岩土力学 ›› 2025, Vol. 46 ›› Issue (12): 3944-3957.doi: 10.16285/j.rsm.2025.0875CSTR: 32223.14.j.rsm.2025.0875

• 岩土工程研究 • 上一篇    下一篇

基于IBEM-DEM耦合方法的近断层边坡动力响应模拟

刘中宪1,孙文哲1,黄振恩2,贺维国3   

  1. 1. 天津城建大学 天津市软土特性与工程环境重点实验室,天津 300384;2. 天津大学 建筑工程学院,天津 300354; 3. 中铁第六勘察设计院集团有限公司,天津 300133
  • 收稿日期:2025-08-14 接受日期:2025-10-16 出版日期:2025-12-11 发布日期:2025-12-20
  • 通讯作者: 黄振恩,男,1994年生,博士研究生,主要从事工程抗震方面的研究。E-mail: huangzhenenv587@163.com
  • 作者简介:刘中宪,男,1982年生,博士,教授,博士生导师,主要从事地震工程、工程波动方面的研究。E-mail: zhongxian1212@163.com
  • 基金资助:
    国家自然科学基金(No.52278516);中铁第六勘察设计院集团有限公司开放基金课题(No.2022-重点-12-01)。

Dynamic response simulation of near-fault slopes based on the coupled IBEM–DEM approach

LIU Zhong-xian1, SUN Wen-zhe1, HUANG Zhen-en2, HE Wei-guo3   

  1. 1. Tianjin Key Laboratory of Soft Soil Characteristics and Engineering Environment, Tianjin Chengjian University, Tianjin 300384, China; 2. School of Civil Engineering, Tianjin University, Tianjin 300354, China; 3. China Railway Sixth Survey and Design Institute Group Co., Ltd., Tianjin 300133, China
  • Received:2025-08-14 Accepted:2025-10-16 Online:2025-12-11 Published:2025-12-20
  • Supported by:
    This work was supported by National Natural Science Foundation of China (52278516) and the Open Fund Project of China Railway Sixth Survey and Design Institute Group Co., Ltd. (2022-Key-12-01).

摘要: 为揭示近断层地震动作用下岩质边坡的动态响应规律与灾变机制,提出了一种间接边界元法(indirect boundary element method,简称IBEM)与离散元法(discrete element method,简称DEM)耦合的时域分析体系,建立了考虑岩土体非连续变形特征的近断层−边坡系统非线性动力响应模拟方法。首先基于IBEM构建半无限域千米级近断层地震波场高精度数值模型;其次,结合格林函数理论与IBEM求解波场,推导DEM计算域边界等效地震荷载的显式表达,进而实现IBEM-DEM耦合系统的跨尺度能量传递;最终通过DEM求解米级岩质边坡的非线性动力响应,实现了从千米级断层到米级边坡的多尺度非线性地震动模拟方法体系。数值模拟与动态监测结果表明:IBEM-DEM耦合算法可精准表征近场地震波传播的频散特性与能量衰减规律;近断层地震荷载作用下,软弱夹层首先发生渐进式剪切破坏,其强度劣化导致贯通性破裂面的形成,并引致滑体沿剪切面加速失稳,产生显著位移与速度响应,最终在坡脚形成典型碎屑堆积体;滑体表层速度显著高于底层,表层平均速度达到底层平均速度的3.6倍,其中滑体表层X向和Z向的速度分量峰值分别达到4.98  m/s和5.92  m/s,呈现出明显的趋表效应;滑体监测点从初始坡面位置到最终堆积体位置的X向和Z向最大位移分别可达41 m和35 m,时程表现出典型阶跃式增长特征,反映出滑体在动能与势能交替转换中的突跃式滑移行为。IBEM-DEM耦合方法构建了从岩体破裂到滑坡成灾的全过程演化序列,为近断层地震动诱发滑坡的动力灾变分析提供了创新性分析方法体系,并为复杂地质条件下滑坡机制的识别及地震灾害的防控提供了理论依据与技术支持。

关键词: IBEM-DEM耦合方法, 近断层地震动, 边坡, 动力响应分析

Abstract: We develop a time-domain analysis framework that couples the indirect boundary element method (IBEM) with the discrete element method (DEM) to investigate the dynamic response patterns and failure mechanisms of rock slopes subjected to near-fault ground motions. This framework enables a nonlinear dynamic simulation approach for near-fault slope systems, capturing the discontinuous deformation characteristics of rock and soil masses. Firstly, we construct a high-precision numerical model of the kilometer-scale, semi-infinite near-fault seismic wavefield using IBEM. Subsequently, based on Green’s function theory and the IBEM solution of the wavefield, we derive an explicit formulation of the equivalent seismic loads on the boundaries of the DEM computational domain. This enables cross-scale energy transfer within the IBEM-DEM coupled system. Finally, the DEM resolves the nonlinear dynamic response of meter-scale rock slopes, yielding a multi-scale nonlinear seismic simulation framework that spans from kilometer-scale faults to meter-scale slopes. Numerical simulations combined with dynamic monitoring results demonstrate that the IBEM-DEM coupling algorithm can accurately capture the dispersion characteristics and energy attenuation patterns of near-field seismic wave propagation. Under near-fault seismic loading, progressive shear failure first occurs within weak interlayers, leading to strength degradation, the formation of through-going rupture surfaces, and subsequent accelerated instability of the sliding mass along the shear plane. This process induces significant displacement and velocity responses, ultimately forming a typical debris accumulation at the slope toe. The surface velocity of the sliding mass is markedly greater than that at the base, with the mean surface velocity reaching 3.6 times that of the base, and peak X- and Z-direction velocity components of 4.98 m/s and 5.92 m/s, respectively, exhibiting a pronounced surface-acceleration effect. The monitoring points of the sliding mass exhibit maximum displacements of up to 41 m in the X-direction and 35 m in the Z-direction from the initial slope surface to the final accumulation position, with the displacement-time history showing a distinct step-like growth pattern, indicative of abrupt sliding behavior during the alternating transformation of kinetic and potential energy. The IBEM-DEM coupled method developed in this study reconstructs the full evolutionary sequence from rock mass rupture to landslide formation, providing an innovative analytical framework for the dynamic failure analysis of landslides induced by near-fault ground motions, as well as theoretical and technical support for identifying landslide mechanisms and mitigating seismic hazards in complex geological settings.

Key words: IBEM-DEM coupling method, near-fault ground motion, slope, dynamic response analysis

中图分类号: TU435
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