华南理工大学学报(自然科学版) ›› 2025, Vol. 53 ›› Issue (10): 74-85.doi: 10.12141/j.issn.1000-565X.240473

• 土木建筑工程 • 上一篇    下一篇

不同偏应力下粒径对颗粒材料蠕变状态演化的影响

李涛1    舒佳军1,2,3    李越1    万利岷1    伍冰妮4    邓正定3    黄晶柱3    Ruben Galindo2   

  1. 1.中国矿业大学(北京) 力学与土木工程学院,北京 100083;

    2.马德里理工大学 土木工程高等技术学院,西班牙 马德里 28039 

    3.江西理工大学 江西省环境岩土与灾害控制重点实验室,江西 赣州 341000;

    4.华东交通大学 土木建筑学院,江西 南昌 330013

  • 出版日期:2025-10-25 发布日期:2025-04-07

Influence of Particle Size on the Creep State Evolution of Granular Materials under Different Deviatoric Stress

LI Tao1   SHU Jiajun1,2,3   LI Yue1    WAN Limin1   WU Bingni4   DENG Zhengding3   HUANG Jingzhu3   RUBEN Galindo2   

  1. 1.School of Mechanics and Civil Engineering, China University of Mining and Technology-Beijing, Beijing 100083, China;

    2. Higher Technical School of Civil Engineers, Universidad Politécnica de Madrid, Madrid 28039, Spain;

    3.Jiangxi Province Key Laboratory of Environmental Geotechnical Engineering and Hazards Control, Jiangxi University of Science and Technology, Ganzhou 341000, Jiangxi, China;

    4.School of Civil Engineering and Architecture, East China Jiaotong University, Nanchang 330013, Jiangxi, China

  • Online:2025-10-25 Published:2025-04-07

摘要:

作为典型的非连续介质,离散颗粒材料的蠕变行为对滑坡、泥石流等地质灾害的形成与演化具有重要影响。然而,关于颗粒粒径与偏应力之间的交互作用机制及其对蠕变行为影响的系统研究仍显不足。为揭示颗粒粒径与偏应力对蠕变行为的耦合作用机制,本研究开展了多工况下二氧化硅圆珠颗粒的室内蠕变试验,系统分析了不同粒径与偏应力对颗粒材料蠕变特性的影响规律。基于Derec蠕变模型并结合试验结果,构建了颗粒材料蠕变状态的定量化计算模型,阐明了粒径对系统蠕变参数的调控机制。研究结果表明,颗粒系统的蠕变行为本质上是颗粒内部变形与其抵抗变形能力之间动态平衡的体现。蠕变参数通过调控颗粒间滑移与爬行行为,对系统的蠕变特性产生显著影响。具体表现为,随着颗粒粒径的增大,系统的蠕变值显著提高,更易进入类液态的流动状态,同时系统的抗变形能力减弱,并表现出对偏应力更高的敏感性。同时发现,颗粒粒径与系统初始状态参数及特征应变呈正相关关系,而与黏滞系数、临界蠕变速度及临界蠕变应力呈负相关关系。

关键词: 粒径, 颗粒材料, 蠕变, 状态演化, Derec模型

Abstract:

As a typical discontinuous medium, the creep behavior of discrete granular materials strongly influences the formation and evolution of geohazards such as landslides and mudslides. However, systematic studies on the interaction mechanism between particle size and bias stress and its effect on creep behavior are still insufficient. To reveal the coupling mechanism of particle size and bias stress on creep behavior, this study carried out an indoor creep test of silica bead particles under multiple working conditions and systematically analyzed the influence of different particle sizes and bias stresses on the creep characteristics of granular materials. On the basis of the Derec creep model and experimental results, a quantitative calculation model of the creep state of granular materials was constructed, and the influence mechanism of the particle size on the creep parameters of the system was elucidated. The results show that the creep behavior of the granular system essentially reflects the dynamic balance between the internal deformation of the particles and their resistance to deformation. The creep parameter has a significant effect on the creep properties of the system by regulating the interparticle slip and creep behavior. Specifically, as the particle size increases, the creep value of the system increases significantly, and it becomes easier to enter the liquid-like flow state, whereas the deformation resistance of the system weakens and becomes more sensitive to bias stress. The particle size is positively correlated with the initial state parameters and the characteristic strain of the system, whereas it is negatively correlated with the viscous coefficient, the critical creep velocity and the critical creep stress.

Key words: particle size, granular materials, creep, state evolution, Derec model