城市轨道交通防淹措施研究
                    
                    作者简介:
卢昌仪,高级工程师,E-mail: luchangyi@ dtsjy. com
                    作者单位:
广州地铁设计研究院股份有限公司,广东广州 510420
                    基金项目:
∗国家重点研发计划(2022YFC3005203);广东省城市轨道交通工程建造新技术企业重点实验室资助项目(2017B030302009)
                    摘要:
随着极端气候事件频发,城市轨道交通面临日益严峻的洪水倒灌风险。针对城市轨道交通防淹薄弱环节(车站出入口、风亭、隧道出入段线),系统分析了现有防淹措施适用性与局限性。研究表明,车站出入口普遍采取被动防淹措施(如沙袋、手动插板),但存在响应慢、依赖人力、美观性差等问题;出入口全自动防洪防淹挡板通过物理浮力原理实现自动挡水,兼具模块化、免电力、快速安装优势,已在多地验证其高效性;极端情况下启用的防护密闭门虽有效,但转换时间长。传统手动拼装风亭防淹板效率低下,车站风亭全自动水浮力式防淹防洪闸板可依靠水浮力实现挡水功能,显著提升响应速度;针对大型风亭设计的暂时性密闭挡水装备通过精密定位与锁扣系统,实现快速封堵与安全存放。隧道出入段线采用推拉式挡板或立转式防淹门,后者集成液压驱动、智能监测与多重锁定系统,可远程控制并适应复杂工况,但需预埋结构与专业维护。未来防淹设计需向自动化、模块化、智能化方向发展,结合城市轨道交通特点定制组合方案,以平衡时效性、可靠性与经济性,为城市轨道交通防淹体系升级提供技术支撑。
                    
                    
                    
English:
With the increasing frequency of extreme climate events, urban rail transit system facesgrowing risks of floodwater intrusion. This paper systematically analyzes the applicability and limitationsof existing flood control measures targeting the vulnerable points of urban rail transit system ( stationentrance and exit,wind pavilion, and tunnel portal sections)。 The research shows that station entranceand exit commonly relies on passive flood barriers (for example, sandbags, manual plates),which sufferfrom slow response times, high labor dependency, and poor aesthetics. In contrast, the fully automaticbuoyancy-activated flood control plates for entrance and exit utilize physical buoyancy to achieveautomatic water blocking. It offers advantages in modularization, power-free operation, and rapidinstallation,with its effectiveness validated through practical application in multiple locations. Whileprotective airtight doors are effective for extreme scenarios, their deployment requires significantconversion time. Traditional manually assembled flood control plates for wind pavilion are inefficient. Thefully automatic buoyancy-activated flood control plates for station wind pavilion significantly enhancesresponse speed by relying on water buoyancy. Temporary sealing equipment designed for large windpavilion enables rapid sealing and secure storage through precision positioning and latching system. Fortunnel portal sections, sliding barriers or vertical rotation floodgates are employed. The latter integrateshydraulic drive, intelligent monitoring, and multi-stage locking system, enabling remote control andadaptability to complex conditions, though they require embedded structures and specializedmaintenance. Future flood control design must evolve towards automation, modularization, andintelligence. Tailored combined solutions, aligned with the characteristics of urban rail transit system,are essential to balance timeliness, reliability, and cost-effectiveness. This approach will provide crucialtechnical support for upgrading the flood control system of urban rail transit infrastructure.