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Modeling the elastic properties of concrete composites: Experiment, differential effective medium theory, and numerical simulation

机译:对混凝土复合材料的弹性特性建模:实验,微分有效介质理论和数值模拟

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Concrete is a mixture of cement, water and aggregates. In terms of microstructure, besides the cement paste matrix and aggregate inclusions, there is a third phase, which is called the interfacial transition zone (ITZ), which forms due to the wall effect and can be thought of as a thin shell that randomly forms around each aggregate. Thus, concrete can be viewed as a bulk paste matrix containing composite inclusions. To compute the elastic properties of a concrete composite, a differential effective medium theory (D-EMT) is used in this study by assigning elastic moduli to corresponding bulk paste matrix, ITZ and aggregate. In this special D-EMT, each aggregate particle, surrounded by a shell of ITZ of uniform thickness and properties, is mapped onto an effective particle with uniform elastic moduli. The resulting simpler composite, with a bulk paste matrix, is then treated by the usual D-EMT. This study shows that to assure the accuracy of the D-EMT calculation, it is important to consider the increase in the waterxement mass ratio (w/c) of the ITZ and the corresponding decrease in w/c ratio of the bulk matrix. Because of this difference in w/c ratio, the contrast of elastic moduli between the ITZ and the bulk paste matrix needs to be considered as a function of hydration age. The Virtual Cement and Concrete Testing Laboratory (VCCTL) cement hydration module is used to simulate the microstructure of cement paste both inside and outside the ITZ. The redistribution of calcium hydroxide between ITZ and bulk paste regions can further affect the elastic contrast between ITZ and bulk paste. The elastic properties of these two regions are computed with a finite element technique and used as input into the D-EMT calculation. The D-EMT predictions of the elastic properties of concrete composites are compared with the results measured directly with a resonant frequency method on corresponding composites. This comparison shows that the D-EMT predictions agree well with experimental measurements of the elastic properties of a variety of concrete mixtures.
机译:混凝土是水泥,水和骨料的混合物。在微观结构方面,除了水泥浆基质和骨料夹杂物外,还有第三相,称为界面过渡区(ITZ),由于壁效应而形成,可以认为是随机形成的薄壳围绕每个聚合。因此,混凝土可以看作是包含复合夹杂物的块状浆体基质。为了计算混凝土复合材料的弹性性能,本研究中使用了微分有效介质理论(D-EMT),方法是将弹性模量分配给相应的块状浆体基质,ITZ和集料。在这种特殊的D-EMT中,每个聚集的颗粒都被具有均匀厚度和特性的ITZ外壳包围,并映射到具有均匀弹性模量的有效颗粒上。然后,用通常的D-EMT处理所得的较简单的复合材料(具有本体糊状基质)。这项研究表明,为了确保D-EMT计算的准确性,重要的是要考虑ITZ的水浸质量比(w / c)的增加和体基质的w / c比的相应降低。由于w / c比率存在差异,因此需要将ITZ和块状糊料基质之间的弹性模量对比视为水合年龄的函数。虚拟水泥和混凝土测试实验室(VCCTL)水泥水化模块用于模拟ITZ内部和外部的水泥浆的微观结构。氢氧化钙在ITZ和散装糊料区域之间的重新分布会进一步影响ITZ和散装糊料之间的弹性对比度。这两个区域的弹性特性是通过有限元技术计算的,并用作D-EMT计算的输入。将D-EMT对混凝土复合材料弹性性能的预测与共振频率方法直接测量相应复合材料的结果进行比较。这种比较表明,D-EMT预测与各种混凝土混合物的弹性性能的实验测量结果非常吻合。

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