模拟混凝土粘弹性断裂性能的四点弯曲试验

Hung Tran Nam, Nga Nguyen Thi Thu
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摘要

了解混凝土的断裂特性,如裂缝扩展行为和断裂能量,对于设计和评估混凝土结构至关重要。实验结果并不充分,无法直接用于全面分析混凝土结构在荷载作用下的断裂行为,尤其是在考虑到混凝土具有粘弹性且存在裂缝的情况下。考虑到传统实验测试在时间和成本上的限制,本研究利用数值模拟作为确定粘弹性材料参数的一种经济有效的替代方法。因此,对混凝土断裂性能的关键评估是设计和评估混凝土结构的基础。研究采用有限元方法进行四点弯曲试验,系统地研究了初始裂缝深度、位移加速度和时间步长等参数。使用粘弹性模型描述了混凝土的材料特性。研究结果为裂缝扩展行为和变形特征提供了有价值的见解,强调了弹性模量对最大荷载值和位移的重要影响。这些发现有助于加深对结构响应的理解,并强调了在类似模拟中考虑这些参数的重要性。该研究强调了在模拟中考虑这些参数的重要性,以加深对混凝土断裂行为的理解。本文的贡献可扩展到优化混凝土混合物、制定修复策略和改进结构评估。建议开展进一步研究,以提高模拟的准确性,并调查各种条件下的材料特性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Simulation of four-point bending tests for the viscoelastic fracture properties of concrete
Understanding the fracture properties of concrete, such as crack propagation behavior and fracture energy, is crucial for designing and evaluating concrete structures. Experimental results are insufficient and cannot be directly employed for a comprehensive analysis of the fracture behavior of concrete structures under load, particularly when considering concrete as viscoelastic with the presence of cracks. Recognizing the time and cost constraints of traditional experimental testing, this research leverages numerical simulations as a cost-effective alternative to determine viscoelastic material parameters. Thus, the critical evaluation of concrete fracture properties, fundamental for the design and assessment of concrete structures, is addressed. Employing a finite element method for four-point bending tests, the study systematically investigates parameters such as initial crack depth, displacement acceleration, and time step. The material properties of concrete are described using viscoelastic models. The findings provide valuable insights into crack propagation behavior and deformation characteristics, emphasizing the significant influence of the modulus of elasticity on both maximum load values and displacement. These findings contribute to a deeper understanding of the structure's response and underscore the importance of considering these parameters in similar simulations. The study highlights the importance of considering these parameters in simulations to enhance the understanding of concrete fracture behavior. The paper's contributions can extend to optimizing concrete mixtures, formulating repair strategies, and improving structural assessments. Further research is suggested to improve the accuracy of simulations and investigate material properties under various conditions.
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