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隧道建设(中英文) ›› 2026, Vol. 46 ›› Issue (5): 994-1004.DOI: 10.3973/j.issn.2096-4498.2026.05.008

• 研究与探索 • 上一篇    下一篇

变温养护技术对地下混凝土结构抗渗性能的提升效果

李嘉诚1, 2, 黄明利3, 谭世阳3   

  1. (1. 山西省交通建设工程质量检测中心(有限公司), 山西 太原 030032; 2. 山西交通科学研究院集团有限公司, 山西 太原 030032; 3. 北京交通大学土木建筑工程学院, 北京 100044)
  • 出版日期:2026-05-20 发布日期:2026-05-20
  • 作者简介:李嘉诚(1996—),男,山西吕梁人,2025年毕业于北京交通大学,隧道与地下工程专业,博士,工程师,现从事隧道结构性能评估及健康监测研究工作。E-mail: 21115019@bjtu.edu.cn。

Effect of Variable-Temperature Curing Technology on Improving Impermeability of Underground Concrete Structures

LI Jiacheng1, 2, HUANG Mingli3, TAN Shiyang3   

  1. (1. Shanxi Provincial Transportation Construction Engineering Quality Testing Center Co., Ltd., Taiyuan 030032, Shanxi, China; 2. Shanxi Transportation Research Institute Group Co., Ltd., Taiyuan 030032, Shanxi, China; 3. School of Civil Engineering, Beijing Jiaotong University, Beijing 100044, China)
  • Online:2026-05-20 Published:2026-05-20

摘要:

为探究不同养护方式对混凝土结构渗流特性的影响规律,建立地下混凝土结构在“结构”层面的渗流分析框架,开展三轴压缩渗流试验,探究养护方式、竖向荷载、渗流压力等因素对混凝土渗透性的影响;考虑荷载-渗流耦合效应建立变温养护和标准养护混凝土的时变渗流模型;结合随机场理论构建考虑设计参数时空随机性的地下混凝土结构渗流分析框架,并以西南某高水温隧道为例进行分析。结果表明: 1)养护方式是影响混凝土渗透性的关键因素,变温养护可提升混凝土的密实性,降低渗透系数。2)相同养护条件下,混凝土在低应力水平(5 MPa内)时,渗透系数随压应力增加而降低,二者关系近似可用三次多项式描述。3)案例分析进一步揭示,变温养护对衬砌抗渗性能的提升具有系统性作用,相较于标准养护方式,变温养护不仅直接降低了衬砌的初始渗透系数,更显著延缓了其抗渗性能随服役时间的劣化速率;在相同服役环境下,变温养护衬砌达到特定劣化等级所需的时间较标准养护衬砌显著延长,表明变温养护技术可有效改善混凝土材料的微观结构,提升衬砌抵抗渗流侵蚀的长期能力。

关键词: 隧道衬砌, 混凝土结构, 变温养护, 高水温, 渗流模型, 抗渗性能

Abstract:

Based on triaxial seepage tests, the effect of curing methods on the seepage characteristics of concrete structures is investigated. Subsequently, a framework for structural-level underground concrete seepage analysis is established. Particularly, the influences of the curing method, vertical load, and seepage pressure on concrete permeability are examined. Then, time-dependent seepage models are developed for concrete cured under variable-temperature and standard conditions, considering the load and seepage coupling. Further, random field theory is employed to construct the seepage analytical framework, accounting for the spatial and temporal randomness of design parameters. The proposed analytical framework was applied to a tunnel with high water temperature in southwest China. The findings are as follows. (1) The curing method plays a pivotal role in determining concrete permeability. Variable-temperature curing improves concrete compactness and reduces the permeability coefficient. (2) Under identical curing conditions and low stress levels (within 5 MPa), the permeability coefficient decreases with increasing compressive stress, and this relationship can be approximated by a cubic polynomial. (3) Variable-temperature curing systematically enhances lining impermeability; compared with standard curing, it not only reduces the initial permeability coefficient of linings but also markedly decelerates the degradation of impermeability performance over service time. Under the same service conditions, linings cured under variable-temperature conditions require considerably more time to reach a given deterioration level than those cured under standard conditions, demonstrating that variable-temperature curing effectively refines the concrete microstructure and improves the long-term resistance of linings to seepage erosion.

Key words: tunnel lining, concrete structure, variable-temperature curing, high water temperature, seepage model, impermeability performance