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基于参数化建模的细观尺度孔隙结构对混凝土单轴压缩力学行为的影响

Influence of Meso-Scale Pore Structure on Mechanical Behavior of Concrete under Uniaxial Compression Based on Parametric Modeling.

作者信息

Yang Hao, Zhu Eryu, Liu Lei

机构信息

School of Civil Engineering, Beijing Jiaotong University, Beijing 100044, China.

出版信息

Materials (Basel). 2022 Jun 30;15(13):4594. doi: 10.3390/ma15134594.

Abstract

Existing concrete random aggregate modeling methods (CRAMMs) have deficiencies in in the parameterization of the mesoscale pore structure. A novel CRAMM is proposed, whose pore structure is determined by the pore gradation, total porosity, sub-porosity, and pore size of each pore gradation segment. To study the influence of pore structure on the mechanical properties of concrete, 25 mesoscopic concrete specimens with the same aggregate structure but different meso-scale pore structures are constructed and subjected to uniaxial compression tests. For the first time, the influence of sub-porosity of each pore gradation segment, average pore radius (APR), pore specific surface area (PSSA), and total porosity on concrete failure process, compressive strength, peak strain, and elastic modulus were quantitatively and qualitatively analyzed. Results indicate that the pore structure makes the germination and propagation of the damage in cement mortar show obvious locality and affects the formation and expansion of macroscopic cracks. However, it does not accelerate the propagation of the damage in cement mortar from the periphery to the center of the specimen, nor does it change the phenomenon that the ITZ is more damaged than other meso-components of concrete before peak stress. Macroscopic cracks occur in the descending section of the stress−strain curve, and the sudden drops in the descending section of the stress−strain curve are often accompanied by the generation and expansion of macroscopic cracks. The quadratic polynomial, exponential, and power functions can well fit the relationship between total porosity and compressive strength and the relationship between PSSA and compressive strength. The linear, exponential, and power functions can well reflect the relationship between total porosity and compressive modulus and the relationship between compressive modulus and PSSA. For concrete specimens with the same total porosity, the elastic modulus and strength show randomness with the increase in the sub-porosity of macropores and are basically not affected by the APR. Based on the grey relational analysis, the effects of pore structure parameters on the elastic modulus and compressive strength are in the same order: total porosity > T [k1,k2] > T [k2,k3] > T [k3,k4] > T [k4,k5] > AVR > PSSA. The order of influence of the pore structure parameters on the peak strain is: T [k2,k3] > T [k1,k2] > T [k3,k4] > T [k4,k5] > APR > PSSA > total porosity.

摘要

现有的混凝土随机骨料建模方法(CRAMMs)在细观尺度孔隙结构的参数化方面存在不足。提出了一种新型的CRAMM,其孔隙结构由孔隙级配、总孔隙率、子孔隙率以及每个孔隙级配段的孔径决定。为了研究孔隙结构对混凝土力学性能的影响,构建了25个具有相同骨料结构但细观尺度孔隙结构不同的细观混凝土试件,并进行单轴压缩试验。首次定量和定性地分析了每个孔隙级配段的子孔隙率、平均孔隙半径(APR)、孔隙比表面积(PSSA)和总孔隙率对混凝土破坏过程、抗压强度、峰值应变和弹性模量的影响。结果表明,孔隙结构使水泥砂浆中损伤的萌生和扩展表现出明显的局部性,并影响宏观裂缝的形成和扩展。然而,它既不会加速水泥砂浆中损伤从试件周边向中心的扩展,也不会改变在峰值应力之前界面过渡区(ITZ)比混凝土其他细观组分损伤更严重的现象。宏观裂缝出现在应力 - 应变曲线的下降段,应力 - 应变曲线下降段的突然下降往往伴随着宏观裂缝的产生和扩展。二次多项式、指数函数和幂函数能够很好地拟合总孔隙率与抗压强度之间的关系以及PSSA与抗压强度之间的关系。线性函数、指数函数和幂函数能够很好地反映总孔隙率与抗压模量之间的关系以及抗压模量与PSSA之间的关系。对于总孔隙率相同的混凝土试件,弹性模量和强度随大孔隙子孔隙率的增加呈现出随机性,且基本不受APR的影响。基于灰色关联分析,孔隙结构参数对弹性模量和抗压强度的影响顺序为:总孔隙率>T[k1,k2]>T[k2,k3]>T[k3,k4]>T[k4,k5]>AVR>PSSA。孔隙结构参数对峰值应变的影响顺序为:T[k2,k3]>T[k1,k2]>T[k3,k4]>T[k4,k5]>APR>PSSA>总孔隙率。

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