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Application of RANS and LES Based CFD to Predict the Short and Long Term Distribution and Mixing of Hydrogen in a Large Enclosure

机译:基于RANS和LES的CFD在预测大型机壳中氢的短期和长期分布和混合中的应用。

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The paper presents CFD simulations from Reynolds Average Navier Stroke(RANS) and Large Edyy Simulation(LES) based approach of hydrogen release and dispersion inside the large enclosure and comparison with experimental data. The experiment was reported by HySafe Network of Excellence partners, consisting of a 1 g/s vertical hydrogen release for 240 s from an orifice of 20 mm diameter into a rectangular room of dimensions 7.2X2.88X3.78 m in length, height and width respectively. Two small openings were provided at the front and bottom side of the room. During the test hydrogen concentration time histories were measured at few positions in the room, for a period up to 5160 s after the end of release, covering both the release and the subsequent diffusion phases The CFD simulations were performed using a) a 3D transient in-house developed RANS CFD code b) LES based Fire Dynamics Simulator(FDS). Initially when the jet is injected the turbulence intensity is high, but later on the problem is diffusion dominated. Therefore suitable approaches were used to simulate the problem. Initially k-ε High Re number model with standard wall function and buoyancy modification was used and subsequently the transport was modeled as laminar in RANS based approach. The default LES based scheme adopted for LES based computations. The gas mixture was treated as weakly compressible and gravity force was also considered. The results obtained by computations have a good agreement with experiment particularly for LES based calculation. The performed simulation provides useful insight regarding performance of CFD code to simulate hydrogen transport problem and this capability can be further utilized to simulate the hydrogen transport in the real containment geometries. ?
机译:本文介绍了基于雷诺平均航向(RANS)和大型Edyy模拟(LES)的CFD模拟方法,该方法基于氢在大型机壳内的释放和扩散方法,并与实验数据进行了比较。 HySafe卓越网络合作伙伴报告了该实验,该实验包括从20 mm直径的孔向长度,高度和宽度为7.2X2.88X3.78 m的矩形空间中以1 g / s的垂直氢释放240 s。分别。房间的前侧和底侧设有两个小开口。在测试过程中,在释放结束后长达5160 s的时间内测量了房间中几个位置的氢浓度时间历史,涵盖了释放阶段和随后的扩散阶段。CFD模拟使用a)3D瞬态进行。自行开发的RANS CFD代码b)基于LES的火灾动态模拟器(FDS)。最初,当射流被喷射时,湍流强度很高,但后来问题又主要是扩散。因此,使用了合适的方法来模拟该问题。最初使用具有标准壁功能和浮力修改功能的k-ε高Re数模型,随后在基于RANS的方法中将运输模型化为层流。基于LES的计算采用默认的基于LES的方案。将该气体混合物视为弱可压缩的,并且还考虑了重力。通过计算获得的结果与实验特别是基于LES的计算具有很好的一致性。进行的模拟提供了有关CFD代码性能的有用见解,以模拟氢气的运输问题,并且可以进一步利用此功能来模拟实际密闭几何结构中的氢气运输。 ?

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