Rock and Soil Mechanics ›› 2020, Vol. 41 ›› Issue (6): 1971-1982.doi: 10.16285/j.rsm.2019.1312

• Fundamental Theroy and Experimental Research • Previous Articles     Next Articles

Influence of compaction test types on compaction characteristics of EPS particles light weight soil

YANG Kai-xuan, HOU Tian-shun   

  1. College of Water Resources and Architectural Engineering, Northwest A&F University, Yangling, Shaanxi 712100, China
  • Received:2019-07-29 Revised:2019-11-07 Online:2020-06-11 Published:2020-08-02
  • Contact: 侯天顺,男,1981年生,博士,副教授,主要从事岩土力学、地基基础工程与地质灾害防治方面的教学与科研工作。 E-mail: houtianshunyx@sina.com E-mail:754662925@qq.com
  • Supported by:
    This work was supported by the National Natural Science Foundation of China (51509211), the China Postdoctoral Science Foundation (2016M602863), the Excellent Science and Technology Activities Foundation for Returned Overseas Teachers of Shaanxi Province (2018031), the Postdoctoral Science Foundation of Shaanxi Province (2017BSHYDZZ50) and the Foreign Cultural and Educational Experts Foundation of Northwest A&F University (A213021803).

Abstract: To study the influence of the compaction test types on the compaction characteristics of EPS particles light weight soil, and to reveal the compaction mechanism of light weight soil, three kinds of light weight soil with different EPS particle contents were prepared for four different types of compaction tests, i.e., standard light-type, standard heavy-type, small light-type and small heavy-type. The volume compression ratios of the EPS particles were measured, respectively. The results show that the dry density of the light weight soil first increases and then decreases with increasing the water content for the three mixed ratios light weight soil under all the compaction tests. The curve shapes are similar to parabola, and the optimum water contents of the three mixed ratios light weight soil are approximately 31%, 35% and 39%. For light weight soil having the same ratio, the maximum dry density of the standard light-type compaction test can be taken as the standard. The absolute growth range of the maximum dry density for the other three kinds of compaction tests is from ?0.014 g/cm3 to 0.072 g/cm3, and the relative growth range is from ?2.647% to 13.611%. The maximum dry densities obtained by the four kinds of compaction tests are basically the same. Due to the influence of size effect of the compaction cylinder, the maximum dry density of the small-type compaction test is larger than that of the standard compaction test when the compaction energy is same, but the difference of them is small. For the same compaction test type, it is found that the increase in the compaction energy has no obvious effect on improving the maximum dry density of the light weight soil. Under the compaction action, the EPS particles exhibit obvious plastic compression, and the compression ratio decreases with increasing the water content and the EPS particle content. The volume compression ratio varies in the range of 0.955% to 31.174%. It is feasible to determine the optimum water content and the maximum dry density of the light weight soil by using the small-type compaction test instead of the standard compaction test, which can provide reference for engineering design and construction of light weight soil.

Key words: light weight soil, compaction test types, compaction characteristics, optimum water content, maximum dry density, EPS, volume compression ratio

CLC Number: 

  • TU411
[1] ZHENG Jun-jie, SHAO An-di, XIE Ming-xing, JING Dan, . Experimental study on retaining wall with EPS cushion under different backfill widths [J]. Rock and Soil Mechanics, 2021, 42(2): 324-332.
[2] CHU Fu-yong, ZHU Jun-gao, WENG Hou-yang, YE Yang-fan. Experimental study on maximum dry density of scaled coarse-grained soil [J]. Rock and Soil Mechanics, 2020, 41(5): 1599-1604.
[3] WANG Ping, ZHU Yong-jian, YU Wei-jian, REN Heng, HUANG Zhong, . Experimental analysis on fractional compaction mechanical characteristics of soft and broken rock [J]. Rock and Soil Mechanics, 2019, 40(7): 2703-2712.
[4] ZHENG Jun-jie, LÜ Si-qi, CAO Wen-zhao, JING Dan, . Numerical simulation of composite rigid-flexible pile-supported retaining wall under the action of high-filled expansive soil [J]. Rock and Soil Mechanics, 2019, 40(1): 395-402.
[5] ZHU De-fu, TU Shi-hao, YUAN Yong, MA Hang-sheng, LI Xiang-yang, . An approach to determine the compaction characteristics of fractured rock by 3D discrete element method [J]. , 2018, 39(3): 1047-1055.
[6] WEN Tao , MI Hai-zhen , MA Lian-sheng , YING Sai吗,. Experiment and evaluation of compaction characteristics of sodium sulfate saline soil [J]. , 2016, 37(12): 3455-3462.
[7] ZHAO Na, ZUO Yong-zhen, WANG Zhan-bin, YU Sheng-guan. Grading scale method for coarse-grained soils based on fractal theory [J]. , 2016, 37(12): 3513-3519.
[8] ZUO Yong-zhen, ZHANG Wei, PAN Jia-jun, ZHAO Na. Effects of gradation scale method on maximum dry density of coarse-grained soil [J]. , 2015, 36(S1): 417-422.
[9] WEN Tao,MI Hai-zheng,YANG Peng,YING Sai,WANG Yue-li. An experimental study of the compaction characteristics of sulfate saline soil [J]. , 2015, 36(7): 1945-1952.
[10] LIU Jin-long , CHEN Lu-wang , WANG Ji-li , WANG Dong-lin,. Method for calculating the horizontal bearing capacity of segmentally-tapered bucket foundation of offshore wind turbines [J]. , 2015, 36(10): 2750-2758.
[11] ZHANG Hong,WANG Zhi-yuan,LIU Run-xing. Research on dynamic compaction characteristics of aeolian sand in desert region of Keerqin [J]. , 2013, 34(S2): 100-104.
[12] ZHANG Xin , SUN Shu-lin , WEI Yong-yao , PAN Xia . Laboratory test study of properties of expansive soil improved by waste foundry sand [J]. , 2012, 33(S2): 209-212.
[13] HOU Tian-shun. Influence law of characteristic water content on basic properties of light weight soil [J]. , 2012, 33(9): 2581-2587.
[14] ZHU Chong-hui ,WANG Zeng-hong ,SHIROKOV V. N.. Research on compaction test of single compaction method [J]. , 2012, 33(1): 60-64.
[15] QIU Dao-hong, ZHANG Le-wen, XUE Yi-guo, SU Mao-xin. Studies of surrounding rock stress change character and rockburst prediction of underground cavern during stepped excavation [J]. , 2011, 32(S2): 430-436.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
[1] CHU Xi-hua, XU Yuan-jie. Studies on transformation from M-C criterion to Drucker-Prager criterions based on distortion energy density[J]. , 2009, 30(10): 2985 -2990 .
[2] WEN Sen, ZHAO Yan-xi, YANG Sheng-qi. Prediction on penetration rate of TBM based on Monte Carlo-BP neural network[J]. , 2009, 30(10): 3127 -3132 .
[3] KONG Wei-xue,RUI Yong-qin,DONG Bao-di. Determination of dilatancy angle for geomaterials under non-associated flow rule[J]. , 2009, 30(11): 3278 -3282 .
[4] WANG Wei,WANG Shui-lin,TANG Hua,ZHOU Ping-gen. Application of 3-D GIS to monitoring and forecast system of landslide hazard[J]. , 2009, 30(11): 3379 -3385 .
[5] ZHANG Qiang-yong, LIU De-jun, JIA Chao, SHEN Xin, LIU Jian, DUAN Kang. Development of geomechanical model similitude material for salt rock oil-gas storage medium[J]. , 2009, 30(12): 3581 -3586 .
[6] YANG Jian-ping, CHEN Wei-zhong, TIAN Hong-ming, Yü Hong-dan. Study of permeability evolutions in low permeability media under different stresses and temperatures[J]. , 2009, 30(12): 3587 -3594 .
[7] REN Song, JIANG De-yi, YANG Chun-he. Numerical simulation research on ground subsidence after salt cavern gas storage collapsing[J]. , 2009, 30(12): 3595 -3601 .
[8] LIU Yan-hui, LI Xiao, LI Shou-ding, HE Jian-ming. Distribution and structural fabric features of mudstone interlayer of rock salt in underground gas storage[J]. , 2009, 30(12): 3627 -3632 .
[9] FU Hong-yuan, WU Sheng-jun, WANG Gui-yao. Experimental study of influence of compressive stress on water permeability of sands soils[J]. , 2009, 30(12): 3677 -3681 .
[10] LI Wei-shu, HUANG Zhi-peng, ZHOU Huo-ming, JING Feng. Optimization of bearing capacity of rock foundation based on study of relativity of P-R[J]. , 2009, 30(12): 3700 -3704 .