The Performance and Reaction Mechanism of Untreated Steel Slag Used as a Microexpanding Agent in Fly Ash-Based Geopolymers

Author:

Zang Jun1,Yao Chunlei2,Ma Bing3,Shao Zhiyuan4,Zhang Houhu3,Wang Jiaqing5ORCID,Qian Binbin6,Zhou Hao3ORCID,Hu Yueyang4

Affiliation:

1. School of Architectural Construction, Jiangsu Vocational Institute of Architectural Technology, Xuzhou 221000, China

2. Xuzhou Construction Engineering Testing Center Co., Ltd., Xuzhou 221000, China

3. Nanjing Institute of Environmental Sciences, Ministry of Ecology and Environment of the People’s Republic of China, Nanjing 210042, China

4. College of Materials Science and Engineering, Yancheng Institute of Technology, Yancheng 224051, China

5. College of Civil Engineering, Nanjing Forestry University, Nanjing 210037, China

6. School of Chemistry and Environmental Engineering, Yancheng Teachers University, Yancheng 224002, China

Abstract

Steel slag is an industrial by-product of the steelmaking process, which is under-utilized and of low value due to its characteristics. Alkali-activated technology offers the possibility of high utilization and increased value of steel slag. A geopolymer composition was composed of steel slag, fly ash, and calcium hydroxide. Four experimental groups utilizing steel slag to substitute fly ash are established based on varying replacement levels: 35%, 40%, 45%, and 50% by mass. The final samples were characterized by compressive strength tests, and Fourier-transform infrared spectroscopy measurements, thermogravimetric measurements, scanning electron microscopy with energy dispersive spectroscopy, X-ray diffraction, and mercury intrusion porosimetry were used to investigate the chemical composition and microstructure of the final products. Higher steel slag/fly ash ratios lead to a lower bulk density and lower compressive strength. The compressive strength ranges from 3.7 MPa to 5.6 MPa, and the bulk density ranges from 0.85 g/cm3 to 1.13 g/cm3. Microstructural and energy-dispersive X-ray spectroscopy analyses show that the final geopolymer products were a type of composite consisting of both calcium aluminate silicate hydrate and sodium aluminate silicate hydrate, with the unreacted crystalline phases acting as fillers.

Funder

the development of strategic emerging industries in Jiangsu Province

the National Natural Science Foundation of China

the Natural Science Foundation of Jiangsu Province of China

the Special Fund of Chinese Central Government for Basic Scientific Research Operations in commonweal Research Institute

the Special Fund of Carbon Peak and Carbon Neutrality Research Institute supported by Nanjing Institute of Environmental Sciences, Ministry of Ecology and Environment

Publisher

MDPI AG

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