›› 2018, Vol. 39 ›› Issue (10): 3735-3742.doi: 10.16285/j.rsm.2018.0223

• Geotechnical Engineering • Previous Articles     Next Articles

Dynamic response of a saturated poroelastic medium due to a moving axial excitation in a lining tunnel

BAO Han-ying, CHEN Wen-hua   

  1. Civil Engineering and Architecture Institute, Beijing Jiaotong University, Beijing 100044, China
  • Received:2018-04-12 Online:2018-10-11 Published:2018-11-04
  • Supported by:
    This work was supported by the National Natural Science Foundation of China (51178035).

Abstract: To investigate the propagation of subway vibration in the saturated poroelastic medium, a dynamic analysis model of the tunnel, lining and the saturated medium was established by using the moving axial excitation technology. The analytical solutions of dynamic responses in the frequency domain were derived by the wave function expansion method and the Fourier transform method. Moreover, an empirical formula for the critical velocity of the saturated poroelastic medium was given. The time-space domain solutions of dynamic responses were obtained by the discrete inverse fast Fourier transform. The results show that, for the tunnel without lining, the critical velocity of the saturated poroelastic medium is only related to the shear modulus and density of the medium, and its value is close to 1.1 times shear wave velocity of the medium. For the lining tunnel, the critical velocity of the medium increases with the increase of the shear modulus of the lining but decreases with the increase of the lining density. The lining has a certain weakening effect on the propagation of vibration. The weakening effect is more obvious when the difference of shear modulus between the lining and the medium is large. When the dynamic response frequency is close to the excitation frequency, the amplitude of the dynamic response becomes high but the corresponding critical velocity becomes low.

Key words: moving axial excitation, saturated poroelastic medium, subway vibration, critical velocity, wave function expansion method

CLC Number: 

  • U 25
[1] YANG Bin, XU Zeng-he, YANG Tian-hong, YANG Xin, SHI Wen-hao, . Experimental study of non-linear water flow through unconsolidated porous media under condition of high hydraulic gradient [J]. , 2018, 39(11): 4017-4024.
[2] YANG Xin, XU Zeng-he, YANG Tian-hong, YANG Bin, SHI Wen-hao, . Incipience condition and migration characteristics of aeolian-sand aquifer in a typical western mine [J]. , 2018, 39(1): 21-28.
[3] LI Xing-hua , LONG Yuan , JI Chong , ZHOU Xiang , HE Yang-yang , LU Liang . Analysis of dynamic stress concentration factor for existing circular tunnel lining under blasting seismic wave [J]. , 2013, 34(8): 2218-2224.
[4] LI Yin-ping , YANG Chun-he , QU Dan-an , YANG Chang-lai , SHI Xi-lin. Preliminary study of dynamic characteristics of tubing string for solution mining of oil/gas storage salt caverns [J]. , 2012, 33(3): 681-686.
[5] LU Zheng,YAO Hai-lin,WU Sha,WU Wan-ping,LIU Jie. Vibration analysis of a plate on viscoelastic foundation under moving rectangular loads with variable speeds [J]. , 2010, 31(11): 3613-3618.
[6] LU Zheng, YAO Hai-lin, CHENG Ping, WU Wan-ping. Ground vibration of soft subgrade subjected to a non-uniformly distributed train load [J]. , 2010, 31(10): 3286-3294.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!