Rock and Soil Mechanics ›› 2020, Vol. 41 ›› Issue (8): 2703-2711.doi: 10.16285/j.rsm.2019.1671

• Fundamental Theroy and Experimental Research • Previous Articles     Next Articles

Dynamic porosity and related dynamic response characteristic of two-dimensional saturated soil

HE Wen-hai, WANG Tong   

  1. College of Mechanical Engineering, Xi’an University of Science and Technology, Xi’an, Shaanxi 710054, China)
  • Received:2019-09-27 Revised:2020-03-04 Online:2020-08-14 Published:2020-10-18
  • Supported by:
    This work was supported by the National Natural Science Foundation of China (51105302), the University Talents Service for Enterprises Project of Science and Technology Planning Project of Xi’an City (2019217714GXRC013CG014-GXYD13.2) and the Scientific Research Program Funded by Shaanxi Provincial Education Department (16JF019).

Abstract: Dynamic response of saturated porous medium is of great significance in many engineering fields. The consideration of varying porosity helps to reasonably reveal the related mechanical behavior of saturated porous medium such as soil. Dynamic porosity model is combined with u-U-p equation representing the dynamic characteristic of saturated porous medium. And a new nonlinear dynamic model is established. Comsol Multiphysics PDE is used to obtain its numerical solution. On this basis, the change of porosity, deformation and pore water pressure of two-dimension saturated soil are developed under two different kinds of permeable conditions and excited by harmonic load on the surface. The result shows that the porosity relates directly to the volumetric strain and pore water pressure of soil. The loading process decreases soil porosity, and enhances the interaction between solid skeleton and pore fluid increases, therefore increases the resistance applied on solid skeleton. The dimensionless vertical displacement and pore water pressure are also low under constant porosity condition. It is useful to increase the research rationality of mechanical behavior of saturated porous medium such as soil if the dynamic porosity is considered. On the other hand, pore fluid can discharge freely from permeable top surface. So, the load that is born by soil skeleton is greater, the porosity, deformation and pore water pressure are also greater comparing with the condition under impermeable top surface .

Key words: saturated porous media, u-U-p equation, Comsol Multiphysics, dynamic porosity

CLC Number: 

  • TU 435
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[2] RAO Deng-yu, BAI Bing, CHEN Pei-pei, . Simulation of hydro-thermal coupling with phase-change in unsaturated porous media by SPH method [J]. Rock and Soil Mechanics, 2018, 39(12): 4527-4536.
[3] LIU Bao, SU Qian, LI Ting, GUI Bo,. Analysis of dynamic response of saturated porous media by moving element method [J]. , 2017, 38(7): 2071-2079.
[4] ZHANG Peng-yuan, BAI Bing, JIANG Si-chen. Coupled effects of hydrodynamic forces and pore structure on suspended particle transport and deposition in a saturated porous medium [J]. , 2016, 37(5): 1307-1316.
[5] CHAI Hua-you, LI Tian-bin, ZHANG Dian-ji, CHEN Elton J., WU Qiao-yun, CHAI Xiu-wei,. Effect of surface permeability of saturated porous media on behaviour of surface waves using thin layer method [J]. , 2016, 37(12): 3371-3379.
[6] DUAN Xue-ming, LI Liang, DU Xiu-li, SONG Jia. A precise time-integration method for wave propagation of fluid-saturated porous media [J]. , 2015, 36(9): 2702-2707.
[7] LING Dao-sheng ,WANG Yun , 2,SHAN Zhen-dong ,DING Hao-jiang , . A semi-analytical solution for one-dimensional transient response of single-layer unsaturated porous media [J]. , 2014, 35(1): 25-34.
[8] CHEN Xing-xin,BAI Bing,YAN Yu-long,JIA Ding-yun. Influence of concentration of suspended particles on transport and deposition characteristics in saturated porous media [J]. , 2012, 33(8): 2343-2348.
[9] CHEN Pan,WEI Chang-fu,WANG Ji-li,YI Pan-pan,CAO Hua-feng. Numerical analysis of seepage processes in unsaturated porous media under nearly saturated conditions [J]. , 2012, 33(1): 295-300.
[10] MA Tian-tian, WEI Chang-fu, LI Huan, CHEN Pan, WEI Hou-zhen. Hydro-mechanical coupling model of unsaturated porous media considering effect of capillary hysteresis [J]. , 2011, 32(S1): 198-204.
[11] LI Liang , DU Xiu-li , ZHAO Cheng-gang , LI Li-yun . Calculation and analysis of dynamic response of fluid-saturated porous media [J]. , 2008, 29(1): 113-118.
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