Heat transfer in an evaporation-condensation system in simulated weightlessness conditions
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BOLOGA, M., GROSU, Fiodor, KOZHEVNIKOV, Igor, MOTORIN, Oleg, POLIKARPOV, Albert. Heat transfer in an evaporation-condensation system in simulated weightlessness conditions. In: Journal of Physics: Conference Series, Ed. 1, 9-11 octombrie 2017, Moscova. Bristol, United Kingdom: Institute of Physics Publishing, 2017, Ediția 1, Vol. 891, pp. 1-7. ISSN 17426588. DOI: https://doi.org/10.1088/1742-6596/891/1/012012
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Journal of Physics: Conference Series
Ediția 1, Vol. 891, 2017
Masa rotundă "International Conference on Problems of Thermal Physics and Power Engineering 2017"
1, Moscova, Rusia, 9-11 octombrie 2017

Heat transfer in an evaporation-condensation system in simulated weightlessness conditions

DOI:https://doi.org/10.1088/1742-6596/891/1/012012

Pag. 1-7

Bologa M., Grosu Fiodor, Kozhevnikov Igor, Motorin Oleg, Polikarpov Albert
 
Institute of Applied Physics, Academy of Sciences of Moldova
 
 
Disponibil în IBN: 25 februarie 2022


Rezumat

The process of heat transfer in an evaporation-condensation system (ECS) at circulation of dielectric liquid in a closed thermoelectrohydrodynamic (TEHD) loop consisting of an evaporator, a condenser and electrohydrodynamic (EHD) pump for pumping of heat carrier, is considered. Previously, the authors studied the dependence of heat transfer on the angle of rotation of TEHD loop in a vertical plane. The report contains the results of studies of heat transfer at electrohydrodynamic pumping of the heat carrier (8% solution of acetone in Freon 113) in the condenser area by means of EHD pump of "cone-cone" type. All elements of the ECS are arranged in a horizontal plane and the heat transfer from the heater to the condenser without EHD pumping is impossible. A pulsating heat carrier flow mode, depending on the heat input and the voltage applied to the pump, takes place at EHD pumping. As the input power is decreasing the frequency of the coolant pulsations as well as the departure diameter and number of vapour bubbles are also decreasing. At some critical heat input the pulsations disappear and the transition from turbulent mode to the laminar one takes place causing the decrease of the heat transfer coefficient. The increase of the pumping flow rate by raising the voltage applied to the EHD pump, results in a partial suppression of boiling. The maximum intensification of heat transfer is reached at pulsation frequency of 1.25 Hz. The maximum heat flow from the heater was 4.2•104 W/m2. Graphical representation and the physical interpretation of the results, which reflect the essence of the process, are given. 

Cuvinte-cheie
Acetone, Condensation, Dielectric liquids, electrohydrodynamics, evaporation, Pumps