Vibration attenuation characteristic of dynamic compaction and effect of damping ditch parameters in a sandy foundation
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1.Fujian Yuanxiang Airport Construction Limited Company, Fuzhou 350209, P. R. China;2.School of Civil Engineering, Central South University, Changsha 410075, P. R. China;3.Fujian Zhaoxiang Airport Construction Limited Company, Fuzhou 361000, P. R. China

Clc Number:

TU441.4

Fund Project:

Huxiang High-Level Talent Gathering Engineering Innovation Team Project (No. 2019RS1008)

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    Abstract:

    Dynamic compaction is a widely employed foundation treatment method, but the surface vibrations it incurs can potentially lead to damage in nearby constructions. Therefore, it is crucial to determine appropriate safety distances and implement effective vibration absorption methods based on specific site conditions and vibration attenuation laws. Drawing from the dynamic compaction process at Fuzhou Changle International Airport, we conducted on-site tests to acquire essential data and subsequently performed simulations using the discrete element method. Our findings revealed that, under identical energy levels, lighter hammers result in higher soil velocities. Moreover, heavier hammers exhibit a broader influence and lead to a slower attenuation process. Simulation results demonstrated that the attenuation process can be accurately modeled using hyperbolic functions, a conclusion substantiated by the results of our field experiments. Damping ditch calculations indicated that the vibration velocities of soil increase before the ditch and decrease behind it. Based on relevant standards, the installation of a damping ditch in this area allows for a substantial reduction in the required safety distance.

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程旭日,童晨曦,王小桃,冯雨顺,张升.强夯砂土地基振动衰减规律及减振沟参数的影响[J].土木与环境工程学报(中英文),2026,48(1):63~70

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History
  • Received:August 28,2023
  • Revised:
  • Adopted:
  • Online: February 26,2026
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