Visualization Study on Thermo-Hydrodynamic Behaviors of a Flat Two-Phase Thermosyphon
Abstract
:1. Introduction
2. Description of Experiment
2.1. Experimental Apparatus
2.2. Data Reduction
2.3. Experiment Procedures
- (1)
- Connect each unit of the experiment system, and then perform circuit and connection checks on every unit to ensure that the experimental system is correct.
- (2)
- Open constant-temperature water bath, and adjust the temperature and flow rate to the preset values. Turn on the high-speed CCD camera to debug the shooting effect.
- (3)
- Turn on the data acquisition instrument, and observe the temperature change until the temperature at each measuring point reaches a steady state.
- (4)
- Maintain the operation of every other piece of equipment, reset the data acquisition instrument, and record the temperature data of the temperature measurement point.
- (5)
- Observe and record the gas–liquid two-phase behavior in the confined space during the start-up and quasi-steady operation in real time. Collect the temperature data. When the change of temperature is less than 0.5 °C over 20 min, the heat balance can be considered to be reached, and the experiment for the current working condition can be finished.
- (6)
- After each working condition is completed, adjust the input voltage to zero, and keep the constant-temperature water bath cooling water circulating until the temperature falls back to the initial temperature, then perform the experiment on the next working condition.
3. Results and Discussion
3.1. Coupled Boiling and Condensation Phase Change
3.2. Effect of Heat Flux
3.3. Effect of Wick Presence
4. Conclusions
- (1)
- Contributed by the evaporation of the liquid microlayer and the heat transferring from the superheated liquid around, bubbles grow to a certain size on the evaporator surface and then depart from the surface by the combined effect of surface tension, buoyancy, and inertial force. As a result, a strong liquid disturbance caused by the bubble motions such as growth, rise, coalescence, and rupture can be observed during the experiment, which is beneficial for enhancing the phase change heat transfer processes including boiling and condensation.
- (2)
- More bubbles are generated as more nucleation sites are activated on the heated surface when the heat flux increases; therefore, the liquid disturbance is intensified and the thickness of the condensate film is thinned, leading to higher convective heat transfer and condensation heat transfer. In addition, the thermal resistance of the two-phase thermosyphon charged with water is smaller than that charged with ethanol because of lower viscosity and higher latent heat of vaporization.
- (3)
- When a wick is embedded into the cavity, more bubbles are generated and the detachment frequency is significantly increased, causing stronger liquid disturbance. Therefore, the heat is more easily transferred from the evaporator heat spot to the liquid in the cavity, leading to a decrease in the degree of superheat of the liquid. As a result, the temperature oscillation is obviously reduced.
- (4)
- As a shortcut path is constructed when a wick is used in the cavity, the backflow efficiency can be improved, resulting in the improvement of thermal performance for the flat two-phase thermosyphon.
Author Contributions
Funding
Conflicts of Interest
References
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Wang, C.; Yao, F.; Shi, J.; Wu, L.; Zhang, M. Visualization Study on Thermo-Hydrodynamic Behaviors of a Flat Two-Phase Thermosyphon. Energies 2018, 11, 2295. https://doi.org/10.3390/en11092295
Wang C, Yao F, Shi J, Wu L, Zhang M. Visualization Study on Thermo-Hydrodynamic Behaviors of a Flat Two-Phase Thermosyphon. Energies. 2018; 11(9):2295. https://doi.org/10.3390/en11092295
Chicago/Turabian StyleWang, Chao, Feng Yao, Juan Shi, Liangyu Wu, and Mengchen Zhang. 2018. "Visualization Study on Thermo-Hydrodynamic Behaviors of a Flat Two-Phase Thermosyphon" Energies 11, no. 9: 2295. https://doi.org/10.3390/en11092295
APA StyleWang, C., Yao, F., Shi, J., Wu, L., & Zhang, M. (2018). Visualization Study on Thermo-Hydrodynamic Behaviors of a Flat Two-Phase Thermosyphon. Energies, 11(9), 2295. https://doi.org/10.3390/en11092295