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    垃圾填埋场斑脱土衬里可行性评价

    简文星 嘉门雅史 金山民政

    简文星, 嘉门雅史, 金山民政, 2003. 垃圾填埋场斑脱土衬里可行性评价. 地球科学, 28(5): 568-574.
    引用本文: 简文星, 嘉门雅史, 金山民政, 2003. 垃圾填埋场斑脱土衬里可行性评价. 地球科学, 28(5): 568-574.
    JIAN Wen-xing, Kamon Masashi, Kanayama Masatami, 2003. Feasibility Evaluation of Landfill Bentonite-Enhanced Liners. Earth Science, 28(5): 568-574.
    Citation: JIAN Wen-xing, Kamon Masashi, Kanayama Masatami, 2003. Feasibility Evaluation of Landfill Bentonite-Enhanced Liners. Earth Science, 28(5): 568-574.

    垃圾填埋场斑脱土衬里可行性评价

    基金项目: 中日政府互换奖学金(1999年)项目
    详细信息
      作者简介:

      简文星(1967-), 男, 副教授, 1998年获中国地质大学地质工程博士学位, 1999年在日本京都大学从事博士后研究工作, 研究方向为卫生垃圾填埋场的稳定性及人工复合粘土衬里的可行性.E-mail: wxjian@cug.edu.cn

    • 中图分类号: X53;X705

    Feasibility Evaluation of Landfill Bentonite-Enhanced Liners

    • 摘要: 首先对斑脱土衬里(粘土-斑脱土、砂-斑脱土) 进行变水头实验, 得粘土-斑脱土的渗透系数为6.0×10-9~3.0×10-8cm/s, 砂-斑脱土的渗透系数为1.0×10-9~3.0×10-9cm/s.从防渗角度分析, 2种斑脱土混合物均适合作垃圾填埋场的底层衬里.然后对斑脱土衬里进行持水与水迁移实验, 评价斑脱土衬里水的迁移特性.以水迁移实验为基础, 模拟斑脱土衬里与地基5种不同含水量的条件, 对斑脱土衬里进行直接剪切实验, 测定斑脱土衬里的剪切强度及斑脱土衬里与地基接触面的剪切强度.再对斑脱土衬里进行三轴固结不排水实验, 测定其总剪切强度与有效剪切强度.实验结果表明: 地下水具有很大的潜力从地基流向斑脱土衬里, 从而大大提高斑脱土衬里的含水量; 随着含水量的增加, 粘土-斑脱土、砂-斑脱土衬里的抗剪强度逐渐减小.根据实验所获得的抗剪强度参数, 选择日本山谷型垃圾填埋场典型剖面, 对山谷型垃圾填埋场进行稳定性评价.结果表明: 对于角度小于20°的缓倾角山谷型垃圾填埋场, 使用粘土-斑脱土、砂-斑脱土作为底层衬里是稳定的.因此, 2种斑脱土混合物适合作山谷型垃圾填埋场的底层衬里.

       

    • 图  1  柔壁变水头实验仪示意图

      Fig.  1.  Apparatus of falling head permeability test

      图  2  渗透实验结果

      Fig.  2.  Results of falling head permeability test

      图  3  含水量与毛细作用力的关系

      Fig.  3.  Matric suction against water content for clay-bentonite, sand-bentonite and Toyoura sand

      图  4  砂-斑脱土水迁移实验结果

      a.1, 2, 3, 4表示丰浦砂的初始含水量分别为8.4%, 17.1%, 24.6%及饱和时实验样品含水量的变化; b.1, 2, 3, 4表示丰浦砂的初始含量分别为9.8%, 14.3%, 18.6%及饱和时实验样品含水量的变化

      Fig.  4.  Water migration test results for sand-bentonite

      图  5  三轴固结不排水实验结果

      Fig.  5.  Results of consolidated undrained triaxial compression test

      图  6  山谷型垃圾填埋场综合地质剖面

      Fig.  6.  Cross section of a canyon solid waste landfill

      图  7  工况Ⅲ稳定系数与水平地震系数关系

      1.沿粘土-斑脱土内部; 2.沿粘土-斑脱土与地基的接触面; 3.沿砂-斑脱土衬里的内部; 4.沿砂-斑脱土与地基接触面; 5.沿垃圾焚烧灰尘内部

      Fig.  7.  Variation of factor of safety with horizontal seismic coefficients for case Ⅲ

      表  1  实验材料物理特征

      Table  1.   Properties of materials

      表  2  斑脱土衬里的基本物理特征

      Table  2.   Properties of bentonite mixture liners

      表  3  直接剪切实验的状况与实验结果

      Table  3.   Conditions and results of direct shear tests

      表  4  稳定性计算工况

      Table  4.   Assumed condition in stability analysis

    • [1] Koerner R M, Soong T. Stability assessment of ten large landfill failures[A]. In: Zornberg J G, Christopher B R, eds. Advances in transportation and geoenvironmental systems using geosynthetics[C]. Reston: American Society of Civil Engineers, 2000. 1-38.
      [2] Mitchell J K, Seed R B, Seed H B. Kettleman hills waste landfill slope failure. Ⅰ : Liner system properties[J]. J Geotech Engrg, 1990, 116(4): 647-668. doi: 10.1061/(ASCE)0733-9410(1990)116:4(647)
      [3] Seed R B, Mitchell J K, Seed H B. Kettleman hills waste landfill slope failure. Ⅱ : Stability analysis[J]. J Geotech Engrg, 1990, 116(4): 669-690. doi: 10.1061/(ASCE)0733-9410(1990)116:4(669)
      [4] Eid H T, Stark T D, Evans W D, et al. Municipal solid waste slope failure. Ⅰ : Waste and foundation soil properties[J]. Journal of Geotechnical and Geoenvironmental Engineering, 2000, 126(5): 397-407. doi: 10.1061/(ASCE)1090-0241(2000)126:5(397)
      [5] Stark T D, Eid H T, Evans W D, et al. Municipal solid waste slope failure. Ⅱ : Stability analysis[J]. Journal of Geotechnical and Geoenvironmental Engineering, 2000, 126(5): 408-419.
      [6] Kamon M, Katsumi M, Jian W, et al. Evaluation of landfill stability relating to clay liners[A]. In: Japanese Geotechnical Society, ed. Proceedings of the fourth Japan national symposium on environmental geotechnology[C]. Tokyo: Japanese Geotechnical Society, 2001. 297-302.
      [7] Kamon M, Katsumi T, Kanayama M, et al. Stability of solid waste landfills along clay liners[A]. In: Japan Society of Civil Engineers, ed. Proceedings of the second international summer symposium[C]. Tokyo: Japan Society of Civil Engineers, 2000. 249-252.
      [8] Imamura S. Geotechnical investigation of natural barrier properties at low level radioactive solid waste landfill site[D]. Kyoto: Kyoto University, 1996.
      [9] Jo H Y, Katsumi T, Benson C H, et al. Hydraulic conductivity and swelling of non-prehydrated GCLs permeated with single species salt solution[J]. Journal of Geotechnical and Geoenvironmental Engineering, 2001, 127(7): 557-567. doi: 10.1061/(ASCE)1090-0241(2001)127:7(557)
      [10] Black D K, Lee K L. Saturating laboratory samples by back pressure[J]. Journal of the Soil Mechanics and Foundations Division, 1973, 99(SM1): 75-93.
      [11] Jian W, Kamon M, Kanayama M. Shear strength behavior of two landfill clay liners[J]. Journal of China University of Geosciences, 2002, 13(3): 260-265.
      [12] 简文星. 浅谈日本固体废弃物的管理与处置技术[J]. 环境科学动态, 2002, (4): 1-5. https://www.cnki.com.cn/Article/CJFDTOTAL-HJKD200204000.htm

      JIAN W X. Some remarks on management and disposal technology of solid waste in Japan[J]. Environmental Science Trends, 2002, (4): 1-5. https://www.cnki.com.cn/Article/CJFDTOTAL-HJKD200204000.htm
      [13] Hirano K, Takematsu T, Ono S, et al. Settlement characteristics of incinerated ash in Amagasaki offshore disposal site[A]. In: Kansai Branch of the Japanese Geotechnical Society and International Institute for Advanced Studies, ed. Fourth Kansai international geotechnical forum-creation of new geo-environment[C]. Kyoto: Kansai Branch of the Japanese Geotechnical Society, 2000. 107-112.
      [14] Daniel D E. Geotechnical practice for solid waste disposal[M]. New York: Chapman & Hall, 1993. 252-253.
      [15] Abramson L W, Lee T S, Sharma S, et al. Slope stability and stabilization methods[M]. New York: John Wiley & Sons Inc, 1996. 410.
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    出版历程
    • 收稿日期:  2003-05-18
    • 刊出日期:  2003-09-25

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