• Indexed in Scopus
  • Source Journal for Chinese Scientific and Technical Papers and Citations
  • Included in A Guide to the Core Journal of China
  • Indexed in Ei Compendex
YANG Shuai, JIA Mincai. Vibration isolation effects of pile barriers in layered saturated transversely isotropic foundations under moving loads[J]. Chinese Journal of Geotechnical Engineering, 2024, 46(6): 1263-1269. DOI: 10.11779/CJGE20230514
Citation: YANG Shuai, JIA Mincai. Vibration isolation effects of pile barriers in layered saturated transversely isotropic foundations under moving loads[J]. Chinese Journal of Geotechnical Engineering, 2024, 46(6): 1263-1269. DOI: 10.11779/CJGE20230514

Vibration isolation effects of pile barriers in layered saturated transversely isotropic foundations under moving loads

More Information
  • Received Date: June 05, 2023
  • Available Online: March 24, 2024
  • The vibration isolation effects of pile rows in saturated layered transversely isotropic soils due to moving loads are evaluated using the finite-element-boundary-element coupled method. The finite element matrix equations for the pile are obtained based on the Bernoulli-Euler beam theory by discretizing the pile rows into single piles and pile units using the finite element method. At the pile-soil boundary, the soil and pile units are discretized with equal nodes, and the analytical layer-element basic solution for the layered transversely isotropic saturated foundation consolidation problem is used as the kernel function to obtain the flexibility matrix using the boundary integral method. Further, based on the two-stage theory, the influences of lateral friction resistance and the vibration directly caused by the moving loads are coupled, and the boundary element equations are obtained by combining the boundary element method. The displacement coordination conditions of no relative slip and dislocation between the piles and the soils are used to couple the finite element and boundary element equations, and the dynamic response equation for the pile rows is obtained. Then, the displacement of an observation point after the pile rows without and with the pile vibration isolation is calculated separately, and the isolation efficiency is obtained by combining with the vibration isolation theory. The accuracy of the proposed method is verified by comparing with the existing numerical results, and the effects of the load velocity and different pile materials on the vibration isolation effects are analyzed. The results show that two times the Rayleigh wavelength is the optimal pile length, and the vibration isolation effects will not improve greatly beyond the critical value. The greater the difference in stiffness between the pile and foundation, the better the vibration isolation effects. When the load speed exceeds the shear wave speed, the vibration isolation performance
  • [1]
    LU J F, XU B, WANG J H. A numerical model for the isolation of moving-load induced vibrations by pile rows embedded in layered porous media[J]. International Journal of Solids and Structures, 2009, 46(21): 3771-3781. doi: 10.1016/j.ijsolstr.2009.06.022
    [2]
    LU J F, XU B, WANG J H. Numerical analysis of isolation of the vibration due to moving loads using pile rows[J]. Journal of Sound Vibration, 2009, 319(3/4/5): 940-962.
    [3]
    ONUR T, DENIZ U, BURAK F N. Assessing vibration isolation performance of single and coupled wave barriers through field experiments[J]. Construction and Building Materials, 2022, 354: 129156. doi: 10.1016/j.conbuildmat.2022.129156
    [4]
    NITISH J, AMARNATH H, PRADIPTA C. Full scale field studies for assessing the vibration isolation performance of single and dual trenches[J]. Transportation Geotechnics, 2023, 39: 100932.
    [5]
    LIANG F Y, LI T D, QIAN Y, et al. Investigating the seismic isolation effect of the cushioned pile raft foundation in soft clay through dynamic centrifuge tests[J]. Soil Dynamics and Earthquake Engineering, 2021, 142: 106554. doi: 10.1016/j.soildyn.2020.106554
    [6]
    CAI C Z, GAO L, HE X H, et al. The surface wave attenuation zone of periodic composite in-filled trenches and its isolation performance in train-induced ground vibration isolation[J]. Computers and Geotechnics, 2021, 139: 104421. doi: 10.1016/j.compgeo.2021.104421
    [7]
    ZHANG X, LU J F. A wavenumber domain boundary element method model for the simulation of vibration isolation by periodic pile rows[J]. Engineering Analysis with Boundary Elements, 2013, 37(7/8): 1059-1073.
    [8]
    LINGS M L, PENNINGTON D S, NASH D F T. Anisotropic stiffness parameters and their measurement in a stiff natural clay[J]. Géotechnique, 2000, 50(2): 109-125. doi: 10.1680/geot.2000.50.2.109
    [9]
    YIMSIRI S, SOGA K. Cross-anisotropic elastic parameters of two natural stiff clays[J]. Géotechnique, 2011, 61(9): 809-814. doi: 10.1680/geot.9.P.072
    [10]
    AI Z Y, CAO Z. Vibration isolation of row of piles embedded in transverse isotropic multi-layered soils[J]. Computers and Geotechnics, 2018, 99: 115-129. doi: 10.1016/j.compgeo.2018.03.002
    [11]
    艾智勇, 李志雄. 冲刷作用下层状横观各向同性土中群桩水平振动响应[J]. 岩土工程学报, 2016, 38(4): 613-618. doi: 10.11779/CJGE201604004

    AI Zhiyong, LI Zhixiong. Horizontal vibration of a pile group in transversely isotropic layered soils under scour conditions[J]. Chinese Journal of Geotechnical Engineering, 2016, 38(4): 613-618. (in Chinese) doi: 10.11779/CJGE201604004
    [12]
    AI Z Y, LI P C, SONG X Y, et al. Analysis of an axially loaded pile in saturated multi-layered soils with anisotropic permeability and elastic superstrata[J]. Computers and Geotechnics, 2018, 98: 93-101. doi: 10.1016/j.compgeo.2018.02.004
    [13]
    YANG S, JIA M C. Analytical layer-element solution for layered transversely isotropic saturated media subjected to rectangular moving loads[J]. Soil Dynamics and Earthquake Engineering, 2023, 171: 107877. doi: 10.1016/j.soildyn.2023.107877
    [14]
    YANG S, JIA M C. Horizontal dynamic behavior of partially embedded pile groups in layer cross-anisotropic poroelastic saturated soils under lateral cyclic and axial coupling loadings[J]. Ocean Engineering, 2023, 281: 114803. doi: 10.1016/j.oceaneng.2023.114803
    [15]
    WOODS R D, BARNETT N E, SAGESSET R. Holography a new tool for soil dynamics[J]. Journal of Geotechnical Engineering Division, ASCE, 1974, 100: 1231-1247. doi: 10.1061/AJGEB6.0000121
    [16]
    TSAI P H, FENG Z Y, JEN T L. Three-dimensional analysis of the screening effectiveness of hollow pile barriers for foundation-induced vertical vibration[J]. Computers and Geotechnics, 2008, 35(3): 489-499. doi: 10.1016/j.compgeo.2007.05.010
  • Related Articles

    [1]TAN Jia-cheng, SHEN Zhen-zhong, ZHANG Hong-wei, XU Li-qun, LI Guo-hui. Experiment study on shear-seepage coupling of clayey soil-structure interface considering contact deformation[J]. Chinese Journal of Geotechnical Engineering, 2022, 44(9): 1679-1688. DOI: 10.11779/CJGE202209013
    [2]JIN Lei, ZENG Ya-wu, CHENG Tao, LI Jing-jing. Seepage characteristics of soil-rock mixture based on lattice Boltzmann method[J]. Chinese Journal of Geotechnical Engineering, 2022, 44(4): 669-677. DOI: 10.11779/CJGE202204009
    [3]ZHAO Yong, LI Xi-qi, LIU Jun. Effect of low-frequency vibration on porosity of low-permeability sandstone samples during uranium leaching process[J]. Chinese Journal of Geotechnical Engineering, 2021, 43(8): 1526-1535. DOI: 10.11779/CJGE202108018
    [4]FANG Wei, ZHOU Zhi-gang. Sand-fall molding process and influencing factors of model porosity[J]. Chinese Journal of Geotechnical Engineering, 2019, 41(11): 2086-2093. DOI: 10.11779/CJGE201911014
    [5]XU Wei-wei, SHI Bei-xiao, CHEN Sheng-shui, LING Hua. Effects of porosity on strength and deformation of rockfill materials[J]. Chinese Journal of Geotechnical Engineering, 2018, 40(S2): 47-52. DOI: 10.11779/CJGE2018S2010
    [6]WU Xiao-peng, WANG Lan-min, FANG Jian-hong, XU An-hua, ZHOU You-lu, ZHAO Yong-hu. Seepage characteristics and their relationship with self-weight collapse of intact loess ground[J]. Chinese Journal of Geotechnical Engineering, 2018, 40(6): 1002-1010. DOI: 10.11779/CJGE201806005
    [7]WANG Bing-hui, WANG Zhi-hua, JIANG Peng-ming, ZHOU Ai-zhao. Electrical resistivity characteristics of saturated sand with varied porosities[J]. Chinese Journal of Geotechnical Engineering, 2017, 39(9): 1739-1745. DOI: 10.11779/CJGE201709024
    [8]WANG Zhi-liang, SHEN Lin-fang, XU Ze-min, LI Shao-jun. Influence of roughness of rock fracture on seepage characteristics[J]. Chinese Journal of Geotechnical Engineering, 2016, 38(7): 1262-1268. DOI: 10.11779/CJGE201607013
    [9]YANG XU, SHENG Jin-chang, ZHENG Zhong-wei, SUN Yong-jun, YANG Hui, ZHAN Mei-li, GU Yang. Experimental study on seepage properties of GCL with different overlap methods[J]. Chinese Journal of Geotechnical Engineering, 2015, 37(9): 1668-1673. DOI: 10.11779/CJGE201509014
    [10]XU Xiao-bing, LI Yu-Chao, ZHAN Liang-tong, CHEN Yun-min. Comparative study on porosity for municipal solid wastes with single- and multi-component biodegradations[J]. Chinese Journal of Geotechnical Engineering, 2011, 33(4): 599.

Catalog

    Article views PDF downloads Cited by()
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return