粗骨料在疏水水工混凝土中的作用

IF 1.3 4区 材料科学 Q4 MATERIALS SCIENCE, MULTIDISCIPLINARY Emerging Materials Research Pub Date : 2022-06-01 DOI:10.1680/jemmr.21.00027
Ernesto Mora, E. Castellón
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引用次数: 0

摘要

具有降低的吸水特性的混凝土材料对于某些建筑应用是最佳的。混凝土材料中伴随吸水率降低的疏水性可以通过其与疏水性二氧化硅颗粒的配方来实现。尽管向混凝土中添加了疏水性添加剂,但最终混凝土材料的吸水性和疏水性可能会受到制备所用粗集料的亲水性的影响。研究了这些粗骨料在添加疏水性二氧化硅颗粒的混凝土中的作用,并用三种吸水率显著不同的粗骨料制备:石英岩(低)、火成安山岩(中)和火成玄武岩(高)。混凝土材料的疏水性和吸水性取决于其制备过程中使用的粗集料。用石英作为粗骨料制备的材料产生的吸水性材料较少。相比之下,火成玄武岩的使用产生了吸收能力更强的物质。在火成玄武岩用于制备混凝土材料之前,对其进行预处理,包括用疏水颗粒浸渍,导致吸水率显著降低。
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The role of coarse aggregates in hydrophobized hydraulic concrete
Concrete materials having decreased water-absorption traits are optimum for some construction applications. Hydrophobicity accompanied by a decreased water absorption in a concrete material can be achieved through its formulation with hydrophobic silica particles. Despite this effect of hydrophobic additions to concrete, the water absorption and hydrophobicity of the final concrete materials can be affected by the water affinity of the coarse aggregates used for their preparation. The role of these coarse aggregates was studied in concrete with added hydrophobic silica particles and prepared with three coarse aggregates having marked differences in their water absorptions: quartz rocks (low), igneous andesitic rocks (medium) and igneous basaltic rocks (high). The hydrophobicity and water-absorption traits of the concrete materials depended on the coarse aggregates used in their preparations. The materials prepared with quartz as coarse aggregates produced less water-absorbing materials. In contrast, the use of igneous basaltic rocks produced materials with greater absorption. A pretreatment involving impregnation of the igneous basaltic rocks with hydrophobic particles before their use in the preparation of concrete material caused a significantly decreased water absorption.
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来源期刊
Emerging Materials Research
Emerging Materials Research MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
4.50
自引率
9.10%
发文量
62
期刊介绍: Materials Research is constantly evolving and correlations between process, structure, properties and performance which are application specific require expert understanding at the macro-, micro- and nano-scale. The ability to intelligently manipulate material properties and tailor them for desired applications is of constant interest and challenge within universities, national labs and industry.
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