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Study on the subway environment induced by moving train using Gaussian distributed momentum source theory method

机译:基于高斯分布动量源理论的动车诱导地铁环境研究。

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摘要

The application of dynamic mesh method has been extensively applied for simulating piston wind-induced subway environments, e.g. air quality, which is not central processing unit-friendly in calculation as well as complex meshing required for computational fluid dynamics modelling. The feasibility of the momentum theory method was investigated to simulate moving train-induced effects on tunnel airflow and particle transport (i.e. momentum source implemented into momentum equations to simulate moving objects). A Gauss-filtered Dirac delta function was employed for Gaussian distribution of momentum source. In the current work, both momentum theory and dynamic mesh methods were employed for simulating moving train, and the reliability of the numerical simulation was validated by experimental data. The k-epsilon re-normalization group model was adopted for turbulence modelling. Results of the momentum theory method were reliable compared to dynamic mesh and experimental methods except during the static period. Calculation time was saved about 40% compared with dynamic mesh method. Piston wind had a strong impact on the surrounding airflow in the subway environment, leading to a further increase in the particle concentration at platforms. The momentum theory method can be efficiently applied for the simulation of moving objects in wind-induced environments.
机译:动态网格法的应用已广泛应用于模拟活塞风诱导的地铁环境,例如空气质量,这在计算中不是中央处理单元友好的,也不是计算流体动力学建模所需的复杂网格划分。研究了动量理论方法模拟列车运动对隧道气流和颗粒传输的影响的可行性(即将动量源实现为动量方程式来模拟运动对象)。高斯滤波的狄拉克三角函数被用于动量源的高斯分布。在目前的工作中,动量理论和动态网格方法都被用于模拟移动列车,并通过实验数据验证了数值模拟的可靠性。 kε重归一化群模型用于湍流建模。动量理论方法的结果与动态网格和实验方法相比是可靠的,除了在静态期间。与动态网格法相比,计算时间节省了约40%。活塞风对地铁环境中的周围气流产生了强烈影响,导致平台上的颗粒浓度进一步增加。动量理论方法可以有效地应用于风环境中运动物体的仿真。

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