利用 X 射线计算机断层扫描技术研究沥青混凝土的微观结构

S. V. Lomov, A. I. Morkovkin
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引用次数: 0

摘要

沥青混凝土样品的机械数字孪生(机械有限元模型)是在回收利用带有纤维增强材料(玻璃纤维)的聚合物复合材料项目框架内开发的,该材料在沥青混凝土生产中可替代碎石。开发了使用 X 射线计算机断层扫描(XCT)分析沥青混凝土微观结构和计算机械性能的方法。基于 X 射线微计算机断层扫描 (XCT) 图像的沥青混凝土微观结构数字孪生数据处理链包括以下步骤:1) 图像增强;2) 图像分割;3) 孔隙和固体颗粒形态分析;4) 将分割图像转换为基于体素的有限元 (FE) 模型。结果表明,40 微米的 XCT 分辨率足以可靠地识别微观结构参数,即成分的体积分数、空隙(孔隙)的大小、形状和空间位置分布,以及破碎脆性添加剂(玻璃纤维碎片)的大小分布。FE 模型是材料的数字孪生模型,在指定材料成分的特性后,可用于模拟材料的热力学和功能特性。在计算添加了碎玻璃纤维颗粒的沥青混凝土的压缩和剪切模量统计数据时,对所开发的程序进行了举例说明。研究了计算弹性特性与数字孪生体尺寸的关系。结果表明,10 毫米及以上的模型尺寸足以代表微观结构和计算均匀化特征。研究结果可用于分析沥青混凝土的微观结构和与结构相关的热力学特性。所开发的有限元模型可用于模拟沥青混凝土的粘弹性响应及其在循环荷载下的行为。
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Study of the microstructure of asphalt concrete using X-ray computed tomography
A mechanical digital twin (a mechanical finite-element model) of an asphalt concrete sample has been developed in the framework of a project for recycling polymer composite materials with fibrous reinforcement (fiberglass) as an alternative for crushed stone in the asphalt concrete production. A methodology of using X-ray computed tomography (XCT) for analysis of the asphalt concrete microstructure and calculation of the mechanical properties is developed. The data processing chain for developing a digital twin of the asphalt concrete microstructure, based on X-ray micro-computed tomography (XCT) image includes the following steps: 1) image enhancement; 2) image segmentation; 3) analysis of the morphology of pores and solid particles; 4) transformation of the segmented image into a voxels-based finite element (FE) model. It is demonstrated that the XCT resolution of 40 μm is sufficient for a reliable identification of microstructural parameters, i.e., volume fractions of the components, distributions of voids (pores) in size, shape and spatial position, as well as distributions of the crushed brittle additives (fiberglass chips) in size. The FE model constitutes a digital twin of the material, and, after specifying the characteristics of the material components, can be used for simulation of the thermomechanical and functional properties of the material. The developed procedure is exemplified in the calculation of statistics of the compression and shear moduli of the asphalt concrete with addition of crushed fiberglass particles. The dependence of the calculated elastic properties on the size of the digital twin is studied. It is shown that a model size of 10 mm and more is sufficient for the microstructural representativity and calculation of the homogenization characteristics. The results can be used for analysis of the microstructure and structure-dependent thermomechanical properties of asphalt concrete. The developed finite element model can be used for modelling of the visco-elastic response of asphalt concrete and its behavior under cyclic loading.
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