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CFD Modeling of LNG Spill: Humidity Effect on Vapor Dispersion
[摘要] The risks entailed by an accidental spill of Liquefied Natural Gas (LNG) should be indentified and evaluated, in order to design measures for prevention and mitigation in LNG terminals. For this purpose, simulations are considered a useful tool to study LNG spills and to understand the mechanisms that influence the vapor dispersion. In the present study, the ADREA-HF CFD code is employed to simulate the TEEX1 experiment. The experiment was carried out at the Brayton Fire Training Field, which is affiliated with the Texas A&M University system and involves LNG release and dispersion over water surface in open- obstructed environment. In the simulation the source was modeled as a two-phase jet enabling the prediction of both the vapor dispersion and the liquid pool spreading. The conservation equations for the mixture are solved along with the mass fraction for natural gas. Due to the low prevailing temperatures during the spill ambient humidity condenses and this might affect the vapor dispersion. This effect was examined in this work by solving an additional conservation equation for the water mass fraction. Two different models were tested: the hydrodynamic equilibrium model which assumes kinetic equilibrium between the phases and the non hydrodynamic equilibrium model, in order to assess the effect of slip velocity on the prediction. The slip velocity is defined as the difference between the liquid phase and the vapor phase and is calculated using the algebraic slip model. Constant droplet diameter of three different sizes and a lognormal distribution of the droplet diameter were applied and the results are discussed and compared with the measurements.
[发布日期]  [发布机构] Environmental Research Laboratory, National Center for Scientific Research Demokritos, Agia Paraskevi; 15310, Greece^1;School of Chemical Engineering, National Technical University of Athens, Heroon Polytechniou 9, Zografou; 15780, Greece^2
[效力级别] 数学 [学科分类] 
[关键词] Conservation equations;Droplet diameters;Equilibrium modeling;Humidity effects;Kinetic equilibrium;Liquefied Natural Gas (LNG);Log-normal distribution;University system [时效性] 
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