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隧道建设(中英文) ›› 2026, Vol. 46 ›› Issue (8): 1775-1787.DOI: 10.3973/j.issn.2096-4498.2026.08.016

• 规划与设计 • 上一篇    下一篇

可调吃水组合式沉放驳-沉管结构的水动力响应

冯嘉成1, 2, 3, 韩涛1, 2, 3, *, 孙运佳1, 2, 3, 吕迎雪1, 2, 3, 宋悦4   

  1. (1. 中交天津港湾工程研究院有限公司, 天津 300222; 2. 中交集团海岸工程水动力重点实验室, 天津 300222; 3. 中交第一航务工程局有限公司, 天津 300461; 4. 天津大学 水利工程智能建设与运维全国重点实验室, 天津 300350)
  • 出版日期:2026-08-20 发布日期:2026-08-20
  • 作者简介:冯嘉成(2000—),男,甘肃兰州人,2024年毕业于天津大学,水利工程专业,硕士,工程师,现从事海洋结构浮体和海上风电结构研究工作。E-mail: 1092445309@qq.com。*通信作者: 韩涛, E-mail: necrohan@126.com。

Hydrodynamic Response of an Adjustable-Draft Submerged Barge for Immersed-Tunnel Construction

FENG Jiacheng1, 2, 3, HAN Tao1, 2, 3, *, SUN Yunjia1, 2, 3, LYU Yingxue1, 2, 3, SONG Yue4   

  1. (1. CCCC-Tianjin Port Engineering Institute Co., Ltd., Tianjin 300222, China; 2. Key Laboratory of Coastal Engineering Hydrodynamics, CCCC, Tianjin 300222, China; 3. CCCC First Harbor Engineering Co., Ltd., Tianjin 300461, China; 4. State Key Laboratory of Hydraulic Engineering Intelligent Construction and Operation, Tianjin University, Tianjin 300350, China)
  • Online:2026-08-20 Published:2026-08-20

摘要: 为探究可调吃水组合式沉放驳在浮运施工中的水动力响应及连接结构力学特性,以顺德伦桂路内河沉管隧道工程施工装备为研究对象,采用物理模型试验与数值模拟相结合的方法开展研究。针对组合式沉放驳分段运输、现场组装的结构特点,重点分析其在典型波流工况及不同吃水条件下的结构受力与运动响应,并对连接部位的关键薄弱环节进行重点讨论。进一步利用AQWA建立数值模拟模型,并结合试验结果进行验证;在此基础上,通过频域分析得到不同波浪周期下的幅值响应算子和结构运动响应特征。研究结果表明: 1)组合式沉放驳-沉管结构具有明显的方向性动力响应特征,横浪作用下更易激发横摇与横荡共振,吊缆拉力及结构受力峰值显著高于顺浪工况,是结构设计的关键控制工况; 2)波高是影响吊缆峰值拉力的主要因素,不规则波条件下更易引起受力突变,而沉放工况下浮力增大可有效降低吊缆受力水平; 3)数值模拟计算结果与物理模型试验结果吻合较好,幅值响应算子结果表明横摇主共振周期约为 5 s,纵摇主响应周期约为 7 s,明确了系统主要运动自由度的共振区间。

关键词: 组合式沉放驳, 沉管隧道, 数值模拟, 物理模型试验, 可调吃水, 水动力响应

Abstract: To investigate the hydrodynamic response and mechanical behavior of the connection structures of an adjustable-draft modular submerged barge during floating transportation, a combined physical model testing and numerical simulation approach was adopted. A case study was conducted using the construction equipment developed for the Lungui Road inland immersed-tunnel project in Shunde, China. Considering the segmented transportation and on-site assembly characteristics of the modular barge, the structural loads and motion responses under representative wave-current conditions and different draft levels were systematically analyzed, with particular emphasis on the critical connection components. A numerical model was subsequently established in AQWA and validated against the physical model test results. Frequency-domain analyses were then performed to obtain the response amplitude operators under different wave periods and to characterize the motion responses of the structure. The results show that: (1) The adjustable-draft barge exhibits pronounced directional hydrodynamic responses. Beam waves are more likely to induce roll and sway resonance, and produce substantially greater peak tensions and structural loads than head waves, making them the critical design condition. (2) Wave height is the primary factor governing peak tension, whereas abrupt load variations are more likely under irregular waves. During immersion, the increase in buoyancy effectively reduces sling-force levels. (3) The numerical results agree well with the physical model test data. The response amplitude operator analysis indicates that the dominant resonance period is approximately 5 s for roll and 7 s for pitch, thereby identifying the principal resonance ranges of system’s motion degrees of freedom.

Key words: combined submerged barge, immersed tunnel, numerical simulation, physical model testing, adjustable draft, hydrodynamic response