Predicting fly ash dosages to prevent ASR by introducing the concrete prism test (CPT) chemical index model
暂无分享,去创建一个
[1] Eric R. Giannini,et al. Alkali-silica reaction: Current understanding of the reaction mechanisms and the knowledge gaps , 2015 .
[2] Farshad Rajabipour,et al. Reliability of chemical index model in determining fly ash effectiveness against alkali-silica reaction induced by highly reactive glass aggregates , 2014 .
[3] Noura Sinno,et al. ALKALI-SILICA REACTION IN CONCRETE , 2014 .
[4] Farshad Rajabipour,et al. How does fly ash mitigate alkali–silica reaction (ASR) in accelerated mortar bar test (ASTM C1567)? , 2013 .
[5] Kevin J. Folliard,et al. Do Current Laboratory Test Methods Accurately Predict Alkali-Silica Reactivity? , 2012 .
[6] Michael D. A. Thomas,et al. The effect of supplementary cementing materials on alkali-silica reaction: A review , 2011 .
[7] Kimberly E. Kurtis,et al. Assessment of binary and ternary blends of metakaolin and Class C fly ash for alkali-silica reaction mitigation in concrete , 2010 .
[8] Michael D.A. Thomas,et al. The role of alkali content of Portland cement on the expansion of concrete prisms containing reactive aggregates and supplementary cementing materials , 2010 .
[9] L. Malvar,et al. Efficiency of Fly Ash in Mitigating Alkali-Silica Reaction Based on Chemical Composition , 2006 .
[10] Michael D.A. Thomas,et al. Properties of Concrete Containing Ultra-Fine Fly Ash , 2003 .
[11] Marc-André Bérubé,et al. Long-term effectiveness of supplementary cementing materials against alkali–silica reaction , 2001 .
[12] Michael D.A. Thomas,et al. The effect of fly ash composition on the expansion of concrete due to alkali-silica reaction , 2000 .
[13] Benoit Fournier,et al. EVALUATION OF LABORATORY TEST METHODS FOR ALKALI-SILICA REACTIVITY , 1999 .
[14] Michael D.A. Thomas,et al. Field studies of fly ash concrete structures containing reactive aggregates , 1996 .
[15] A. Shayan,et al. Effectiveness of fly ash in preventing deleterious expansion due to alkali-aggregate reaction in normal and steam-cured concrete , 1996 .
[16] Marc-André Bérubé,et al. The effectiveness of supplementary cementing materials in suppressing expansion due to ASR: Another look at the reaction mechanisms part 1: Concrete expansion and portlandite depletion , 1994 .
[17] M. Berra,et al. Application of the NaOH bath test method for assessing the effectiveness of mineral admixtures against reaction of alkali with artificial siliceous aggregate , 1994 .
[18] V. M. Malhotra,et al. INVESTIGATIONS OF SUPPLEMENTARY CEMENTING MATERIALS FOR REDUCING ALKALI-AGGREGATE REACTIONS , 1993 .
[19] A Shayan,et al. Prediction of alkali reactivity potential of some Australian aggregates and correlation with service performance , 1992 .
[20] P. G. Snow,et al. Effect of Fly Ash on Alkali-Aggregate Reaction in Concrete , 1987 .
[21] D. W. Hobbs,et al. Influence of pulverized–fuel ash and granulated blastfurnace slag upon expansion caused by the alkali–silica reaction , 1982 .
[22] Sidney Diamond,et al. Effects of two Danish flyashes on alkali contents of pore solutions of cement-flyash pastes , 1981 .