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隧道建设(中英文) ›› 2026, Vol. 46 ›› Issue (8): 1659-1675.DOI: 10.3973/j.issn.2096-4498.2026.08.007

• 研究与探索 • 上一篇    下一篇

盾构掘进位姿控制试验平台研制及应用

王旭阳1, 2, 杨衢媛1, 金大龙2, 沈翔3, 袁大军2   

  1. (1. 极端环境岩土和隧道工程智能建养全国重点实验室(西南交通大学), 四川 成都 610031;2. 北京交通大学土木建筑工程学院, 北京 100044; 3. 深圳大学土木与交通工程学院, 广东 深圳 518060)
  • 出版日期:2026-08-20 发布日期:2026-08-20
  • 作者简介:王旭阳(1993—),男,河南汝州人,2023年毕业于北京交通大学,土木工程专业,博士,助理研究员,现从事盾构机-土相互作用与自主掘进技术研究工作。 E-mail: wangxuyang45@〖KG-*5〗163.com。

Development and Application of an Experimental Platform for Attitude Control in Shield Tunneling

WANG Xuyang1, 2, YANG Quyuan1, JIN Dalong2, SHEN Xiang3, YUAN Dajun2   

  1. (1. State Key Laboratory of Intelligent Geotechnics and Tunnelling, Southwest Jiaotong University, Chengdu 610031, Sichuan, China; 2. School of Civil Engineering, Beijing Jiaotong University, Beijing 100044, China; 3. College of Civil and Transportation Engineering, Shenzhen University, Shenzhen 518060, Guangdong, China)
  • Online:2026-08-20 Published:2026-08-20

摘要: 针对盾构掘进位姿控制试验中负载模拟与控制算法验证需求,研制一套集成负载模拟、高精度测量与控制算法验证功能的盾构掘进位姿控制试验平台,并开展基于模型预测控制(MPC)算法的位姿控制试验。平台采用机械、液压、电控、软件一体化设计,构建由六油缸非均布推进系统、正面负载模拟系统、盾周负载模拟系统及综合测控系统组成的试验体系; 其中,采用“液压油缸+弹簧阻尼器”组合方案协同模拟正面负载与盾周约束,控制层通过LabVIEW与MATLAB混编实现MPC控制器在线求解。主要结论如下: 1)研发的试验平台可满足位姿控制试验需求; 2)MPC控制器可基于当前实测状态对未来位姿响应进行多步预测,并通过“反馈校正-滚动优化”的方式实现前瞻性纠偏调节; 3)均匀负载条件下,盾体推进速度总体平稳,俯仰角和偏航角均围绕0°附近小幅波动,而在非均匀负载工况下MPC控制器能够根据位姿偏差趋势及时调整分区油缸推力,有效抑制了俯仰角和偏航角偏差,为复杂负载工况下盾构掘进位姿控制提供了试验验证和方法参考。

关键词: 盾构掘进, 负载模拟, 位姿控制, 试验平台, 模型预测控制

Abstract: Shield tunneling attitude-control tests require load simulation and control-algorithm validation. Accordingly, an experimental platform integrating load simulation, high-precision measurement, and control-algorithm verification is developed. Attitude-control experiments are conducted using a model predictive control (MPC) algorithm. The platform adopts a mechanical-hydraulic-electrical integrated design and consists of a nonuniform six-cylinder propulsion system, a frontal load simulation system, a shield-peripheral load simulation system, and a comprehensive measurement and control system. Frontal and peripheral loads are simulated collaboratively using a combination of hydraulic cylinders and spring-damper elements, while the control layer implements an online MPC solver through a LabVIEW-MATLAB co-simulation framework. The research results demonstrate the following: (1) The developed test platform meets the requirements for attitude-control experiments. (2) The MPC controller can perform multi-step prediction of future attitude responses based on the current measured state and achieve proactive correction via a feedback-based rolling optimization strategy. (3) Under uniform loading conditions, the shield propulsion speed remains generally stable, while the pitch and yaw angles fluctuate slightly around 0°. However, under nonuniform loading conditions, the MPC controller adjusts the thrust of individual cylinders according to attitude deviation trends, effectively suppressing pitch and yaw deviations. This work provides experimental validation and a methodological reference for attitude control in shield tunneling under complex loading conditions.

Key words: shield tunneling, load simulation, attitude control, experimental platform, model predictive control