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A computational and experimental study of ultra fine water mist as a total flooding agent

机译:超细水雾作为总驱油剂的计算和实验研究

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Computational fluid dynamics (CFD) calculations were carried out to design total flooding fire tests in a 28 m~3 compartment for an ultra fine water mist (< 10 μm). The exit momentum of the mist produced by a proprietary ultrasonic generator technology was extremely low with a mist discharge velocity below 1 m/s. The mist was discharged with multiple floor outlets equally spaced around the centrally located 120 kW pool-like gas fire. The transport of mist and its interaction with the fire was simulated by Fluent, a commercial CFD model. Lagrangian Discrete Phase Model (DPM) was used for droplets. Simulation predicted extinguishment within 10 s with a mist delivery rate of 11/min. However, in total flooding fire tests conducted, extinction times were more than 5 min. Additional computations approximating the ultra fine mist (UFM) as a dense gas agreed well with the observed transport timescales of minutes indicating that UFM behaves like a gas. Further, the mist-fire interaction needs a multi-phase Euler-Euler approach with a droplet vaporization model.
机译:进行了计算流体动力学(CFD)计算,以设计28 m〜3隔间中的超细水雾(<10μm)的总浸水火灾测试。通过专有的超声波发生器技术产生的雾气的出口动量极低,雾气排放速度低于1 m / s。薄雾通过多个地板出口排出,这些出口围绕着位于中心的120 kW池状煤气炉均匀分布。雾的传输及其与火的相互作用是通过商业CFD模型Fluent模拟的。拉格朗日离散相模型(DPM)用于液滴。模拟预测在10 s内熄灭,雾气输送速度为11 / min。但是,在进行的总体洪水火灾测试中,灭火时间超过5分钟。将超细雾(UFM)近似为浓密气体的其他计算与观察到的几分钟的运输时标非常吻合,表明UFM的行为类似于气体。此外,雾-火相互作用需要具有液滴蒸发模型的多相欧拉-欧拉方法。

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