• 全国中文核心期刊
  • 中国科技核心期刊
  • 美国工程索引(EI)收录期刊
  • Scopus数据库收录期刊

关于具有多层复合衬里填埋场稳定安全的探讨

钱学德, 施建勇

钱学德, 施建勇. 关于具有多层复合衬里填埋场稳定安全的探讨[J]. 岩土工程学报, 2011, 33(11): 1676-1682.
引用本文: 钱学德, 施建勇. 关于具有多层复合衬里填埋场稳定安全的探讨[J]. 岩土工程学报, 2011, 33(11): 1676-1682.
QIAN Xue-de, SHI Jian-yong. Stability problems for landfills with multilayer geosynthetic liner system[J]. Chinese Journal of Geotechnical Engineering, 2011, 33(11): 1676-1682.
Citation: QIAN Xue-de, SHI Jian-yong. Stability problems for landfills with multilayer geosynthetic liner system[J]. Chinese Journal of Geotechnical Engineering, 2011, 33(11): 1676-1682.

关于具有多层复合衬里填埋场稳定安全的探讨  English Version

基金项目: 国家自然科学基金项目( 50879022 );江苏省自然科学基金项目( BK2008355 )
详细信息
    作者简介:

    钱学德 (1949 – ) ,江苏无锡市人,博士,教授,主要从事环境岩土工程研究。

  • 中图分类号: TU411

Stability problems for landfills with multilayer geosynthetic liner system

  • 摘要: 防止含有多层土工合成材料复合衬里的填埋场的平移破坏是填埋场设计中的最重要问题之一。发生在多层衬里界面上的平移破坏的破坏面可能会在背坡上通过衬里的一个界面,而在底部却通过衬里的另一个界面;具有最小安 全系数的衬里最危险界面会随着填埋高度和填埋体形状的变化从一个界面转移到另一个界面。在填埋高度较小时, 30 cm 的渗滤液水位对稳定分析计算的最危险界面和安全系数都会有较大的影响;但是随着填埋高度的增高, 30 cm 的渗滤液水位对最危险界面改变的和安全系数降低比例的影响变得越来越小。由于渗滤液水位的升高,不仅会导致安全系数的减小,而且还可能会导致多层衬里的最危险界面从一个界转移到另一个界面。提高设计水平,解决目前我国填埋场在长期运行中的渗滤液水位升高问题,保证填埋场的稳定性,是目前迫切需要重视和解决的问题。
    Abstract: To prevent translational failure along the liner system is the most important issue for the modern landfills. The critical liner interface with the minimum factor of safety usually is not located at the same interface at the base and back slope. The critical interface can change from one to another with the waste height. When the waste height is low, the leachate head of 30 cm can make a relatively large effect on both the factor of safety and the critical interface. This effect will decrease with the increase of the waste height. The increase of the leachate head in landfills makes the decrease of the factor of safety rapidly and causes the changes of the critical interface. It is important to maintain the leachate head at a low and safe level and ensure that the minimum factor of safety at the critical interface is always equal to or greater than a targeted value during the filling sequence corresponding to different geometric dimensions of the waste.
  • [1] QIAN X, KOERNER R M, GRAY D H. Geotechnical aspects of landfill design and construction[R]. New Jersey: Upper Saddle River, Prentice Hall Inc, 2002.
    [2] CJJ 17 — 2004 城市生活垃圾卫生填埋技术规范 [S]. 2004. (CJJ 17 — 2004 Technical Code for Municipal Solid Waste Sanitary Landfill[S]. 2004. (in Chinese))
    [3] CJJ113 — 2007 生活垃圾卫生填埋场防渗系统工程技术规范 [S]. 2007. (CJJ113 — 2007 Technical code for liner system of municipal solid waste landfill[S]. 2007. (in Chinese))
    [4] GB 16889 — 2008 生活垃圾填埋场污染控制标准 [S]. 2008. (GB 16889 — 2008 Standard for pollution control on the landfill site of municipal solid waste[S]. 2008. (in Chinese))
    [5] KOERNER R M, SOONG T Y. Stability assessment of ten large landfill failures[C]// advances in transportation and geoenvironmental systems using geosynthetics, proceedings of sessions of GeoDenver 2000, ASCE Geotechnical Special Publication No 103: 1 – 38.
    [6] QIAN X, KOERNER R M. A new method to analyze for, and design against, translational failures of geosynthetic lined landfills[C]// Geosynthetics and geosynthetic-engineered structures, The ASME/ASCE/SES McMat 2005 Conference, Baton Rouge, Louisiana, 2005: 61 – 98.
    [7] QIAN X, KOERNER R M. Stability analysis for using engineered berm to increase landfill space[J]. Journal of Geotechnical and Geoenvironmental Engineering, ASCE, 2009, 135 (8): 1082 – 1091.
    [8] KOERNER G R, NAREJO D. Direct shear database of geosynthetic-to-geosynthetic and geosynthetic-to-soil interfaces (GRI Report No 30) [R]. USA: Geosynthetic Research Institute, 2005.
    [9] DIXON N, JONES D R V, FOWMES G J. Interface shear strength vauablility and its use in reliability – based landfill stability analysis[J]. Geosynthetics International, 2006, 13 (1): 1 – 14.
    [10] STARK T D, POEPPEL A R. Landfill liner interface strengths from torsional-ring-shear tests[J]. Journal of Geotechnical Engineering, ASCE, 1994, 120 (3): 597 – 615.
    [11] FILZ G M, ESTERHUIZEN J J B, DUNCAN J M. Progressive failure of lined waste impoundments[J]. Journal of Geotechnical and Geoenvironmental Engineering, ASCE, 2001, 127 (10): 841 – 848.
    [12] 朱俊高 , 施建勇 , 严 蕴 . 垃圾填埋场固体废弃物的强度特性试验研究 [C]// 第一届全国环境岩土工程与土工合成材料技术研讨会论文集 . 杭州 : 浙江大学出版社 , 2002: 192 – 196. (ZHU J G., SHI J Y, YAN Y. Tests of strength properties of solid waste in landfills[C]// Proc 1st Chinese Symp on Geoenviroment and Geosynthetics. Hangzhou: Zhejiang University Press, 2002: 192 – 196. (in Chinese))
    [13] ZHAN L T, CHEN Y M, LING W. Shear strength characterization of municipal solid waste at the suzhou landfill, China[J]. Engineering Geology, 2008: 97 (3-4): 97 – 111.
    [14] SHI J Y, QIAN X, ZHU J G, et al. Application of shear strength of solid waste and multilayer liner in landfills[C]// Proc 2009 Int Symp on Geoenviron Eng, Hangzhou, 2009: 286 – 294.
    [15] QIAN X, KOERNER R M, GRAY D H. Translational failure analysis of landfills[J]. Journal of Geotechnical and Geoenvironmental Engineering, ASCE, 2003, 129 (6): 506 – 519.
    [16] QIAN Xue-de, KOERNER R M. Effect of apparent cohesion on translational failure analyses of landfills[J]. Journal of Geotechnical and Geoenvironmental Engineering, ASCE, 2004, 130 (1): 71 – 80.
    [17] QIAN X, GRAY D H, KOERNER R M. Estimation of maximum liquid head over landfill barriers[J]. Journal of Geotechnical and Geoenvironmental Engineering, ASCE, 2004, 130 (5): 488 – 497.
计量
  • 文章访问数:  974
  • HTML全文浏览量:  1
  • PDF下载量:  485
  • 被引次数: 0
出版历程
  • 发布日期:  2011-11-14

目录

    /

    返回文章
    返回