Qiu Xiujiao, Chen Jiayi, Deprez Maxim, Cnudde Veerle, Ye Guang, De Schutter Geert
Department of Structural Engineering and Building Materials, Ghent University, 9052 Ghent, Belgium.
Department of Materials, Mechanics, Management & Design, Delft University of Technology, 2600 AA Delft, The Netherlands.
Materials (Basel). 2021 May 28;14(11):2908. doi: 10.3390/ma14112908.
The microstructure of alkali-reactive aggregates, especially the spatial distribution of the pore and reactive silica phase, plays a significant role in the process of the alkali silica reaction (ASR) in concrete, as it determines not only the reaction front of ASR but also the localization of the produced expansive product from where the cracking begins. However, the microstructure of the aggregate was either simplified or neglected in the current ASR simulation models. Due to the various particle sizes and heterogeneous distribution of the reactive silica in the aggregate, it is difficult to obtain a representative microstructure at a desired voxel size by using non-destructive computed tomography (CT) or focused ion beam milling combined with scanning electron microscopy (FIB-SEM). In order to fill this gap, this paper proposed a model that simulates the microstructures of the alkali-reactive aggregate based on 2D images. Five representative 3D microstructures with different pore and quartz fractions were simulated from SEM images. The simulated fraction, scattering density, as well as the autocorrelation function (ACF) of pore and quartz agreed well with the original ones. A 40×40×40 mm3 concrete cube with irregular coarse aggregates was then simulated with the aggregate assembled by the five representative microstructures. The average pore (at microscale μm) and quartz fractions of the cube matched well with the X-ray diffraction (XRD) and Mercury intrusion porosimetry (MIP) results. The simulated microstructures can be used as a basis for simulation of the chemical reaction of ASR at a microscale.
碱活性集料的微观结构,尤其是孔隙和活性二氧化硅相的空间分布,在混凝土碱-硅酸反应(ASR)过程中起着重要作用,因为它不仅决定了ASR的反应前沿,还决定了膨胀产物的生成位置,而裂缝正是从该位置开始产生的。然而,在当前的ASR模拟模型中,集料的微观结构要么被简化,要么被忽略。由于集料中活性二氧化硅存在各种粒径且分布不均,利用无损计算机断层扫描(CT)或聚焦离子束铣削结合扫描电子显微镜(FIB-SEM)难以在所需的体素尺寸下获得具有代表性的微观结构。为了填补这一空白,本文提出了一种基于二维图像模拟碱活性集料微观结构的模型。从扫描电子显微镜图像中模拟了五种具有不同孔隙率和石英含量的代表性三维微观结构。模拟得到的孔隙率、散射密度以及孔隙和石英的自相关函数(ACF)与原始数据吻合良好。然后,用这五种代表性微观结构组装的集料对一个含有不规则粗集料的40×40×40 mm³混凝土立方体进行了模拟。该立方体的平均孔隙率(微观尺度为μm)和石英含量与X射线衍射(XRD)和压汞法(MIP)结果匹配良好。模拟得到的微观结构可作为微观尺度下ASR化学反应模拟的基础。