Physico-mechanical properties of geopolymers after thermal exposure: Influence of filler, temperature and dwell time

被引:1
|
作者
Perna, Ivana [1 ]
Zarybnicka, Lucie [2 ]
Macova, Petra [2 ]
Supova, Monika [1 ]
Sevcik, Radek [1 ]
机构
[1] Czech Acad Sci, Inst Rock Struct & Mech, V Holesovickach 41, Prague 18209, Czech Republic
[2] Czech Acad Sci, Inst Theoret & Appl Mech, Ctr Telc, Prosecka 809 76, Prague 19000, Czech Republic
关键词
Geopolymers; Filler; Thermal exposure; Physical properties; Mechanical properties; MECHANICAL-PROPERTIES; METAKAOLIN GEOPOLYMERS; PORTLAND-CEMENT; CONCRETE; BEHAVIOR; PERFORMANCE; COMPOSITES;
D O I
10.1016/j.conbuildmat.2024.138893
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Geopolymers offer increasingly better physico-mechanical properties concerning thermal exposure at high temperatures compared to ordinary Portland cements (OPC). This paper aims to comprehensively study the use of different types of fillers with different particle size distributions in terms of type (silica sands and cordierites) and surface area, loaded at different temperatures and dwell times (30 min and 180 min). After thermal exposure in the temperature range of 100-1000 degrees C, geopolymer samples were evaluated regarding physico-mechanical properties compared to samples without thermal exposure, using OPC as a reference material. Geopolymer samples were found to have a denser microstructure than OPC, supporting their better resistance to elevated temperature conditions. In addition, the influence of different filler compositions on the resulting internal structure and porosity was demonstrated. Samples containing fillers in two particle size ranges showed better densification than samples with one particle size range. Conversely, OPC samples showed the least favourable results. In addition, the mechanical behaviour of the geopolymers under static loading, especially in bending and compression tests, showed that the prepared geopolymers exhibited better properties than Portland cement at elevated temperatures, especially in the range of 500-1000 degrees C. In conclusion, appropriately designed geopolymer compositions have the potential to be a sustainable material, a high-performance alternative to traditional building materials.
引用
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页数:11
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