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混凝土中碱-硅酸反应发展过程中石英的变形程度与二氧化硅溶解之间的关系。

Relationship between Degree of Deformation in Quartz and Silica Dissolution for the Development of Alkali-Silica Reaction in Concrete.

作者信息

Tiecher Francieli, Gomes Marcia E B, Dal Molin Denise C C, Hasparyk Nicole P, Monteiro Paulo J M

机构信息

Polytechnic School of Civil Engineering, IMED, Passo Fundo 99070-220, Brazil.

Department of Geology, Universidade Federal do Rio Grande do Sul, Porto Alegre 91501-970, Brazil.

出版信息

Materials (Basel). 2017 Sep 4;10(9):1022. doi: 10.3390/ma10091022.

Abstract

This paper presents research on the influence of quartz deformation in aggregates for the development of the alkali-silica reaction in concrete and its relationship with silica dissolution. The study also compares these characteristics with the field behavior of such rocks in concrete. The paper proposes parameters to classify the different degrees of deformation of quartz. Transmission electron microscopy showed the presence of walls even in slightly deformed quartz, which indicate the presence of the internal paths available to react with the alkaline concrete pore solutions and point to the potential development of an alkali-silica reaction. The presence of the deformation bands in the quartz grains leads to the alkali aggregate reaction occurring more rapidly. The visible spectrophotometer test was performed to evaluate the dissolution potential of the different samples of deformed quartz, which confirmed that the reactivity of the quartz increases as the deformation of the crystalline structure increases. The parameters established in the present study could be verified by analyzing the behavior of reactive and innocuous aggregates from the buildings.

摘要

本文介绍了关于骨料中石英变形对混凝土碱-硅酸反应发展的影响及其与二氧化硅溶解关系的研究。该研究还将这些特性与此类岩石在混凝土中的现场表现进行了比较。本文提出了对石英不同变形程度进行分类的参数。透射电子显微镜显示,即使在轻微变形的石英中也存在壁,这表明存在与碱性混凝土孔隙溶液反应的内部路径,并指出了碱-硅酸反应潜在的发展情况。石英颗粒中变形带的存在导致碱-骨料反应更快发生。进行了可见分光光度计测试以评估不同变形石英样品的溶解潜力,这证实了随着晶体结构变形增加,石英的反应活性增强。本研究中确定的参数可通过分析建筑物中活性和无害骨料的行为来验证。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9069/5615677/5cf418dfc845/materials-10-01022-g001.jpg

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