setting an FLVA measuring 2.0 m2 or 6.75-meter elevation OVHO will cause the flow corresponding to the LAPS’s transition to behave in a steady-state manner and to fall within the flow range of the saddle’s zone;
- The FLVA will play the main protective role during the start-up operation of the LAPS if the LAPS is equipped with both an OVHO and FLVA of unrestricted size under the gate refusal condition. The LAPS equipped with OVHO (1.27 Hm) and FLVA (49.1% Ag) and the LAPS equipped with FLVA (49.1% Ag) both exhibit comparable safe start-up operations. The latter has an His of 1.783 Hr and a Pis of 1.30 Pr. The former has an instantaneous shock head of 1.772 Hr and a Pis of 1.30 Pr, which exhibit decreases of 0.38% and 0%, respectively;
- When the size of a safety aid is limited, other safety aids can be further equipped to avoid the failure of LAPS activations under gate refusal working conditions. When the FLVA’s size is severely limited, possessing an OVHO below 1.09 Hm in elevation will ensure the safety of the LAPS’s start-up process. When the OVHO’s size is severely limited, an FLVA with more than 2.0 m2 (15% Ag) will ensure the safety of the LAPS’s start-up process.
Author Contributions
Funding
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Nomenclature
Qr | The design flow (m3/s) |
Hr | The design net head (m) |
Hm | The maximum net head (m) |
D | The impeller diameter (m) |
nr | The rated speed (r/min) |
Ji | The inertia moment of the LAPS (kg·m2) |
Jm | The motor’s moment of inertia (m3/s) |
PM | The motor’s maximum power (kW) |
Ag | The fast gate area (m2) |
g | Local acceleration of gravity (m/s2) |
H | Head (m) |
n | Rated speed (r/min) |
t | Time (s) |
ρ | The density of flow (kg/m3) |
Pr | The motor design power (kW) |
Mr | The design impeller torque |
ηexp | Experimental Efficiency (%) |
ηsim | Simulated Efficiency (%) |
Pis | Instantaneous shock power (kW) |
His | Instantaneous shock head (m) |
Hexp | Experimental head (m) |
Hsim | Simulated head (m) |
Qus | Unit synchronous speed flow (m3/s) |
Qsc | Unit start-up completion flow (m3/s) |
Abbreviations | |
CFD | Computational fluid dynamics |
LAPS | Large axial flow pump station system |
FLVA | Flap value |
OVHO | Overflow hole |
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Area (m2) | Mass (kg) | Volume (m3) | Moment of Inertia (kg∙m2) |
---|---|---|---|
1.0 | 391 | 0.050 | 124 |
2.0 | 783 | 0.100 | 498 |
3.5 | 1370 | 0.175 | 1528 |
5.0 | 1958 | 0.250 | 3118 |
6.5 | 2546 | 0.325 | 5270 |
(a) FLVA | |||
Elevation (m) | Diameter (m) | ||
5.55 | 1.5 | ||
5.85 | 1.5 | ||
6.15 | 1.5 | ||
6.45 | 1.5 | ||
6.75 | 1.5 | ||
(b) OVHO |
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Zhang, X.; Yang, C.; Song, X.; Tang, F.; Hu, C.; Yang, F.; Shi, L. Study of Safety Auxiliary Facilities to Prevent the Start-Up Failure of Large Axial Flow Pump Systems under Gate Failure Working Conditions. J. Mar. Sci. Eng. 2023, 11, 220. https://doi.org/10.3390/jmse11010220
Zhang X, Yang C, Song X, Tang F, Hu C, Yang F, Shi L. Study of Safety Auxiliary Facilities to Prevent the Start-Up Failure of Large Axial Flow Pump Systems under Gate Failure Working Conditions. Journal of Marine Science and Engineering. 2023; 11(1):220. https://doi.org/10.3390/jmse11010220
Chicago/Turabian StyleZhang, Xiaowen, Chenglin Yang, Xijie Song, Fangping Tang, Chongyang Hu, Fan Yang, and Lijian Shi. 2023. "Study of Safety Auxiliary Facilities to Prevent the Start-Up Failure of Large Axial Flow Pump Systems under Gate Failure Working Conditions" Journal of Marine Science and Engineering 11, no. 1: 220. https://doi.org/10.3390/jmse11010220
APA StyleZhang, X., Yang, C., Song, X., Tang, F., Hu, C., Yang, F., & Shi, L. (2023). Study of Safety Auxiliary Facilities to Prevent the Start-Up Failure of Large Axial Flow Pump Systems under Gate Failure Working Conditions. Journal of Marine Science and Engineering, 11(1), 220. https://doi.org/10.3390/jmse11010220