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隧道建设(中英文) ›› 2025, Vol. 45 ›› Issue (5): 876-886.DOI: 10.3973/j.issn.2096-4498.2025.05.002

• 研究与探索 • 上一篇    下一篇

交通隧道瓦斯工区分级标准及海拔影响研究

林志, 蒋星遥, 陈相*, 丁永超, 冯森   

  1. (重庆交通大学 山区桥梁及隧道工程国家重点实验室, 重庆 400074
  • 出版日期:2025-05-20 发布日期:2025-05-20
  • 作者简介:林志(1975—),男,四川南江人,2004年毕业于同济大学,结构工程专业,博士,教授,现从事公路隧道与地下工程的科研、技术开发、工程设计咨询和标准规范编写等工作。E-mail: zhilin@cqjtu.cn.com。*通信作者: 陈相, E-mail: 804443258@qq.com。

Classification Standards for Gas Work Areas in Traffic Tunnels and Influence of Altitude

LIN Zhi, JIANG Xingyao, CHEN Xiang*, DING Yongchao, FENG Sen   

  1. (State Key Laboratory of Mountain Bridge and Tunnel Engineering, Chongqing Jiaotong University, Chongqing 400074, China)
  • Online:2025-05-20 Published:2025-05-20

摘要: 针对交通瓦斯隧道现有标准存在的设防标准偏高、建设成本较高和不适用于高海拔地区等问题,结合数值模拟和理论分析进行研究。通过建立数值模型分析平均风速和瓦斯体积分数在空间上的动态变化,提出风速安全系数和瓦斯体积分数安全系数,并确定了稳定回风流断面的位置。对高海拔环境条件进行模拟,揭示不同海拔对瓦斯爆炸特性、爆炸极限和瓦斯体积分数的影响机制,通过引入基于海拔的瓦斯爆炸极限影响系数和瓦斯体积分数影响系数,建立平原瓦斯隧道与高海拔瓦斯隧道之间的关联模型。研究主要成果为: 1)针对现行交通隧道瓦斯工区分级标准,改进分级标准值的计算公式,提出考虑不同隧道回风流断面面积大小的分级标准; 2)优化瓦斯涌出不均衡系数取值,并将其与风速安全系数和瓦斯体积分数安全系数引入现行施工阶段绝对瓦斯涌出量实测值计算公式,提出修正后的实测值计算公式; 3)针对高海拔瓦斯隧道,提出适用于不同海拔的瓦斯工区分级标准值计算公式和分级标准。

关键词: 瓦斯隧道, 瓦斯工区分级标准, 高海拔, 瓦斯爆炸

Abstract: Existing standards for gas hazards in traffic tunnels have several limitations, including overly stringent safety measures and high construction costs that are not feasible in high-altitude regions. To address these issues, numerical simulation and theoretical analysis methods are employed in this study. A numerical model is developed to analyze the dynamic spatial variations of average wind speed and gas concentration, leading to the proposal of safety factors for both wind speed and gas concentration and the determination of the stable return airflow section. The study simulates high-altitude environmental conditions to reveal the mechanisms by which altitude influences gas explosion characteristics, explosion limits, and gas concentration. Altitude-based coefficients for gas explosion limits and concentration are introduced to establish a correlation model to link gas tunnels in flat regions with those in high-altitude regions. The main findings of the study are as follows: (1) A revised calculation formula for the classification standards of gas work areas in traffic tunnels is proposed, incorporating adjustments for the cross-sectional area of return airflow sections. (2) The disequilibrium coefficient for gas emission is optimized and integrated into the calculation formula for measured absolute gas emissions during the construction phase, along with safety factors for wind speed and gas concentration, to yield a modified formula. (3) For high-altitude gas tunnels, a classification standard suitable for varying altitudes is proposed, including a formula for calculating classification values and standards.

Key words: gas tunnel, classification standards for gas work areas, high altitude, gas explosion