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Les Modeling Of Premixed Deflagrating Flames In A Small-scale Vented Explosion Chamber With A Series Of Solid Obstructions

机译:带有一系列固体障碍物的小型通风口爆炸室内预混爆燃的Les建模

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In this study, simulations of propagating turbulent premixed deflagrating flames past built in solid obstructions in a laboratory scale explosion chamber has been carried out with the Large Eddy Simulation (LES) technique. The design of the chamber allows for up to three baffle plates to be positioned in the path of propagating flame, rendering different configurations, hence generating turbulence and modifying the structure of the reaction zone. Five important configurations are studied to understand the feedback mechanism between the flame-flow interactions and the burning rate. In LES, the sub-grid scale (SGS) reaction rate should be accounted for by an appropriate model that can essentially capture the physics. The present work has been carried by using the flame surface density (FSD) model for sub-grid scale reaction rate. The influence of the flow on turbulence and flame propagation as a result of the in-built solid obstructions is also examined. The impact of the number and the position of such baffle plates on the generated overpressure, flame speed and structure are studied. Results from the simulations are compared with experimental data for five configurations and they show good agreement.
机译:在这项研究中,已经使用大涡模拟(LES)技术对在实验室规模爆炸室内的固体障碍物内传播的湍流预混合爆燃火焰进行了模拟。腔室的设计允许在火焰传播路径中放置多达三个挡板,从而形成不同的配置,从而产生湍流并改变反应区的结构。研究了五个重要的配置,以了解火焰流相互作用和燃烧速率之间的反馈机制。在LES中,应通过可基本捕获物理学的适当模型来考虑子网格规模(SGS)反应速率。通过使用火焰表面密度(FSD)模型进行次网格规模反应速率来进行当前工作。还检查了内置固体障碍物对湍流和火焰传播的影响。研究了这种挡板的数量和位置对产生的超压,火焰速度和结构的影响。仿真结果与五个配置的实验数据进行了比较,它们显示出良好的一致性。

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