Development of a predictive optimization model for the compressive strength of sodium activated fly ash based geopolymer pastes

被引:29
作者
Fillenwarth, Brian A. [1 ]
Sastry, Shankar M. L. [1 ]
机构
[1] Washington Univ, Dept Mech Engn & Mat Sci, St Louis, MO 63130 USA
关键词
Alkali activated cement; Geopolymer paste; Compressive strength; Fly ash; Predictive optimization model; Genetic programming; ALKALINE ACTIVATION; CURING CONDITIONS; TEMPERATURE; REACTIVITY;
D O I
10.1016/j.fuel.2015.01.029
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
As concerns about global CO2 emissions grow, there exists a need for widespread commercialization of lower emission building materials such as geopolymers. The commercialization of geopolymers is currently impeded by the high variability of the materials used for their synthesis and limited knowledge of the interrelationships between mix design variables. To overcome these barriers, this work demonstrates a relationship between the compressive strength and the chemical design variables derived from experimental data using genetic programming. The developed model indicates the main chemical factors responsible for the compressive strength of sodium activated geopolymers are the contents of Na2O, reactive SiO2, and H2O. The contents of reactive Al2O3 and CaO were found to not have a significant impact on the compressive strength. The optimization model is shown to predict the compressive strength of fully cured sodium activated fly ash based geopolymer pastes from their chemical composition to within 6.60 MPa. (C) 2015 Elsevier Ltd. All rights reserved.
引用
收藏
页码:141 / 146
页数:6
相关论文
共 35 条
[1]   The relationship of NaOH Molarity, Na2SiO3/NaOH Ratio, Fly Ash/Alkaline Activator Ratio, and Curing Temperature to the Strength of Fly Ash-Based Geopolymer [J].
Abdullah, M. M. A. ;
Kamarudin, H. ;
Mohammed, H. ;
Nizar, I. Khairul ;
Rafiza, A. R. ;
Zarina, Y. .
MECHATRONICS AND MATERIALS PROCESSING I, PTS 1-3, 2011, 328-330 :1475-+
[2]   Geopolymeric materials prepared using Class F fly ash and elevated temperature curing [J].
Bakharev, T .
CEMENT AND CONCRETE RESEARCH, 2005, 35 (06) :1224-1232
[3]  
Base C.F., 1976, The hydrolysis of cations
[4]   Determining the Reactivity of a Fly Ash for Production of Geopolymer [J].
Chen-Tan, Nigel W. ;
van Riessen, Arie ;
Ly, Chi V. ;
Southam, Daniel C. .
JOURNAL OF THE AMERICAN CERAMIC SOCIETY, 2009, 92 (04) :881-887
[5]   Workability and strength of coarse high calcium fly ash geopolymer [J].
Chindaprasirt, P. ;
Chareerat, T. ;
Sirivivatnanon, V. .
CEMENT & CONCRETE COMPOSITES, 2007, 29 (03) :224-229
[6]   High-Strength Geopolymer Using Fine High-Calcium Fly Ash [J].
Chindaprasirt, P. ;
Chareerat, T. ;
Hatanaka, S. ;
Cao, T. .
JOURNAL OF MATERIALS IN CIVIL ENGINEERING, 2011, 23 (03) :264-270
[7]   Alkali activation of fly ashes.: Part 1:: Effect of curing conditions on the carbonation of the reaction products [J].
Criado, A ;
Palomo, A ;
Fernández-Jiménez, A .
FUEL, 2005, 84 (16) :2048-2054
[8]   Alkali activation of fly ash. Part III: Effect of curing conditions on reaction and its graphical description [J].
Criado, M. ;
Fernandez-Jimenez, A. ;
Palomo, A. .
FUEL, 2010, 89 (11) :3185-3192
[9]  
Davidovits J, 1994, P 1 INT C ALK CEM CO, P131
[10]  
Davis John M., 2008, P377, DOI 10.1007/978-0-387-70805-8_14