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Numerical simulations of large-scale detonation tests in the RUT facility by the LES model

机译:LES模型在RUT设备中进行大规模爆轰试验的数值模拟

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The LES model based on the progress variable equation and the gradient method to simulate propagation of the reaction front within the detonation wave, which was recently verified by the ZND theory, is tested in this study against two large-scale experiments in the RUT facility. The facility was 27.6 m × 6.3 m × 6.55 m compartment with complex three-dimensional geometry. Experiments with 20% and 25.5% hydrogen-air mixture and different location of direct detonation initiation were simulated. Sensitivity of 3D simulations to control volume size and type were tested and found to be stringent compared to the planar detonation case. The maximum simulated pressure peak was found to be lower than the theoretical von Neumann spike value for the planar detonation and larger than the Chapman-Jouguet pressure thus indicating that it is more challenging to keep numerical reaction zone behind a leading front of numerical shock for curved fronts with large control volumes. The simulations demonstrated agreement with the experimental data.
机译:这项针对最近的ZND理论验证的基于进度变量方程和梯度方法的LES模型(用于模拟反应前沿在爆炸波中的传播)已在RUT设施中进行了两次大规模实验,并进行了测试。该设施为27.6 m×6.3 m×6.55 m的车厢,具有复杂的三维几何形状。模拟了使用20%和25.5%的氢-空气混合物以及直接起爆的不同位置进行的实验。测试了3D模拟对控制体积大小和类型的敏感性,并发现与平面爆炸情况相比,该模型更为严格。发现最大的模拟压力峰值低于平面爆轰的理论冯·诺伊曼峰值,并且大于查普曼-乔格特压力,因此表明将数值反应区保持在弯曲数值冲击的领先前沿之后更具挑战性控制量大的战线。仿真表明与实验数据一致。

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