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Numerical simulation of gas explosions in complex geometry

机译:复杂几何形状中气体爆炸的数值模拟

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The flame acceleration in the presence of complex geometry is an important issue as far as explosions within industrial environments are concerned. A high level of confinement due to obstacle congestion often characterises chemical plants handling flammable gases. In the case of gas explosion, this feature leads to strong acceleration of the flame and the generation of very destructive blast waves. Empirical methods such as the Multi-Energy method are commonly used in order to quantify the possible damage of explosions. Computational fluid dynamics (CFD) is an emerging technique to predict the consequences of gas explosion and it is often considered a powerful and accurate tool to obtain detailed analyses of the flame propagation. However, systematic analysis of the reliability of the employed models is still needed. Aim of this work is to contribute to the assessment of CFD codes employed for the simulation of gas explosions. Two commercially available CFD codes, namely AutoReagas and STAR-CD codes, have been considered in this study. Their ability to simulate the flame acceleration within obstacle-filled tubes, filled with different flammable gas-air mixtures, has been investigated. For this configuration extensive experimental investigation showed that about all the physical effects that influence the flame acceleration phenomena are present. Moreover, it is possible to define a steady flame velocity for different propagation regime, which can be considered as a global parameter to promptly compare the numerical predictions and the experimental data. Comparison of the results obtained by means of the two codes have been performed and some restrictions to the use of codes with respect to the fuel-air mixture composition.
机译:就工业环境中的爆炸而言,存在复杂几何形状的火焰加速是一个重要问题。由于障碍物拥堵而导致的高级别限制通常是化工厂处理易燃气体的特征。在发生气体爆炸的情况下,此功能会导致火焰强烈加速并产生非常破坏性的爆炸波。通常使用经验方法(例如多能量方法)来量化爆炸可能造成的损害。计算流体动力学(CFD)是一种预测气体爆炸后果的新兴技术,通常被认为是获得详细的火焰传播分析的强大而准确的工具。但是,仍然需要对所采用模型的可靠性进行系统分析。这项工作的目的是有助于评估用于模拟气体爆炸的CFD代码。这项研究考虑了两个商业上可用的CFD代码,即AutoReagas和STAR-CD代码。已经研究了它们在充满不同可燃气体混合物的障碍物填充管中模拟火焰加速的能力。对于这种配置,广泛的实验研究表明,存在影响火焰加速现象的几乎所有物理效应。此外,可以为不同的传播方式定义稳定的火焰速度,可以将其视为全局参数,以迅速比较数值预测和实验数据。已经比较了通过两个代码获得的结果,并且相对于燃料-空气混合物成分,对代码的使用有一些限制。

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