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动态拉伸载荷作用下混凝土的离散元建模

Discrete Element Modeling of Concrete Under Dynamic Tensile Loading.

作者信息

Omar Ahmad, Daudeville Laurent

机构信息

Faculty of Engineering, Lebanese University, Beirut P.O. Box 6573/14, Lebanon.

University Grenoble Alpes, CNRS, Grenoble INP, 3SR, 38041 Grenoble, France.

出版信息

Materials (Basel). 2025 Jul 17;18(14):3347. doi: 10.3390/ma18143347.

Abstract

Concrete is a fundamental material in structural engineering, widely used in critical infrastructure such as bridges, nuclear power plants, and dams. These structures may be subjected to extreme dynamic loads resulting from natural disasters, industrial accidents, or missile impacts. Therefore, a comprehensive understanding of concrete behavior under high strain rates is essential for safe and resilient design. Experimental investigations, particularly spalling tests, have highlighted the strain-rate sensitivity of concrete in dynamic tensile loading conditions. This study presents a macroscopic 3D discrete element model specifically developed to simulate the dynamic response of concrete subjected to extreme loading. Unlike conventional continuum-based models, the proposed discrete element framework is particularly suited to capturing damage and fracture mechanisms in cohesive materials. A key innovation lies in incorporating a physically grounded strain-rate dependency directly into the local cohesive laws that govern inter-element interactions. The originality of this work is further underlined by the validation of the discrete element model under dynamic tensile loading through the simulation of spalling tests on normalstrength concrete at strain rates representative of severe impact scenarios (30-115 s). After calibrating the model under quasi-static loading, the simulations accurately reproduce key experimental outcomes, including rear-face velocity profiles and failure characteristics. Combined with prior validations under high confining pressure, this study reinforces the capability of the discrete element method for modeling concrete subjected to extreme dynamic loading, offering a robust tool for predictive structural assessment and design.

摘要

混凝土是结构工程中的一种基础材料,广泛应用于桥梁、核电站和大坝等关键基础设施。这些结构可能会受到自然灾害、工业事故或导弹撞击等极端动态载荷的作用。因此,全面了解混凝土在高应变率下的行为对于安全和韧性设计至关重要。实验研究,特别是剥落试验,突出了混凝土在动态拉伸加载条件下的应变率敏感性。本研究提出了一种宏观三维离散元模型,专门用于模拟混凝土在极端载荷下的动态响应。与传统的基于连续体的模型不同,所提出的离散元框架特别适合捕捉粘性材料中的损伤和断裂机制。一项关键创新在于将基于物理的应变率依赖性直接纳入控制单元间相互作用的局部粘结定律中。通过模拟代表严重冲击场景(30 - 115 s⁻¹)应变率下普通强度混凝土的剥落试验,对动态拉伸加载下的离散元模型进行验证,进一步突出了这项工作的创新性。在准静态加载下对模型进行校准后,模拟结果准确再现了关键实验结果,包括背面速度剖面和破坏特征。结合先前在高围压下的验证,本研究增强了离散元法对承受极端动态载荷混凝土建模的能力,为预测性结构评估和设计提供了一个强大的工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9dd6/12299438/281fb3dd4493/materials-18-03347-g001.jpg

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