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January 22, 2026Geophysics0 citations

Experimental evaluation of the modified displacement discontinuity method considering the thickness of filled joints

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MWMeng WangLJL. JiaLFLifeng Fan

Key Points

  • The aim is to evaluate the modified displacement discontinuity method (M-DDM) considering joint thickness for wave propagation analysis.
  • Introduced M-DDM to assess wave propagation in filled joints considering joint thickness.
  • Conducted pendulum impact tests using gypsum, sand, and clay as filling materials.
  • Investigated the effect of filling thickness on transmission coefficients.
  • Compared M-DDM results with experimental data for accuracy evaluation.
  • Joint filling materials and thickness significantly affect stress reflection and transmission.
  • As filling material thickness increases, transmission coefficients decline gradually.
  • M-DDM and experimental results show strong alignment for wave propagation.
  • M-DDM maintains low prediction error for transmission coefficients with increasing filling thickness.

Abstract

Abstract This paper experimentally evaluates the modified displacement discontinuity method (M-DDM) while taking into account joint thickness for wave propagation in filled joints. Firstly, M-DDM considering joint thickness was introduced to investigate the wave propagation in filled joints by adding the effective stiffness that describes the dynamic deformation properties of filled joints. Subsequently, the pendulum impact tests were conducted to examine the wave propagation in filled joints using gypsum, sand, and clay as filling materials. The effect of the filling thickness of joints on transmission coefficients was investigated. Finally, a comparison was conducted to evaluate the accuracy of M-DDM by contrasting its results with those obtained from the experimental study. The findings indicate that the joint filling materials and thickness have a significant effect on the stress reflection and transmission at the filled joint. As the thickness of the filling material increases, the transmission coefficient shows a gradual decline. In addition, the transmission coefficients obtained from both the pendulum impact test and M-DDM consistently align for wave propagation through filled joints. Furthermore, M-DDM consistently maintains a small prediction error for the transmission coefficient as the filling thickness increases. Therefore, M-DDM is capable of efficiently investigating the wave propagation through filled jointed rock masses with various filling materials.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/6971bd4c642b1836717e1f81https://doi.org/10.1190/geo-2025-0294
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