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An integrated microstructural-nanomechanical-chemical approach to examine material-specific characteristics of cementitious interphase regions

机译:一种集成的微观结构 - 纳米力学方法,用于研究水泥间间区域的材料特征特征

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Effective properties and structural performance of cementitious mixtures are substantially governed by the quality of the interphase region because it acts as a bridge transferring forces between aggregates and a bindilig matrix and is generally susceptible to damage. As alternative binding agents like alkali-activated precursors haye obtained substantial attention in recent years, there is a growing need for fundamental knowledge to uncover interphase formation mechanisms. In this paper, two different types of binding materials, i.e., fly ash-based geopolymer and ordinary portland cement, were mixed with limestone aggregate to examine and compare the microstructures and nanomechanical properties of interphase region. To this end, microstructural characteristics using scanning microscopies, nanomechanical properties by nanoindentation tests, and spatial mapping of chemical contents based on the energy dispersive spectroscopy were integrated to identify and investigate the interphase region formed by the case-specific interactions between the matrix materials and limestone. The integrated microstructural-nanomechanical-chemical approach was effective to better understand links between material-specific properties of cementing phases. More specifically, the fly ash-based geopolymer paste was. usually well bonded to the aggregate surface with a rich formation of N-A-S-H gel, while interfacial debonding was often observed between aggregate surface and paste in ordinary portland cement concrete. However, when a good bonding between aggregate and paste is formed, interphase region in PCC did not show any considerable difference in nanomechanical properties compared to the bulk paste.
机译:水泥混合物的有效性能和结构性性能基本上受到间间区域的质量来控制的,因为它充当聚集体和结菜基质之间的桥接力并且通常易受损伤。作为诸如碱活化前体的替代结合剂近年来获得了大量关注,因此对揭示差异形成机制的基本知识日益增长。在本文中,两种不同类型的结合材料,即粉煤灰基地缘聚合物和普通植物水泥与石灰石聚集体混合,以检查和比较差异区域的微观结构和纳米机械特性。为此,使用扫描显微镜,通过纳米狭窄试验的纳米力学性能以及基于能量分散光谱的化学含量的空间映射来识别和研究通过基质材料与石灰石之间的特异性相互作用形成和研究和研究通过基质材料和石灰石之间的特异性相互作用形成的间差区的空间映射。 。集成的微观结构 - 纳米力学方法是有效的,可以更好地了解材料特异性静脉阶段的特性之间的联系。更具体地说,粉煤灰的地质聚合物浆料是。通常用富含N-A-S-H凝胶的聚集表面粘合到聚集体表面,而普通波特兰水泥混凝土中的骨料表面和浆料之间经常观察到界面剥离。然而,当形成骨料和糊剂之间的良好键合时,与散装浆料相比,PCC中的骨间区域没有显示纳米力学性质的任何相当大的差异。

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