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基于与围岩相互作用的冻结壁弹塑性设计理论

杨维好, 杨志江, 柏东良

杨维好, 杨志江, 柏东良. 基于与围岩相互作用的冻结壁弹塑性设计理论[J]. 岩土工程学报, 2013, 35(1): 175-180.
引用本文: 杨维好, 杨志江, 柏东良. 基于与围岩相互作用的冻结壁弹塑性设计理论[J]. 岩土工程学报, 2013, 35(1): 175-180.
YANG Wei-hao, YANG Zhi-jiang, BO Dong-liang. Elastic-plastic design theory of frozen soil wall based on interaction between frozen wall and surrounding rock[J]. Chinese Journal of Geotechnical Engineering, 2013, 35(1): 175-180.
Citation: YANG Wei-hao, YANG Zhi-jiang, BO Dong-liang. Elastic-plastic design theory of frozen soil wall based on interaction between frozen wall and surrounding rock[J]. Chinese Journal of Geotechnical Engineering, 2013, 35(1): 175-180.

基于与围岩相互作用的冻结壁弹塑性设计理论  English Version

基金项目: 国家高科技研究发展计划(“863”计划)课题(2012AA06A401);中央高校基本科研业务费专项资金资助
详细信息
    作者简介:

    杨维好(1966- ),男,安徽淮南人,博士,教授,博士生导师,主要从事特殊凿井技术方面的科研与教学工作。E-mail: whyang@cumt.edu.cn。

  • 中图分类号: TU45;TD265.3

Elastic-plastic design theory of frozen soil wall based on interaction between frozen wall and surrounding rock

  • 摘要: 冻结壁设计理论是冻结法凿井技术的核心之一。传统的冻结壁厚度弹塑性设计公式在冻结壁与围岩的弹性模量之比小于10时有较大的误差。为了更合理地设计冻结壁,建立了考虑开挖卸载作用的冻结壁与围岩相互作用弹塑性力学模型,推导了应力与位移解析解,建立了新的弹塑性冻结壁厚度计算公式,分析了各因素对冻结壁厚度的影响规律。分析表明,新公式较传统的多姆克公式更合理,并建议选用Coulomb-Mohr屈服准则进行冻结壁厚度计算。
    Abstract: The design theory of frozen soil wall is one of the core technologies for mine shaft freezing sinking. The conventional elastic design formula for the thickness of frozen soil wall has large errors when the modulus ratio of the frozen soil wall to the surrounding rock is less than 10. Considering the excavation unloading effect and the interaction between the frozen soil wall and its surrounding rock, an elastic-plastic mechanical model is established for a more rational design of the frozen soil wall. The stress and displacement analytical solutions are deduced. A new elastic-plastic formula for the thickness of the frozen soil wall is developed on the basis of the solutions. The influences of various factors on the thickness of the frozen soil wall are discussed. The analyses show that the proposed formula is more reasonable than the traditional formula of Domke, and the Coulomb-Mohr yield criterion is suggested to calculate the thickness of the frozen soil wall.
  • [1] 翁家杰. 井巷特殊施工[M]. 北京: 煤炭工业出版社, 1991. (WENG Jia-jie. Special construction engineering of mine shaft and drift[M]. Beijing: Coal Industry Press, 1991. (in Chinese))
    [2] 崔广心, 杨维好, 吕恒林. 深厚表土层中的冻结壁和井壁[M]. 徐州: 中国矿业大学出版社, 1998. (CUI Guang-xin, YANG Wei-hao, LÜ Heng-lin. Frozen soil wall and mining shaft lining in deep alluvium[M]. Xuzhou: China University of Mining & Technology Press, 1998. (in Chinese))
    [3] 郑颖人, 沈珠江, 龚晓南. 岩土塑性力学原理[M]. 北京: 中国建筑工业出版社, 2003. (ZHENG Ying-ren, SHEN Zhu-jiang, GONG Xiao-nan. The principles of geotechnical plastic mechanics[M]. Beijing: China Architecture and Building Press, 2003. (in Chinese))
    [4] 杨维好, 杨志江, 韩 涛, 等. 基于与围岩相互作用的冻结壁弹性设计理论[J]. 岩土工程学报, 2012, 34(3): 516–519. (YANG Wei-hao, YANG Zhi-jiang, HAN Tao, et al. Elastic design theory of frozen soil wall based on interaction between frozen soil wall and surrounding rock[J]. Chinese Journal of Geotechnical Engineering, 2012, 34(3): 516–519. (in Chinese))
    [5] 陈湘生. 人工冻结粘土力学特性研究及冻土地基离心模型实验[D]. 北京: 清华大学, 1999. (CHEN Xiang-sheng. Study on mechanical characteristics of frozen clays and centrifugal modeling test of frozen soils[D]. Beijing: Tsinghua University, 1999. (in Chinese))
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出版历程
  • 收稿日期:  2012-02-29
  • 发布日期:  2013-01-31

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