开发考虑冻融和化学腐蚀影响的节理岩体剪切蠕变破坏模型

IF 2.1 4区 材料科学 Q2 MATERIALS SCIENCE, CHARACTERIZATION & TESTING
Fengrui Zhang, Annan Jiang, Haopeng Jiang, Xinping Guo, Fu Zheng
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引用次数: 0

摘要

为了对寒冷地区的节理岩体工程进行更真实的数值模拟分析,对冻融和化学腐蚀条件下的节理岩体进行了剪切蠕变试验。根据试验结果,建立了节理岩体的剪切蠕变破坏模型。在 3DEC 平台上使用 FISH 语言实现了模型的二次开发,并通过退化分析和试验数据验证了模型的合理性。最后,利用所建立的模型对寒冷地区隧道的蠕变特性进行了数值计算,研究结果表明(1)在 0、20、40 和 60 次冻融循环和化学腐蚀作用下,隧道的最大蠕变变形分别为 16.0 毫米、20.9 毫米、24.2 毫米和 34.1 毫米。随着冻融循环和化学腐蚀次数的增加,蠕变变形和塑性区逐渐增大。(2) 随着接合面倾斜角从 0°增加到 90°,蠕变变形逐渐减小。当连接面倾斜角为 0°、30°、60° 和 90°时,最大蠕变变形分别为 29.7 mm、27.6 mm、24.2 mm 和 22.5 mm。(3) 随着蠕变时间的增加,隧道的蠕变变形逐渐增大。10 天、30 天、60 天和 90 天后的拱形变形分别为 9.3 毫米、18.6 毫米、24.2 毫米和 27.3 毫米。研究结果为寒冷地区岩体工程的稳定性分析提供了一种有效的计算方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Development of a shear creep damage model of jointed rock masses considering the influence of freeze-thaw and chemical corrosion

Development of a shear creep damage model of jointed rock masses considering the influence of freeze-thaw and chemical corrosion

Development of a shear creep damage model of jointed rock masses considering the influence of freeze-thaw and chemical corrosion

To conduct a more realistic numerical simulation analysis of jointed rock mass engineering in cold regions, shear creep tests were conducted on the jointed rock masses under freeze-thaw and chemical corrosion. Based on test results, a shear creep damage model of jointed rock masses was established. The FISH language was used on the 3DEC platform to implement the secondary development of the model, and the rationality of the model was verified through degradation analysis and test data. Finally, the developed model was used to numerically calculate the creep characteristics of tunnel in cold regions, the research results show that: (1) The maximum creep deformations of tunnel subjected to 0, 20, 40, and 60 freeze-thaw cycles and chemical corrosion are 16.0 mm, 20.9 mm, 24.2 mm, and 34.1 mm, respectively. With the increase of freeze-thaw cycles and chemical corrosion, the creep deformation and plastic zone gradually increase. (2) As the joint plane inclination angle increases from 0° to 90°, the creep deformation gradually decreases. When the joint plane inclination angle are 0°, 30°, 60°, and 90°, the maximum creep deformations are 29.7 mm, 27.6 mm, 24.2 mm, and 22.5 mm, respectively. (3) With the increase of creep time, the creep deformation of the tunnel gradually increases. The arch deformation is 9.3 mm, 18.6 mm, 24.2 mm and 27.3 mm after 10 days, 30 days, 60 days and 90 days respectively. The research results provide an effective computational method for the stability analysis of rock mass engineering in cold regions.

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来源期刊
Mechanics of Time-Dependent Materials
Mechanics of Time-Dependent Materials 工程技术-材料科学:表征与测试
CiteScore
4.90
自引率
8.00%
发文量
47
审稿时长
>12 weeks
期刊介绍: Mechanics of Time-Dependent Materials accepts contributions dealing with the time-dependent mechanical properties of solid polymers, metals, ceramics, concrete, wood, or their composites. It is recognized that certain materials can be in the melt state as function of temperature and/or pressure. Contributions concerned with fundamental issues relating to processing and melt-to-solid transition behaviour are welcome, as are contributions addressing time-dependent failure and fracture phenomena. Manuscripts addressing environmental issues will be considered if they relate to time-dependent mechanical properties. The journal promotes the transfer of knowledge between various disciplines that deal with the properties of time-dependent solid materials but approach these from different angles. Among these disciplines are: Mechanical Engineering, Aerospace Engineering, Chemical Engineering, Rheology, Materials Science, Polymer Physics, Design, and others.
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