Lubrication Model for Vapor Absorption/Desorption of Hygroscopic Liquid Desiccant Droplets

Author(s):  
Zhenying Wang ◽  
George Karapetsas ◽  
Prashant Valluri ◽  
Khellil Sefiane ◽  
Yasuyuki Takata
2013 ◽  
Vol 291-294 ◽  
pp. 172-175
Author(s):  
Sun Jian

In this paper, a two-dimensional mathematical model of simultaneous heat and mass transfer of vapor absorption process in a counter-flow dehumidifier is conducted. The governing equations with different boundary and interfacial conditions describing the dehumidifying process are established. The calcium chloride solution is applied as the desiccant. The dehumidifying process between falling liquid desiccant film and process air with first, second and third boundary conditions is analyzed and calculated, respectively. Temperature distribution of the process air and desiccant solution is presented. Outlet parameters of the dehumidifier for both the process air and the desiccant solution are obtained.


Micromachines ◽  
2020 ◽  
Vol 11 (2) ◽  
pp. 193 ◽  
Author(s):  
Zhenying Wang ◽  
Daniel Orejon ◽  
Khellil Sefiane ◽  
Yasuyuki Takata

In all kinds of liquid desiccant dehumidification systems, the temperature increase of the desiccant solution due to the effect of absorptive heating is one of the main reasons of performance deterioration. In this study, we look into the thermal effects during vapor absorption into single hygroscopic liquid desiccant droplets. Specifically, the effect of substrate conductivity on the transient heat and mass transfer process is analyzed in detail. The relative strength of the thermal effect and the solutal effect on the rate of vapor absorption is investigated and compared to the thermal effect by evaporative cooling taking place in pure water droplets. In the case of liquid desiccants, results indicate that the high thermal conductivity of copper substrates ensures more efficient heat removal, and the temperature at the droplet surface decreases more rapidly than that on Polytetrafluoroethylene (PTFE) substrates. As a result, the initial rate of vapor absorption on copper substrates slightly outweighs that on PTFE substrates. Further analysis by decomposing the vapor pressure difference indicates that the variation of vapor pressure caused by the temperature change during vapor absorption is much weaker than that induced by the concentration change. The conclusions demonstrate that a simplified isothermal model can be applied to capture the main mechanisms during vapor absorption into hygroscopic droplets even though it is evidenced to be unreliable for droplet evaporation.


2018 ◽  
Author(s):  
Zhenying Wang ◽  
Daniel Orejon ◽  
Khellil Sefiane ◽  
Yasuyuki Takata

Author(s):  
Y.N. Rybakov ◽  
◽  
V.E. Danilov ◽  
I.V. Danilov ◽  
◽  
...  

The problem of losses of oil products from leaks during their storage and transportation at oil supply facilities is considered. The influence of oil product leaks on the environmental situation around oil depots and gas stations is shown. A detailed overview of existing methods and tools for detecting leaks of petroleum products from storage facilities is presented. The evaluation of their effectiveness. Two methods for detecting oil leaks and devices based on them are proposed. The first device monitors the movement of liquid in the tank, the second-detects petroleum products in wastewater. The problem of recovery of petroleum vapors and environmental pollution from the release of vapors of light fractions into the atmosphere is also considered. An overview of existing methods and means of recovery of petroleum vapors is presented. Two methods and devices for capturing oil vapors and returning them to the reservoir are proposed, based on different principles: vapor absorption in the cooled oil product and vapor recovery on the principle of the Carnot cycle. It is shown that these devices can provide effective detection of oil leaks and recovery of their vapors, as well as improve the effectiveness of environmental protection at modern gas stations and tank farms.


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