Effect of SiO2 Aerogel on the Properties of Inorganic Cementing Materials

被引:0
作者
Yunan Wan
Jianhong Wang
Zhiyong Li
机构
[1] North University of China,School of Materials Science and Engineering
来源
KSCE Journal of Civil Engineering | 2022年 / 26卷
关键词
SiO; aerogel; Fly; Lime; Hemihydrate gypsum; Inorganic cementing material; Hydration mechanism;
D O I
暂无
中图分类号
学科分类号
摘要
SiO2 aerogel powder has ultralow weight and thermal conductivity, and it cannot be easily dispersed in inorganic cementing materials (i.e., it is incompatible with inorganic cementing materials). In this study, the properties of inorganic cementing materials with hemihydrate gypsum and α-hemihydrate gypsum as main cementing materials were investigated. Moreover, the property changes resulting from the addition of SiO2 aerogel to inorganic cementing materials were examined. Based on the obtained results, the composites of SiO2 aerogel and inorganic cementing materials with optimal properties were prepared and investigated. The results revealed that when the composition mass ratio of the inorganic cementing material was 1:3:9:0.8 (fly ash:cement:hemihydrate gypsum:lime), the compressive strength of the cementing material was largest, reaching 7.71 MPa after 28 days of curing. Moreover, when the composition mass ratio of the inorganic cementing material was 1:3:9:0.4/0.6 (fly ash:cement:hemihydrate gypsum:lime), its softening coefficient was highest, reaching 0.97. Under the same mass ratio, the 28-day compressive strength of the α-hemihydrate gypsum-based cementing material was 2.4 times that of the plaster-based cementing material. When the SiO2 aerogel was added to the gypsum-based composite cementing material, the compressive strength and softening coefficient decreased with increasing SiO2 aerogel’s content.
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页码:3216 / 3225
页数:9
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共 111 条
[1]  
Babu DS(2006)Effect of polystyrene aggregate size on strength and moisture migration characteristics of lightweight concrete Cement and Concrete Composites 28 520-527
[2]  
Babu KG(2011)Aerogel insulation for building applications: A state-of-the-art review Energy and Buildings 43 761-769
[3]  
Tiong-Huan W(2004)Effective method for construction of low-dimensional models for heat transfer process International Journal of Heat and Mass Transfer 47 5823-5828
[4]  
Baetens R(1995)Aerogel commercialization: Technology, markets and costs Journal of Non-Crystalline Solids 186 372-379
[5]  
Jelle BP(2007)Mechanical properties of polymer-modified concretes containing expanded polystyrene beads Construction and Building Materials 21 7-11
[6]  
Gustavsen A(2021)A comprehensive review of obstacles and drivers to building energy-saving technologies and their association with research themes, types of buildings, and geographic regions Renewable and Sustainable Energy Reviews 135 110191-495
[7]  
Blinov D(2016)Aerogel-based renders with lightweight aggregates: Correlation between molecular/pore structure and performance Construction and Building Materials 124 485-318
[8]  
Prokopov V(2016)Silica-based aerogels as aggregates for cement-based thermal renders Cement and Concrete Composites 72 309-265
[9]  
Sherenkovskii YV(2016)Nanostructured interpenetrated organic-inorganic aerogels with thermal superinsulating properties Journal of Non-Crystalline Solids 452 259-26
[10]  
Fialko N(2008)Silica aerogel; synthesis, properties and characterization Journal of Materials Processing Technology 199 10-411