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Computational Analysis of Injection-Velocity Effects on Dynamic Parameters of Unconfined Fuel-Vapor Clouds

机译:注入速度对无限制燃料蒸气云动态参数影响的计算分析

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A computational investigation is performed to study the effects of injection velocity on the main dynamic parameters of the fuel cloud released into the open atmosphere.The volume,shape,and growth rate of the cloud,turbulence intensity,as well as the distribution of fuel concentration,temperature gradient,and self-ignition induction time are the most important parameters determining the mode of combustion that propagates through the cloud.A modified KIVA-based program is employed to fulfill the calculations.Systems of equations are solved by a finite-volume method.The k-epsilon model and discrete droplet model are applied for modeling gas-phase turbulence and liquid spray,respectively.The fuel-injection velocity is shown to have a major effect on turbulence intensity and uniformity of the cloud.With increasing injection velocity,the detonable part of the cloud rotates sooner and faster,and there is less time for ignition.A comparison with experimental results is performed for validation.numerical simulation,two-phase flow,injection velocity,fuel-air cloud,detonation.
机译:通过计算研究来研究喷射速度对释放到大气中的燃料云的主要动力学参数的影响。云的体积,形状和增长率,湍流强度以及燃料浓度的分布,温度梯度和自燃诱导时间是决定在云中传播的燃烧方式的最重要参数。采用改进的基于KIVA的程序来完成计算。方程组通过有限体积法求解分别使用k-ε模型和离散液滴模型分别对气相湍流和液体喷雾建模。燃料喷射速度显示出对湍流强度和云均匀性的主要影响。随着喷射速度的增加,云的可爆炸部分旋转得更快,更快,并且点火时间更少。与实验结果进行比较以验证数值模拟;两相流;喷射速度;燃料-空气云;爆轰

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