干湿循环下龙游石窟砂岩化学损伤细观机理的数值模拟研究

    NUMERICAL SIMULATION FOR CHEMICAL DAMAGE OF LONGYOU GROTTOES SANDSTONE UNDER DRY-WET CYCLE

    • 摘要: 风化问题是石质文物保护工作中的难点与重点,而干湿循环会显著加速文物的风化损伤,造成岩石粉化、剥落甚至整体破坏。以龙游石窟泥质粉砂岩为例,构建了多场多相耦合的岩石化学损伤模型,并通过有限元模拟还原了干湿循环过程中毛细水侵入、重力释水和方解石胶结物溶蚀的物理-化学过程。在干湿循环作用下,龙游石窟砂岩内部孔隙流体出现气-液两相的转换,吸水过程较为迅速,具有与浸水边界平行的湿润锋面,而释水过程更为缓慢,且孔隙水无法完全疏干。随着孔隙水侵入,方解石胶结物溶解进入溶液,岩石内部孔隙水浓度高于表层孔隙水,差异溶蚀导致表层岩石化学损伤更为显著。干湿循环过程会更新孔隙流体,提高流体的侵蚀能力,循环周期的降低提高了整体损伤速率,增强了损伤的非均质性。

       

      Abstract: The weathering of stone cultural relics is a difficult and important problem in cultural heritage conservation. Dry-wet cycles significantly accelerate weathering damage, leading to pulverization, exfoliation, and even complete disintegration of the rock. To reveal the chemical damage mechanism under dry-wet cycling, a multi-field and multi-phase coupled damage mathematical model was constructed using the argillaceous siltstone of the Longyou Grottoes as an example. The physicochemical processes of capillary water intrusion, water release, and calcite cement dissolution during dry-wet cycles were reconstructed by finite element simulation. The results indicate that during dry-wet cycling, the pore fluid undergoes a gas-liquid two-phase transition. The water absorption process is relatively rapid, with a wetting front parallel to the water immersion boundary, while water release is slower and pore water cannot be completely drained by gravity alone. With pore water intrusion, calcite cement dissolves into solution, and the pore water concentration inside the rock exceeds that at the surface, leading to differential chemical damage. The dry-wet cycle process renews the pore fluid and enhances its erosive capacity. Therefore, increasing the number of cycles promotes the overall damage rate and increases damage heterogeneity.

       

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