Self-Circulating Evaporative Cooling System of a Rotor and Its Experimental Verification
Abstract
:1. Introduction
2. Thermal Hydraulics Model of Self-Circulating Evaporative Cooling System of Rotor
2.1. The Structural Topology
2.2. The Governing Equations
2.3. Evaluation of the Cooling System
3. Materials and Methods
3.1. Experimental Platform Design
3.2. The Experimental Process
4. Results and Discussion
4.1. The Results of Air-Cooled Stage
4.2. The Results of Phase Change Cooling Stage
4.2.1. Characteristics of Temperature
4.2.2. Calculation of Boiling Heat Transfer Coefficient
4.2.3. Characteristics of Pressure
4.3. Advantages of Rotor Evaporative Cooling Systems
4.3.1. Large Heat Transfer Coefficient
4.3.2. Relatively Low Pressure
5. Conclusions
- A new concept for an evaporative cooling system for the rotor of the hydro generator is presented. Based on the analysis of principle, it can be used to maintain the temperature of the pole coil;
- It is proved that the rotor evaporative cooling system can provide a much higher heat dissipation capacity. In the air-cooling test, the temperature rise of the heating plate is up to 80 °C under the heat flux of less than 2700 W/m2. In the phase change cooling test, the temperature rise is only 40–50 °C even if the heat flux increases to 40,000 W/m2;
- A calculation formula of Nusselt number of vertical wall boiling heat transfer under a rotating state is obtained by nonlinear regression analysis. Under experimental conditions, the accuracy of the heat transfer coefficient can reach 25%;
- The heat transfer coefficient of phase change cooling is up to 300 times that of air cooling. This has a good effect on reducing the height of the pole body, improving mechanical strength and reducing magnetic leakage;
- The pressure of the rotor evaporative cooling system does not rise monotonously with the increase of rotational speed. This is very advantageous in terms of craftsmanship.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Nomenclature
∆T | Temperature difference between the hot wall surface and the coolant, °C |
Centrifugal acceleration, m/s2 | |
Width of the pole coil | |
Bo | Boiling number |
Velocity, m/s | |
Fr | Froude number |
Acceleration of gravity, m/s2 | |
Gr | Grashof Number |
Heat transfer coefficient, W/(m2K) | |
j | Current density, A/mm2 |
Axial position, m | |
Revolving speed, rev/min | |
Nu | Nusselt number |
Heat flux, W/m2 | |
Radial position, m | |
Re | Reynolds number |
Internal energy, J | |
specific volume, m3/Kg | |
Work, J | |
α, β | Corner markers used to represent the beginning and end of one stage |
Electrical conductivity of the conductor, S/m | |
Liquid density, Kg/m3 | |
Gas density, Kg/m3 |
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Device | Range | Accuracy |
---|---|---|
Speed measuring instrument | 0~500 rpm | 0.25% |
AC voltage transmitter | 0~5 V | 0.5% |
AC current transmitter | 0~200 A | 0.5% |
RTD | 0~200 °C | A level |
Micro Pressure Sensor | −50~100 kPa | 0.1% |
Variable | Unit | Value | ||||
---|---|---|---|---|---|---|
Air-Cooling | Evaporate-Cooling | |||||
Revolving Speed | rev/min | 180 | 60.0 | 100 | 140 | 180 |
Heat Flux | W/m2 | Adjust the value so that the wall temperature reaches the value of 100 °C | 10,000 | 20,000 | 30,000 | 40,000 |
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Wang, Y.; Ruan, L. Self-Circulating Evaporative Cooling System of a Rotor and Its Experimental Verification. Processes 2022, 10, 934. https://doi.org/10.3390/pr10050934
Wang Y, Ruan L. Self-Circulating Evaporative Cooling System of a Rotor and Its Experimental Verification. Processes. 2022; 10(5):934. https://doi.org/10.3390/pr10050934
Chicago/Turabian StyleWang, Yu, and Lin Ruan. 2022. "Self-Circulating Evaporative Cooling System of a Rotor and Its Experimental Verification" Processes 10, no. 5: 934. https://doi.org/10.3390/pr10050934
APA StyleWang, Y., & Ruan, L. (2022). Self-Circulating Evaporative Cooling System of a Rotor and Its Experimental Verification. Processes, 10(5), 934. https://doi.org/10.3390/pr10050934