Zhao Bei, Xie Baochao, Xu Zhisheng, Wang Feifan, Gao Yifan
School of Civil Engineering, Central South University, Changsha 410075, China.
Materials (Basel). 2025 Jan 4;18(1):187. doi: 10.3390/ma18010187.
Small-section steel-shell concrete immersed tube tunnels are intended for minibuses and have a low fire heat release rate. Standard fire rise curves do not apply to such tunnels. In this study, a coupled method of computational fluid dynamics (CFD) and the finite element method (FEM) was used to simulate the structural temperature distribution in tunnels. Firstly, a tunnel fire dynamics model was established to obtain the inhomogeneous temperature field during tunnel fires. Subsequently, a three-dimensional heat transfer analysis model for the tunnel tube section was established to simulate the temperature transfer characteristics of the tunnel structure with and without fire protection measures under different types of vehicle fires. This study showed that because steel has a higher thermal conductivity, at the same depth, the temperatures were the highest in T-ribs, followed by partitions, and the lowest in concrete; however, the steel components inside the tunnel minimally affected the tunnel temperature. Without fire protection, the steel shell's surface temperature exceeded 300 °C in as little as 500 s. Temperature's primary impact on the tunnel's steel structure was within 30 cm of the steel shell's surface, and on concrete, it was within 20 cm. The greatest temperature difference between the partition and concrete occurred 10 cm from the steel shell's surface. These results fill the knowledge gap on heat transfer in these tunnels and have positive practical significance for the fire resistance design of tunnels.
小断面钢壳混凝土沉管隧道适用于小型客车,火灾热释放率较低。标准火灾升温曲线不适用于此类隧道。本研究采用计算流体动力学(CFD)与有限元法(FEM)耦合的方法来模拟隧道结构的温度分布。首先,建立隧道火灾动力学模型以获取隧道火灾期间的非均匀温度场。随后,建立隧道管节的三维传热分析模型,以模拟不同类型车辆火灾下有无防火措施时隧道结构的温度传递特性。本研究表明,由于钢材具有较高的热导率,在相同深度处,T形肋的温度最高,其次是隔墙,混凝土的温度最低;然而,隧道内部的钢构件对隧道温度的影响最小。无防火保护时,钢壳表面温度在短短500 s内就超过300℃。温度对隧道钢结构的主要影响在钢壳表面30 cm范围内,对混凝土的影响在20 cm范围内。隔墙与混凝土之间的最大温差出现在距钢壳表面10 cm处。这些结果填补了此类隧道传热方面的知识空白,对隧道的耐火设计具有积极的实际意义。