Mechanical Performance of Hybrid Fibre Reinforced Magnesium Oxychloride Cement-Based Composites at Ambient and Elevated Temperature

被引:6
作者
Rawat, Sanket [1 ]
Saliba, Paul [1 ]
Estephan, Peter Charles [1 ]
Ahmad, Farhan [1 ]
Zhang, Yixia [1 ]
机构
[1] Western Sydney Univ, Sch Engn Design & Built Environm, Kingswood Campus, Sydney, NSW 2751, Australia
关键词
compressive strength; elevated temperature; fibre reinforced cementitious composites; hybrid fibre; magnesium oxychloride cement (MOC); tensile strength; WATER RESISTANCE; PHOSPHORIC-ACID; CONCRETE; MICROSTRUCTURE; STRENGTH; FIRE;
D O I
10.3390/buildings14010270
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Magnesium oxychloride cement (MOC) is often recognized as an eco-friendly cement and has found widespread application in various sectors. However, research on its resistance against elevated temperatures including fire is very limited. This paper thoroughly investigated the mechanical performance of fibre reinforced MOC-based cementitious composite (FRMOCC) at ambient and elevated temperatures. A recently developed water-resistant MOC was used as the base matrix which was further reinforced using hybrid basalt and polypropylene fibres at various proportions, and a systematic study on the effect of fibre dosage on compressive and tensile strength of FRMOCC was conducted. The specimens were exposed to elevated temperatures ranging from 200 to 800 degrees C; mechanical performance and phase composition from a microscale study were analysed. The findings revealed that compressive strength, with the increase in temperature, substantially decreased, with values of 30-87% at 400 degrees C and over 95% at 800 degrees C. Specimens with 1.5% basalt and 0.5% PP fibre showed the least reduction possibly due to the vacant channels created as a result of the melting effect of PP fibres. Tensile strength was also completely lost at 600 degrees C and the specimens suffered substantial mass loss exceeding 30% at this temperature, indicating significant matrix decomposition. Additional analysis using X-ray diffraction (XRD) and scanning electron microscope (SEM) revealed the decomposition stages of the matrix and highlighted the instability of the main hydration phases of FRMOCC at elevated temperatures.
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页数:17
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