• Turn off MathJax
    Article Contents
    YAO Maohong, CHEN Tielin, ZHU Pengcheng, LI Man, GUO Song, LIU Changbao. Experimental and numerical studies on gas pressure–induced deformation and failure of unsaturated soil[J]. Chinese Journal of Engineering. doi: 10.13374/j.issn2095-9389.2022.11.06.001
    Citation: YAO Maohong, CHEN Tielin, ZHU Pengcheng, LI Man, GUO Song, LIU Changbao. Experimental and numerical studies on gas pressure–induced deformation and failure of unsaturated soil[J]. Chinese Journal of Engineering. doi: 10.13374/j.issn2095-9389.2022.11.06.001

    Experimental and numerical studies on gas pressure–induced deformation and failure of unsaturated soil

    doi: 10.13374/j.issn2095-9389.2022.11.06.001
    More Information
    • Corresponding author: E-mail: tlchen1@bjtu.edu.cn
    • Received Date: 2022-11-06
      Available Online: 2023-04-04
    • Earth-cover landfills are one of the primary means of treating urban garbage. However, the organic matter in the garbage generates a large amount of gas upon degradation. The internal gas pressure will be substantially high if the gas generation rate is considerably high or if the gas drainage is not smooth, resulting in the deformation and destruction of the soil cover, thus affecting the stability of the landfill. Accordingly, a plane model test of gas pressure-induced failure of unsaturated soil was performed using a self-designed test device, and the deformation and failure mechanisms of soil under different soil thicknesses and gas pressures were comparably studied through numerical simulation. The results revealed that the process of soil damage induced by gas pressure can be divided into four stages—water and gas migration, local micro crack generation, main crack penetration, and internal cavity formation; Soil damage mainly occurs in the inverted triangle area between the top of the inflatable hole and the surface layer. The soil failure modes can be divided into two types—splitting and burst failure—depending on whether there was a previous gas-pressure effect. The failure pressure of soil increases in an approximately linear fashion with an increase in the thickness of the overlying soil. Accordingly, the concept of failure stress ratio was proposed, and it was observed that the failure stress ratio of each soil layer thickness can be approximately regarded as a constant, which has a certain importance for monitoring the landfill overburden in practical engineering. Additionally, the test results revealed that appropriate gas pressure is conducive to increasing the stability of soil mass; the soil mass will gradually become unstable if gas pressure exceeds a certain value, based on which the concept of critical stable gas pressure was proposed. Furthermore, the proposed numerical simulation method was used to establish a corresponding two-dimensional numerical model with reference to the model test. The numerical results, including the fracture propagation pattern and failure pressure results, were consistent with the model test results. On this basis, the seepage variation law within the soil mass was deeply studied. It was observed that the gas pressure increases the pore pressure inside the soil while driving the water to diffuse around, causing changes in the saturation of the surrounding soil. Finally, the simulation results revealed that regional change of effective stress increment may be the cause of critical stable gas pressure, providing a reference for practical engineering.

       

    • loading
    • [1]
      邱清文. 黃土/碎石覆蓋層水氣耦合運移規律及填埋氣減排性能[學位論文]. 浙江:浙江大學, 2016

      Qiu Q W. Study on Moisture-Gas Coupled Flow Inloess/Gravel Final Cover and Control of Landfill Gas Emission [Dissertation]. Zhejiang: Zhejiang University, 2016
      [2]
      吳濤. 毛細阻滯型覆蓋層水氣熱耦合運移機理及甲烷減排性能[學位論文]. 浙江:浙江大學, 2020

      Wu T. Study on the Methane Emission Reduction Performance and Coupled Moisture-Gas-Heat Reactive Transfer in Capillary Barrier Cover [Dissertation]. Zhejiang: Zhejiang University, 2020
      [3]
      Martin J W, Stark T D, Thalhamer T, et al. Detection of aluminum waste reactions and waste fires. J Hazard Toxic Radioact Waste, 2013, 17(3): 164 doi: 10.1061/(ASCE)HZ.2153-5515.0000171
      [4]
      Liu X D, Shi J Y, Qian X D, et al. Biodegradation behavior of municipal solid waste with liquid aspects: Experiment and verification. J Environ Eng, 2013, 139(12): 1488 doi: 10.1061/(ASCE)EE.1943-7870.0000750
      [5]
      Ma P C, Ke H, Lan J W, et al. Field measurement of pore pressures and liquid-gas distribution using drilling and ERT in a high food waste content MSW landfill in Guangzhou, China. Eng Geol, 2019, 250: 21 doi: 10.1016/j.enggeo.2019.01.004
      [6]
      Reddy K R, Kulkarni H S, Khire M V. Two-phase modeling of leachate recirculation using vertical wells in bioreactor landfills. J Hazard Toxic Radioact Waste, 2013, 17(4): 272 doi: 10.1061/(ASCE)HZ.2153-5515.0000180
      [7]
      潘永亮, 簡文星, 李林均, 等. 基于改進Green-Ampt模型的花崗巖殘積土邊坡降雨入滲規律研究. 巖土力學, 2020, 41(8):2685

      Pan Y L, Jian W X, Li L J, et al. A study on the rainfall infiltration of granite residual soil slope with improved Green-Ampt model. Rock Soil Mech, 2020, 41(8): 2685
      [8]
      姚茂宏, 陳鐵林, 樊容, 等. 強降雨條件下考慮氣壓和滲流作用的邊坡穩定性. 上海交通大學學報, 2022, 56(6):739 doi: 10.16183/j.cnki.jsjtu.2021.302

      Yao M H, Chen T L, Fan R, et al. Slope stability considering the effects of air pressure and seepage under heavy rainfall conditions. J Shanghai Jiaotong Univ, 2022, 56(6): 739 doi: 10.16183/j.cnki.jsjtu.2021.302
      [9]
      Zhang Z Y, Wang Y X, Fang Y H, et al. Global study on slope instability modes based on 62 municipal solid waste landfills. Waste Manag Res, 2020, 38(12): 1389 doi: 10.1177/0734242X20953486
      [10]
      Liu W, Yan S X, He S M. Landslide damage incurred to buildings: A case study of Shenzhen landslide. Eng Geol, 2018, 247: 69 doi: 10.1016/j.enggeo.2018.10.025
      [11]
      丁言露, 岳中琦. 高壓氣體誘發煤巖動力破壞的實驗研究. 地質力學學報, 2021, 27(4):643 doi: 10.12090/j.issn.1006-6616.2021.27.04.053

      Ding Y L, Yue Z Q. Experimental study on the dynamic rupture of coal and rock caused by high pressure gas. J Geomech, 2021, 27(4): 643 doi: 10.12090/j.issn.1006-6616.2021.27.04.053
      [12]
      岳中琦. 汶川地震與山崩地裂的極高壓甲烷天然氣成因和機理. 地學前緣, 2013, 20(6):15

      Yue Z Q. Cause and mechanism of highly compressed and dense methane gas mass for Wenchuan earthquake and associated rock-avalanches and surface co-seismic ruptures. Earth Sci Front, 2013, 20(6): 15
      [13]
      Townsend T G, Wise W R, Jain P. One-dimensional gas flow model for horizontal gas collection systems at municipal solid waste landfills. J Environ Eng, 2005, 131(12): 1716 doi: 10.1061/(ASCE)0733-9372(2005)131:12(1716)
      [14]
      Li Y C, Zheng J, Chen Y M, et al. One-dimensional transient analytical solution for gas pressure in municipal solid waste landfills. J Environ Eng, 2013, 139(12): 1441 doi: 10.1061/(ASCE)EE.1943-7870.0000759
      [15]
      Merry S M, Fritz W U, Budhu M, et al. Effect of gas on pore pressures in wet landfills. J Geotech Geoenviron Eng, 2006, 132(5): 553 doi: 10.1061/(ASCE)1090-0241(2006)132:5(553)
      [16]
      Shu S, Li Y P, Sun Z M, et al. Effect of gas pressure on municipal solid waste landfill slope stability. Waste Manag Res, 2022, 40(3): 323 doi: 10.1177/0734242X211001414
      [17]
      魏海云, 詹良通, 陳云敏. 垃圾填埋場抽氣豎井周邊氣體運移規律研究. 環境科學學報, 2013, 33(5):1306 doi: 10.13671/j.hjkxxb.2013.05.015

      Wei H Y, Zhan L T, Chen Y M. Study on gas migration around vertical extraction wells in municipal solid waste landfills. Acta Sci Circumstantiae, 2013, 33(5): 1306 doi: 10.13671/j.hjkxxb.2013.05.015
      [18]
      魏海云, 詹良通, 陳云敏, 等. 城市生活垃圾持水曲線的試驗研究. 巖土工程學報, 2007, 29(5):712 doi: 10.3321/j.issn:1000-4548.2007.05.013

      Wei H Y, Zhan L T, Chen Y M, et al. Experimental study on soil water characteristic curve of municipal solid waste. Chin J Geotech Eng, 2007, 29(5): 712 doi: 10.3321/j.issn:1000-4548.2007.05.013
      [19]
      魏海云, 詹良通, 陳云敏. 城市生活垃圾的氣體滲透性試驗研究. 巖石力學與工程學報, 2007, 26(7):1408 doi: 10.3321/j.issn:1000-6915.2007.07.014

      Wei H Y, Zhan L T, Chen Y M. Experimental study on gas permeability of municipal solid waste. Chin J Rock Mech Eng, 2007, 26(7): 1408 doi: 10.3321/j.issn:1000-6915.2007.07.014
      [20]
      施建勇, 趙義. 氣體壓力和孔隙對垃圾土體氣體滲透系數影響的研究. 巖土工程學報, 2015, 37(4):586 doi: 10.11779/CJGE201504002

      Shi J Y, Zhao Y. Influence of air pressure and void on permeability coefficient of air in municipal solid waste(MSW). Chin J Geotech Eng, 2015, 37(4): 586 doi: 10.11779/CJGE201504002
      [21]
      章定文, 劉松玉, 顧沉穎, 等. 土體氣壓劈裂的室內模型試驗. 巖土工程學報, 2009, 31(12):1925 doi: 10.3321/j.issn:1000-4548.2009.12.019

      Zhang D W, Liu S Y, Gu C Y, et al. Model tests on pneumatic fracturing in soils. Chin J Geotech Eng, 2009, 31(12): 1925 doi: 10.3321/j.issn:1000-4548.2009.12.019
      [22]
      韓文君, 劉松玉, 章定文. 土體氣壓劈裂裂隙擴展特性及影響因素分析. 土木工程學報, 2011, 44(9):87 doi: 10.15951/j.tmgcxb.2011.09.001

      Han W J, Liu S Y, Zhang D W. Characteristics and influencing factors analysis of propagation of pneumatic fracturing in soils. China Civ Eng J, 2011, 44(9): 87 doi: 10.15951/j.tmgcxb.2011.09.001
      [23]
      劉晶晶, 陳鐵林, 姚茂宏, 等. 砂層盾構隧道泥水劈裂試驗與數值研究. 浙江大學學報(工學版), 2020, 54(9):1715

      Liu J J, Chen T L, Yao M H, et al. Experimental and numerical study on slurry fracturing of shield tunnels in sandy stratum. J Zhejiang Univ (Eng Sci), 2020, 54(9): 1715
      [24]
      王榮鑫. 黏土地層劈裂注漿擴散特性研究[學位論文]. 北京:北京交通大學, 2020

      Wang R X. Research on Propagation Characteristics of Fracture Grouting in Clay Formation [Dissertation]. Beijing: Beijing Jiaotong University, 2020
      [25]
      陳仲頤, 周景星, 王洪瑾. 土力學. 北京:清華大學出版社, 1994

      Chen Z Y, Zhou J X, Wang H J. Soil Mechanics. Beijing: Tsinghua University Press, 1994
      [26]
      王凱, 刁心宏, 賴建英, 等. FLAC3D應變軟化與摩爾庫倫模型工程應用對比. 中國科技論文, 2015, 10(1):55 doi: 10.3969/j.issn.2095-2783.2015.01.013

      Wang K, Diao X H, Lai J Y, et al. Engineering application comparison of strain softening model and Mohr-Columb model in FLAC3D. China Sci, 2015, 10(1): 55 doi: 10.3969/j.issn.2095-2783.2015.01.013
      [27]
      Cho S E. Stability analysis of unsaturated soil slopes considering water-air flow caused by rainfall infiltration. Eng Geol, 2016, 211: 184 doi: 10.1016/j.enggeo.2016.07.008
      [28]
      Vanapalli S K, Fredlund D G, Pufahl D E, et al. Model for the prediction of shear strength with respect to soil suction. Can Geotech J, 1996, 33(3): 379 doi: 10.1139/t96-060
    • 加載中

    Catalog

      通訊作者: 陳斌, bchen63@163.com
      • 1. 

        沈陽化工大學材料科學與工程學院 沈陽 110142

      1. 本站搜索
      2. 百度學術搜索
      3. 萬方數據庫搜索
      4. CNKI搜索

      Figures(14)  / Tables(3)

      Article views (208) PDF downloads(27) Cited by()
      Proportional views
      Related

      /

      DownLoad:  Full-Size Img  PowerPoint
      Return
      Return
      中文字幕在线观看