Mechanical and microstructural properties of basalt fiber reinforced underwater geopolymer mortar

被引:0
作者
Ziada, Mahmoud [1 ]
Tanyildizi, Harun [2 ]
Coskun, Ahmet [3 ]
机构
[1] Istanbul Aydin Univ, Dept Civil Engn, Istanbul, Turkiye
[2] Firat Univ, Dept Civil Engn, Elazig, Turkiye
[3] Firat Univ, Elazig Organize Sanayi Vocat Sch, Elazig, Turkiye
关键词
Underwater geopolymer mortar; Basalt fiber; Mechanical properties; Microstructural properties; FLY-ASH; COMPRESSIVE STRENGTH; CONCRETE; DURABILITY; AMBIENT; SILICA; GEL;
D O I
10.1016/j.istruc.2025.108814
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
This study aims to examine the mechanical and microstructural characterization of underwater geopolymer mortar. The study assessed the efficacy of basalt fiber in underwater geopolymer mortar manufactured using Ground granulated blast-furnace slag (GGBS). This work generated basalt fiber-reinforced GGBS-based geopolymer mortar samples. 0 %, 0.25 %, 0.50 %, and 0.75 % basalt fiber ratios were used to produce basalt fiberreinforced GGBS-based geopolymer mortar. The basalt fiber-free and the basalt fiber-reinforced GGBS-based geopolymer mortar samples were cast and cured in river water. This research tested fresh mixes and hardened samples in two test groups. pH and slump tests were done on fresh mixes. Porosity, flexural strength, and compressive strength tests were also performed on the hardened GGBS-based geopolymer cube and prism samples. In addition, various microstructural experiments were conducted for the microstructural evaluation of the hardened GGBS-based geopolymer. Incorporating fiber into the underwater geopolymer mortar samples resulted in enhanced compressive and flexural strength. After 28 days, the compressive strength of the sample with 0.75 basalt fiber increased by 14.76 % compared to the reference sample, while the flexural strength increased by 56.85 %. In addition, Thermogravimetric analysis revealed that the presence of basalt fibers reduced the mass loss in the geopolymer samples.
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页数:9
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共 68 条
[31]   Influence of Slag-Based Geopolymer Concrete on the Seismic Behavior of Exterior Beam Column Joints [J].
Maniarasan, Settiannan Karuppannan ;
Chandrasekaran, Palanisamy ;
Jayaprakash, Sridhar ;
Ravindran, Gobinath .
SUSTAINABILITY, 2023, 15 (03)
[32]  
McLeish A., 1994, UNDERWATER CONCRETIN
[33]  
Mouritz A.P.A.G. Gibson., 2007, Fire Properties of Polymer Composite Materials, V143
[34]  
Nagataki S, 1989, Antiwashout admixtures for underwater concrete
[35]   Washout resistance of self-protected underwater concrete in freshwater and seawater [J].
Nasr, Ahmed A. ;
Chen, Songgui ;
Jin, Feng .
CONSTRUCTION AND BUILDING MATERIALS, 2021, 289
[36]   Novel fiber-reinforced composite materials based on sustainable geopolymer matrix [J].
Natali, A. ;
Manzi, S. ;
Bignozzi, M. C. .
2011 INTERNATIONAL CONFERENCE ON GREEN BUILDINGS AND SUSTAINABLE CITIES, 2011, 21 :1124-1131
[37]   Experimental study on the mechanical and thermal properties of basalt fiber and nanoclay reinforced polymer concrete [J].
Niaki, M. Hassani ;
Fereidoon, A. ;
Ahangari, M. Ghorbanzadeh .
COMPOSITE STRUCTURES, 2018, 191 :231-238
[38]   A Sustainable Approach for the Geopolymerization of Natural Iron-Rich Aluminosilicate Materials [J].
Obonyo, Esther A. ;
Kamseu, Elie ;
Lemougna, Patrick N. ;
Tchamba, Arlin B. ;
Melo, Uphie C. ;
Leonelli, Cristina .
SUSTAINABILITY, 2014, 6 (09) :5535-5553
[39]   Final Setting Time and Compressive Strength of Fly Ash and GGBS-Based Geopolymer Paste and Mortar [J].
Rao, G. Mallikarjuna ;
Rao, T. D. Gunneswara .
ARABIAN JOURNAL FOR SCIENCE AND ENGINEERING, 2015, 40 (11) :3067-3074
[40]   Chemical optimisation of the compressive strength of aluminosilicate geopolymers synthesised by sodium silicate activation of metakaolinite [J].
Rowles, M ;
O'Connor, B .
JOURNAL OF MATERIALS CHEMISTRY, 2003, 13 (05) :1161-1165