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Air flow and gas dispersion in the forced ventilation of a road tunnel during construction

机译:施工期间强制通风的气流和气体扩散

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Forced ventilation is typically used in the construction of tunnels since it is an economical method to provide high amounts of fresh air. Air velocity and pollutant concentration near the work face are determined by the ventilation arrangement. In the study, field measurement of air velocity was performed, and computational fluid dynamics (CFD) models were constructed to investigate airflow near the work face and predict the gas distribution in a gas tunnel construction. The effects of the distance between the air duct exit and the work face (L1) were evaluated by analyzing the flow field and pollutant concentration. The evaluation shows that the ventilation efficiency improves ifL1does not exceed 15?m in a road tunnel with full-face excavation. With respect to a road tunnel with benching excavation, the effects of bench length (L2) are analyzed, and the results of the analysis indicate that ventilation efficiency is optimal whenL2?=?5?m andL2?=?10?m and the air-duct diameter corresponds to 1.6?m. The CFD results fit the field measurement significantly well, and the current ventilation system in the construction exhibits a relativelyhigh efficiency. The findings of the study aid practitioners in optimizing ventilation efficiency.
机译:强制通风通常用于隧道的建设中,因为它是一种提供大量新鲜空气的经济方法。工作面附近的空气流速和污染物浓度取决于通风装置。在这项研究中,对风速进行了现场测量,并建立了计算流体动力学(CFD)模型以研究工作面附近的气流并预测气隧道施工中的气体分布。通过分析流场和污染物浓度,评估了风道出口与工作面(L1)之间的距离的影响。评价表明,如果在全断面开挖的公路隧道中L1不超过15?m,通风效率会提高。对于具有台阶式开挖的公路隧道,分析了台阶长(L2)的影响,分析结果表明,当L2α=?5?m和L2?=?10?m时,通风效率最佳。 -管道直径对应于1.6?m。 CFD结果非常适合现场测量,并且建筑中的当前通风系统显示出相对较高的效率。研究的结果有助于从业人员优化通风效率。

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