不同节点类型素混凝土在单轴压缩下的损伤机理

IF 1 Q4 ENGINEERING, CIVIL
Shanshan Guo, D. Cui, Liang Lv
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引用次数: 0

摘要

隧道或硐室的开挖引起裂缝萌生、扩展和合并,造成地下工程的失稳和破坏。了解节理类岩材料的损伤机理对维护混凝土结构的稳定性具有重要意义。基于Mohr-Coulomb准则和Lemaitre应变等效假设,改进了岩体的耦合-损伤本构模型,适用于素混凝土。计算了细观和宏观细观耦合损伤变量及分形维数,实现了损伤演化过程中的非线性力学行为。通过对比实验参数和理论参数,验证了模型的合理性。结果表明,岩体的耦合损伤本构模型对素混凝土具有较好的适用性。影响损伤变形的主要因素有两个:节理数和节理倾角。随着节理数量的增加,早期损伤积累增加,损伤速率拐点提前出现。随着倾角的变化,损伤变形变化明显。素混凝土试件的累积损伤曲线表现为s型曲线的演化规律。峰值强度和弹性模量均与损伤变量呈正相关。峰值强度越小,分形维数越大,耦合损伤变量越大。关键词:岩体,节理倾角,细观,宏观,分形维数,耦合-损伤本构模型
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Damage Mechanism on Different Joint Types of Plain Concrete under Uniaxial Compression
Excavation of tunnels or chambers causes crack initiation, propagation and coalescence, resulting in the instability and destruction of underground projects. Understanding the damage mechanism of joint rock-like materials is important for maintaining the stability of concrete construction. Based on the Mohr–Coulomb criterion and Lemaitre strain equivalence hypothesis, the coupling-damage constitutive model of rock masses was improved for application to plain concrete. Parameters including the mesoscopic and macro-meso coupling damage variables, as well as the fractal dimension, were calculated to realize the non-linear mechanical behaviour during damage evolution. The rationality of the model was verified by comparing experimental and theoretical parameters. Results revealed that the coupled-damage constitutive model of rock masses has a good applicability to plain concrete. Furthermore, two main factors affected the damage deformation: the number of joints and the inclination angle. As the number of joints increased, the early damage accumulation increased and the inflection point of the damage rate occurred in advance. The damage deformation varied significantly when the inclination angle was changed. The cumulative damage curve of the plain-concrete specimens is shown as the evolution law of an S-type curve. Both peak strength and elastic modulus were positively correlated with the damage variable. Moreover, a smaller peak strength resulted in a larger fractal dimension and coupling-damage variable. KEYWORDS: Rock mass, Joint inclination angle, Mesoscopic, Macroscopic, Fractal dimension, Coupling-damage constitutive model.
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来源期刊
CiteScore
2.10
自引率
27.30%
发文量
0
期刊介绍: I am very pleased and honored to be appointed as an Editor-in-Chief of the Jordan Journal of Civil Engineering which enjoys an excellent reputation, both locally and internationally. Since development is the essence of life, I hope to continue developing this distinguished Journal, building on the effort of all the Editors-in-Chief and Editorial Board Members as well as Advisory Boards of the Journal since its establishment about a decade ago. I will do my best to focus on publishing high quality diverse articles and move forward in the indexing issue of the Journal.
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