CFD Based Two-Phase Dispersion Model of Flashing Liquefied Jet and Experiment Validation
合集下载
相关主题
- 1、下载文档前请自行甄别文档内容的完整性,平台不提供额外的编辑、内容补充、找答案等附加服务。
- 2、"仅部分预览"的文档,不可在线预览部分如存在完整性等问题,可反馈申请退款(可完整预览的文档不适用该条件!)。
- 3、如文档侵犯您的权益,请联系客服反馈,我们会尽快为您处理(人工客服工作时间:9:00-18:30)。
the real speeds due to the lack of the on-site information. It is shows that the simulated results are quite in accordance with the observed values. The variation in the concentration fluctuations is quit the same. The simulated concentrations are within the acceptable range. The time when gas appears and departures at the monitoring points is satisfied with the experiments. In general, the model proposed is capable of determining the subsequent two-phase dispersion of flashing liquefied jet. And the next study will be concentrated on the model built-up and validation with the two-phase movement influenced by the obstacles which are not concerned in this study and experiments.
offshore@
Keywords: Two-Phase Dispersion, Flashing Liquefied Jet, CFD
Abstract
The prediction of the hazardous chemical release is important for the risk assessment on the process safety. Though there are various atmospheric dispersion models, it is still hard to analyze the toxic and/or flammable hazard of flashing liquefied jet due to the rapid phase transition from liquid to gas, which usually happens in the condition of the liquefied gas such as ammonia, LPG, LNG releasing from vessels and/or pipes. Based on the CFD method, we propose a two-phase dispersion model to analyze the flashing liquefied jet with the focus on the gas build-up, variation and distribution. The jet of flashing liquid is directly defined as flow inlet boundary according to the liquid discharge rate. Then the Lagrangian particles are introduced to simulate the movement of the liquid phase as discrete airborne spheres propelled through the gas, or as rectangular blocks that collectively form a thin liquid film on solid objects. Simultaneously, the gas phase deriving from the rapid phase transition is calculated based on the mass and energy equilibrium equations between the gas and the liquid. Then the gas dispersion in the atmosphere is determined by the commonly used species transport equations. And the large eddy simulation is worked for the treatment of turbulence influences. The model validation is conducted against the Lathen gas field experiments NO. EEC 86 - EEC 98, in which the liquefied propane is discharged with the rates of 170 – 770 g/s, wind speeds of 0.8 – 2.0 m/s, release duration of 105 - 330 s and nozzle diameter of 0.1 m in an open area. First of all, the atmospheric environment is simulated through the boundary conditions defined by the on-site temperature, wind speed/direction and atmospheric humidity. Then, the liquefied propane is introduced into the simulation and the model calculates the two-phase transition, liquid movement and gas dispersion automatically. The predicted downwind concentrations of propane are compared with the monitoring data recorded during the experiments. The maximum concentration, duration of gas existence, concentration trends are analyzed at the different monitoring points. Though the average wind speeds are substituted for
Prepared for Presentation at American Institute of Chemical Engineers 2013 Spring Meeting 1st CCPS Asia-Pacific Conference on Process Safety Qingdao, China September 4 – 5, 2013 UNPUBLISHED
Байду номын сангаас
AIChE shall not be responsible for statements or opinions contained in papers or printed in its publications
1st CCPS APCPS ______________________________________________________________________
Note: Do not add page numbers. Do not refer to page numbers when referencing different portions of the paper
1st CCPS APCPS ______________________________________________________________________
1st CCPS APCPS ______________________________________________________________________
CFD Based Two-Phase Dispersion Model of Flashing Liquefied Jet and Experiment Validation
1. Introduction
The prediction of the hazardous chemical release is important for the risk assessment on the process safety. Though there are various atmospheric dispersion models including the plume mode, puff model, Pasquill-Gifford model et al.[1], it is still hard to analyze the toxic and/or flammable hazard of flashing liquefied jet due to the rapid phase transition from liquid to gas, which usually happens in the condition of the liquefied gas such as ammonia, LPG, LNG releasing from vessels and/or pipes. According to the review of P. Bricard, L. Friedel, the hazardous dispersion with special attention to two-phase jet conditions have appeared only in the last decade in the literature. They could be divided into integral or multidimensional models and were insufficiently validated [2]. M.J. Pattison, R. Martini et. al built a model for the dispersion of two-phase releases[3, 4]. Recently, with the growing energy consumption, Liquefied Natural Gas (LNG), has become an important sources of energy. Lots of studies concerning the LNG release, which is a typical two-phase jet, were done in order to satisfy the risk assessment on the LNG fire or explosion. S.G. Giannissi, A.G. Venetsanos et al. conducted the numerical simulation of LNG dispersion over water surface under two-phase release conditions[5]. Filippo Gavelli, Edward Bullister et al. simulated the LNG dispersion after spilt into geometrically complex environments[6]. In this paper, we proposed a two-phase dispersion model to describe the flashing liquefied jet by using computational fluid dynamics (CFD). And the results of the model were verified by the field experiment.
Zhu Yuan Centre for Offshore Engineering and Safety Technology China University of Petroleum (Eastern China), No. 66 The Yangtze River West Road, Economic& Technological Development Zone, Qingdao, Shandong Province zhy3323@ Chen Guoming Centre for Offshore Engineering and Safety Technology China University of Petroleum (Eastern China), No. 66 The Yangtze River West Road, Economic& Technological Development Zone, Qingdao, Shandong Province offshore@
CFD Based Two-Phase Dispersion Model of Flashing Liquefied Jet and Experiment Validation
Zhu Yuan Centre for Offshore Engineering and Safety Technology China University of Petroleum (Eastern China), No. 66 The Yangtze River West Road, Economic& Technological Development Zone, Qingdao, Shandong Province zhy3323@ Chen Guoming Centre for Offshore Engineering and Safety Technology China University of Petroleum (Eastern China), No. 66 The Yangtze River West Road, Economic& Technological Development Zone, Qingdao, Shandong Province