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Properties of the interfacial transition zone in model concrete

机译:模型混凝土中界面过渡带的性质

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The interfacial transition zone (ITZ) between aggregates and cement paste in cementitious materials is a crucial element in mechanical and transport systems. Computer simulation by the SPACE system is used to approach this problem in the present paper. For the particle-packing phenomenon in the fresh state of concrete, the SPACE system relies on a dynamic generation algorithm, reflecting the production conditions of concrete. Hence, structure of the model cement has been proven more realistic than can be achieved by random generator-based system.A natural phenomenon in the ITZ around aggregate particles is size segregation leading to different gradients in porosity, particle size and surface area. Size segregation implies the difference size fractions in the binder mixture to have peak values in their densities on different distances from the aggregate surface. Structural evolution of the ITZ is stereologically quantified with the help of composition and configuration parameters in the fresh and hardened states of concrete.The addition of mineral admixtures is a successful approach to improving the ITZ microstructure. Experiments demonstrated the blending efficiency to be higher for coarser grained Portland cement ( PC), due to the positive effect exerted by gap grading, i.e. by having distinctly different size ranges of particles. This is confirmed by computer simulation of the ITZ microstructure in model concretes made with blended cements. In addition, it is very important in concrete production to achieve good workability conditions to ensure sufficient dispersion of the fine rice husk ash (RHA) particles and proper migration of them into the ITZ through the structure network of large cement particles.
机译:胶凝材料中骨料与水泥浆之间的界面过渡区(ITZ)是机械和运输系统中的关键要素。本文通过SPACE系统进行计算机仿真来解决这个问题。对于新鲜状态下的颗粒堆积现象,SPACE系统依赖于动态生成算法,反映了混凝土的生产条件。因此,已证明模型水泥的结构比通过基于随机发生器的系统所能实现的更为现实。在ITZ中,骨料颗粒周围的自然现象是尺寸偏析,导致孔隙率,粒径和表面积的梯度不同。尺寸偏析意味着粘合剂混合物中的不同尺寸分数在距聚集体表面不同距离处具有其密度的峰值。在混凝土的新鲜和硬化状态下,借助成分和构型参数对ITZ的结构演变进行了立体量化。添加矿物掺合料是改善ITZ微结构的成功方法。实验证明,由于间隙分级(即具有明显不同的粒径范围)发挥了积极作用,因此粗粒硅酸盐水泥(PC)的混合效率更高。这可以通过对掺混水泥制成的模型混凝土中的ITZ微观结构进行计算机模拟来证实。另外,在混凝土生产中获得良好的可加工性条件以确保细的稻壳灰(RHA)颗粒充分分散,并使其通过大的水泥颗粒结构网络适当地迁移到ITZ中,这一点非常重要。

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