张海燕, 袁振生, 闫佳. Experimental Study on Mechanical Properties of Metakaolin-fly Ash-based Geopolymer Concrete after Exposure to Elevated Temperatures[J]. 2016, 36(3): 373-379.
张海燕, 袁振生, 闫佳. Experimental Study on Mechanical Properties of Metakaolin-fly Ash-based Geopolymer Concrete after Exposure to Elevated Temperatures[J]. 2016, 36(3): 373-379. DOI: 10.13409/j.cnki.jdpme.2016.03.008.
Experimental Study on Mechanical Properties of Metakaolin-fly Ash-based Geopolymer Concrete after Exposure to Elevated Temperatures
Geopolymer was prepared through potassium silicate solution activating metakaolin and fly ash blend.Compressive and splitting tensile strength tests were carried out on geopolymer concrete specimens with different water-cement ratios(0.45
0.40
0.35)
sand ratios(0.25
0.30
0.35)and aggregate-binders(3.0
3.5
4.0)at room temperature.Based on these test results
the optimal formula of geopolymer concrete was determined
and compressive and splitting tensile strength tests were conducted after exposure to elevated temperatures on geopolymer concrete prepared with the optimal formula.The test results show that compressive and splitting tensile strengt
h of geopolymer concrete decrease with an increase in temperature
especially a great decrease of strength occurs in 300
5
00 ℃ range.In comparison to compressive strength
the splitting tensile strength of geopolymer concrete after exposure to elevated temperatures decreases with temperatures at a higher rate.The test results on compressive strength of geopolymer concrete after exposure to elevated temperatures were compared with that of ordinary concrete from literatures.And it shows that geopolymer concrete exhibits higher compressive strength.A formula describing the relationship between the compressive and splitting strength of geopolymer concrete were built through regression analysis
and the calculation results from the formula agree well with test results.
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