Numerical investigation on the multiphase jet dispersion and sublimation cooling characteristics during accidental release of liquid CO2

IF 4.7 1区 工程技术 Q1 ENGINEERING, INDUSTRIAL
Zhenmin Luo , Pengzhi Wu , Hu Wen , Changchun Liu , Lele Xie , Shuang Peng , Xue Du
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引用次数: 0

Abstract

The increasing deployment of liquid CO2 projects requires a deep understanding of the jet dispersion and sublimation cooling characteristics during accidental pipeline release of liquid CO2 from a career to accurately assess the hazards caused to nearby targets. In this study, a pipe flow model was established considering the flashing delay phenomenon and a source model was built to handle the phase transition from vapour-liquid to vapour-solid near the nozzle outlet. These two models were combined to quickly predict the pseudo source parameters, which can be used as the inlet boundary conditions for the computational fluid dynamics (CFD) model to simulate the jet dispersion of liquid CO2. The effects of pipe inlet pressure, vapour mass fraction, nozzle size, pipe length, pipe diameter, pipe roughness and ambient temperature on CO2 concentration, plume temperature, plume velocity, mass flow rate of dry ice and dry ice survival distance were analyzed. The results show that the prediction errors of the mass flow rate using the pipe flow model and source model were almost lower than 20 %. The temperature, velocity and CO2 concentration predicted by the CFD model agree well with the experimental results. The assumption size distribution (1 ∼ 30 μm) of dry ice, described by the Rosin-Rammler model, can well capture the significant temperature drop near the release point. Moreover, an assessment process was proposed to design and optimize the release pipeline of liquid CO2 to meet some standard requirements.
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来源期刊
Safety Science
Safety Science 管理科学-工程:工业
CiteScore
13.00
自引率
9.80%
发文量
335
审稿时长
53 days
期刊介绍: Safety Science is multidisciplinary. Its contributors and its audience range from social scientists to engineers. The journal covers the physics and engineering of safety; its social, policy and organizational aspects; the assessment, management and communication of risks; the effectiveness of control and management techniques for safety; standardization, legislation, inspection, insurance, costing aspects, human behavior and safety and the like. Papers addressing the interfaces between technology, people and organizations are especially welcome.
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