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隧道建设(中英文) ›› 2026, Vol. 46 ›› Issue (5): 1085-1095.DOI: 10.3973/j.issn.2096-4498.2026.05.015

• 施工技术 • 上一篇    下一篇

长大隧道工程建造信息传输关键技术

高攀1, 李寒冰2, 吴崇尧1, 3, 4, * , 尚伟1, 3, 4, 谢韬1   

  1. (1. 中铁隧道局集团有限公司, 广东 广州 511458; 2. 中国铁路广州局集团有限公司广州工程建设指挥部, 广东 广州 510199; 3. 中铁隧道勘察设计研究院有限公司, 广东 广州 511458;4. 广东省隧道结构智能监控与维护企业重点实验室, 广东 广州 511458)
  • 出版日期:2026-05-20 发布日期:2026-05-20
  • 作者简介:高攀(1982—),男,河南周口人,2008年毕业于郑州大学,水工结构工程专业,硕士,正高级工程师,主要从事山岭隧道施工技术研究工作。 E-mail: 94474888@qq.com。 *通信作者: 吴崇尧, E-mail: 377133270@qq.com。

Key Technologies for Information Transmission in Construction of Long and Large Tunnels

GAO Pan1, LI Hanbing2, WU Chongyao1, 3, 4, *, SHANG Wei1, 3, 4, XIE Tao1   

  1. (1. China Railway Tunnel Group Co., Ltd., Guangzhou 511458, Guangdong, China; 2. Guangzhou Engineering Construction Headquarters, China Railway Guangzhou Bureau Group Co., Ltd., Guangzhou 510199, Guangdong, China; 3. China Railway Tunnel Consultants Co., Ltd., Guangzhou 511458, Guangdong, China; 4. Guangdong Provincial Key Laboratory of Intelligent Monitoring and Maintenance of Tunnel Structure, Guangzhou 511458, Guangdong, China)

  • Online:2026-05-20 Published:2026-05-20

摘要:

为解决长大隧道工程建造中信息传输面临的信号衰减、电磁干扰、多源异构数据适配性差等核心难题,满足施工“人、机、环”多维度数据的差异化传输需求,针对长大隧道工程建造信息传输关键技术开展研究。首先,分析隧道施工“人、机、环”多维度数据的采集特征与传输需求,区分检测与监测数据的传输差异;随后,构建“千兆工业光纤环网+WiFi6+Mesh无线网络”的混合组网架构,优化基站与天线部署方案,并通过现场试验验证部署方案的合理性,集成动态频谱感知、机器学习驱动的信号衰减预测、量子中继与加密、802.11k/v/r无缝漫游等技术,形成针对性的传输增强与抗干扰技术体系,同时研发融合通信系统与多维度数据存储模块;最后,依托某高海拔铁路超长隧道工程开展现场测试,验证系统整体性能与工程适用性。测试结果表明: 1)该系统平均网络延迟≤10 ms,环网故障自愈恢复时间≤35 ms,5.8 GHz频段500 m处有效传输速率稳定在300 Mbps左右,人员静态定位精度≤30 cm,动态车辆跟踪精度≤50 cm; 2)环境监测数据传输成功率≥99.99%,视频监控帧率稳定在25 fps,语音对讲清晰率≥95%,无线信号实现隧道100%全覆盖,移动终端切换丢包率≤0.5%; 3)与传统传输方式相比,系统延迟降低80%以上,网络故障自愈时间缩短65%,传输速率提升200%,有效解决了长距离传输衰减、电磁干扰、移动终端通信中断等技术难点,实现了隧道施工“人、机、环”多维度数据的精细化、高可靠传输。    

关键词: 长大隧道, 信息传输, 混合传输网络, Mesh自组网, 融合通信, UWB定位, 抗电磁干扰

Abstract:

The construction of long and large tunnels faces significant challenges in information transmission, including signal attenuation, electromagnetic interference, and poor adaptability to multi-source heterogeneous data. To address the diverse transmission needs of multi-dimensional data related to “human, equipment, and environment”, this study explores key technologies for information transmission in tunnel construction. First, the acquisition characteristics and transmission requirements of multi-dimensional data, highlighting the differences between the transmission requirements of detection and monitoring data, are analyzed. A hybrid networking architecture that innovatively combines a Gigabit Industrial Fiber Ring Network, WiFi6, and a Mesh Wireless Network is constructed. This includes an improved deployment scheme for base stations and antennas, with field tests validating the rationality of this deployment. A targeted technology system is developed to enhance transmission and mitigate interference, integrating dynamic spectrum sensing, machine learning-driven signal attenuation prediction, quantum relay and encryption, and seamless roaming via 802.11k/v/r. Furthermore, a converged communication system and multi-dimensional data storage module are developed. Field tests, conducted on a high-altitude railway ultra-long tunnel project, confirm the overall performance and engineering applicability of the proposed system. The results reveal the following: (1) an average network delay of ≤10 ms, a ring network fault self-healing recovery time of ≤35 ms, an effective transmission rate of approximately 300 Mbps at 500 m in the 5.8GHz band, a static positioning accuracy of ≤30 cm for personnel, and a dynamic vehicle tracking accuracy of ≤50 cm; (2) a transmission success rate of ≥99.99% for environmental monitoring data, a stable video surveillance frame rate of 25 fps, a voice intercom clarity rate of ≥95%, 100% wireless signal coverage in the tunnel, and a packet loss rate of ≤0.5% during mobile terminal handovers; and (3) significant improvements over traditional transmission methods, with an 80% reduction in system delay, a 65% decrease in network fault self-healing time, and a 200% increase in transmission rate. The proposed technology effectively addresses technical challenges such as long-distance transmission attenuation, electromagnetic interference, and communication disruptions in mobile terminals, enabling reliable and refined transmission of multi-dimensional data in tunnel construction involving “human, equipment, and environment”.

Key words: long and large tunnel, information transmission, hybrid transmission network, Mesh ad hoc network, integrated communication, Ultra Wide Band positioning, electromagnetic interference resistance