• 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
PAN Jia-jun, CHENG Zhan-lin, YU Ting, JIANG Ji-wei, ZUO Yong-zhen, XU Han. Experimental study on stress-strain characteristics of coarse-grained soil under different intermediate principal stresses[J]. Chinese Journal of Geotechnical Engineering, 2016, 38(11): 2078-2084. DOI: 10.11779/CJGE201611018
Citation: PAN Jia-jun, CHENG Zhan-lin, YU Ting, JIANG Ji-wei, ZUO Yong-zhen, XU Han. Experimental study on stress-strain characteristics of coarse-grained soil under different intermediate principal stresses[J]. Chinese Journal of Geotechnical Engineering, 2016, 38(11): 2078-2084. DOI: 10.11779/CJGE201611018

Experimental study on stress-strain characteristics of coarse-grained soil under different intermediate principal stresses

More Information
  • Received Date: October 12, 2015
  • Published Date: November 19, 2016
  • In order to study how the intermediate principal stress (short for IPS) influences the stress-strain characteristic of coarse-grained soil, using the large-scale true triaxial apparatus developed by Changjiang River Scientific Research Institute (CRSRI), a series of true triaxial compression tests and plane strain tests are carried out. The test results show that: (1) When the IPS ratio (also called b value) is a constant, the slope of stress-strain curves and the peak strength increase with the increasing consolidation pressure; (2) Under the relative low confining pressure conditions, with the increasing axial strain, the volumetric strain exhitits shear contracting firstly and then dilating, but when the confining pressure rises to a higher level, the volumetric strain shows shear contracting in the whole deformation process; (3) When the consolidation pressure is the same, with the increase of b value, the stress softening effect after the peak stress becomes more obvious. Under a relative lower consolidation pressure, the volumetric strain exhibits the characteristics of shear contracting firstly and then dilating. For the relation curves between the minimum and the maximum principal strains, the absolute value of slope also increases. The above results can be treated as the research foundation in establishing the constitutive model for coarse-grained soil under complex stress paths.
  • [1]
    程展林, 丁红顺, 吴良平. 粗粒土试验研究[J]. 岩土工程学报, 2007, 29(8): 1151-1158. (CHENG Zhan-lin, DING Hong-shun, WU Liang-ping. Experimental study on mechanical behaviour of granular material[J]. Chinese Journal of Geotechnical Engineering, 2007, 29(8): 1151-1158. (in Chinese))
    [2]
    程展林, 姜景山, 丁红顺, 等. 粗粒土非线性剪胀模型研究[J]. 岩土工程学报, 2010, 32(3): 331-337. (CHENG Zhan-lin, JIANG Jing-shan, DING Hong-shun, et al. Nonlinear Dilatant Model for Coarse-Grained Soils[J]. Chinese Journal of Geotechnical Engineering, 2010, 32(3): 331-337. (in Chinese))
    [3]
    程展林, 陈 鸥, 左永振, 等. 再论粗粒土剪胀性模型[J]. 长江科学院院报, 2011, 28(6): 39-45. (CHENG Zhan-lin, CHEN Ou, ZUO Yong-zhen, et al. Further discussion on dilatancy model for coarse-grained soils[J]. Journal of Yangtze River Scientific Research Institute, 2011, 28(6): 39-45. (in Chinese))
    [4]
    陈晓斌. 红砂岩粗粒土剪胀效应大型三轴试验研究[J]. 岩石力学与工程学报, 2010, 29(增刊1): 3145-3149. (CHEN Xiao-bin. Study of dilatancy effect of redstone coarse grained soil by large sacle triaxial tests[J]. Chinese Journal of Rock Mechanics and Engineering, 2010, 29(S1): 3145-3149. (in Chinese))
    [5]
    姜景山, 刘汉龙, 程展林, 等. 密度和围压对粗粒土力学性质的影响[J]. 长江科学院院报, 2009, 26(8): 46-50. (JIANG Jing-shan, LIU Han-long, CHENG Zhan-lin, et al. Influences of density and confining pressure on mechanical properties for coarse-grained soil[J]. Journal of Yangtze River Scientific Research Institute, 2009, 26(8): 46-50. (in Chinese))
    [6]
    殷宗泽. 土的侧膨胀性及其对土石坝应力变形的影响[J]. 水利学报, 2000, 31(7): 49-54. (YIN Zong-ze. The effect of soil lateral dilation behavior on stress and strain of earth and rockfill dams[J]. Journal of Hydraulic Engineering, 2000, 31(7): 49-54. ( in Chinese))
    [7]
    殷宗泽, 张坤勇, 朱俊高. 面板堆石坝应力变形计算中考虑土的各向异性[J]. 水利学报, 2004, 35(11): 22-26. (YIN Zong-ze, ZHANG Kun-yong, ZHU Jun-gao. Computation for stress and deformation of concrete slab in rockfill dam in consideration of soil anisotropy[J]. Journal of Hydraulic Engineering, 2004, 35(11): 22-26. (in Chinese))
    [8]
    ANHDAN, L, KOSEKI J, SATO T Evaluation of quasi-elastic properties of gravel using a large-scale true triaxial apparatus[J]. Geotechnical Testing Journal, 2006, 29(5): 374-384.
    [9]
    SUITS LD, SHEAHANTC, CHOI C, et al. Development of a true triaxial apparatus for sands and gravels[J]. Geotechnical Testing Journal, 2008, 31(1): 32-44.
    [10]
    施维成, 朱俊高, 何顺宾, 等. 粗粒土应力诱导各向异性真三轴试验研究[J]. 岩土工程学报, 2010, 32(5): 810-814. (SHI Wei-cheng, ZHU Jun-gao, HE Shun-bin, et al. Stress-induced anisotropy of coarse-grained soil by true triaxial tests[J]. Chinese Journal of Geotechnical Engineering, 2010, 32(5): 810-814. (in Chinese))
    [11]
    施维成, 朱俊高, 刘汉龙. 中主应力对砾石料变形和强度的影响[J]. 岩土工程学报, 2008, 30(10): 1449-1453. (SHI Wei-cheng, ZHU Jun-gao, LIU Han-long. Influence of intermediate principal stress on deformation and strength of gravel[J]. Chinese Journal of Geotechnical Engineering, 2008, 30(10): 1449-1453. (in Chinese))
    [12]
    SHI Wei-cheng, ZHU Jun-gao, CHIU Chung-fai, et al. Strength and deformation behaviour of coarse-grained soil by true triaxial tests[J]. Journal of Central South University, 2010, 17: 1095-1102.

Catalog

    Article views (331) PDF downloads (269) Cited by()
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return