青岛地铁某海底隧道排水方案优化及其影响因素分析

Optimization of Drainage Scheme and Influencing Factors Analysis for a Subsea Tunnel of Qingdao Metro

  • 摘要:
    目的 传统隧道排水方案存在仰拱水压力消除盲区,可导致隧道在列车运营期间产生轨道隆沉、结构开裂、道床翻浆冒泥等水患病害,因此,有必要对隧道排水系统进行优化研究。
    方法 以青岛地铁某海底隧道为依托,搭建整体研究框架。提出体内-体外联合排水优化方案,通过建立流体-固体耦合数值模型分析该方案的排水降压效果以及关键影响因素。最终基于模拟结果,提出了排水系统的合理设计参数,为工程实际提供了理论支撑。
    结果及结论 优化后,仰拱水压力分布形态由U形转变为W形,水压力最大值降至既有排水方案的40.93%,折减系数仅为0.304。以两侧纵向导水管为分界,隧道排水体系可划分为两个完全独立、互不干扰的排水分区,有利于对隧道排水体系进行分区独立设计。环向排水管布置间距为8.00 m时,衬砌水压力折减系数可统一取为0.367。不同拱顶水位高度下,任一位置隧道衬砌水压力折减系数一致,其值仅取决于排水系统自身的排水降压能力。仰拱水压力随管道埋深的增加先减小后增大,并随管径的增大逐渐减小;相比埋深,仰拱排水降压效果对管径的变化更为敏感。建议管径取0.60~1.20 m、埋深取0.55 m,可保证拱底与拱腰水压力分别获得不低于61.86%与67.14%的削减效果。

     

    Abstract:
    Objective Traditional tunnel drainage systems have blind spots in relieving water pressure on the invert, which may lead to water-induced damages such as track heave and settlement, structural cracking, and mud pumping from the track bed during train operation. Therefore, it is necessary to optimize the tunnel drainage system.
    Method Based on a subsea tunnel of Qingdao Metro, an overall research framework is established. An optimized internal-external combined drainage scheme is proposed. A fluid-solid coupled numerical model is developed to analyze the water pressure relief effect of the above-mentioned scheme and identify key influencing factors. Finally, based on the simulation results, rational design parameters for the drainage system are proposed, providing theoretical support for engineering practice.
    Result & Conclusion  After optimization, the water pressure distribution pattern on the invert changes from a U-shape to a W-shape, and the maximum water pressure decreases to 40.93% of that under the existing drainage system, with a reduction coefficient of only 0.304. Taking the two longitudinal drainage pipes as boundaries, the tunnel drainage system can be divided into two completely independent and non-interfering drainage zones, facilitating independent design of each zone. When the circumferential drainage pipe spacing is 8.00 m, the water pressure reduction coefficient of the lining can be uniformly taken as 0.367. Under different water level heights at the arch crown, the water pressure reduction coefficient of the tunnel lining at any position remains consistent, which depends only on the water pressure relief capacity of the drainage system itself. The water pressure on the invert first decreases and then increases with deepening the drainage pipe burial depth, and gradually decreases with increasing pipe diameter. Compared with burial depth, the water pressure relief effect on the invert is more sensitive to pipe diameter. It is recommended to adopt a pipe diameter of 0.60–1.20 m and a burial depth of 0.55 m, which can ensure the water pressure reduction effect of no less than 61.86% and 67.14% at the arch bottom and arch waist respectively.

     

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