4.7 Article

Interfacial characteristics and mechanical behaviors of geopolymer binder with steel slag aggregate: Insights from molecular dynamics

期刊

JOURNAL OF CLEANER PRODUCTION
卷 362, 期 -, 页码 -

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.jclepro.2022.132385

关键词

Geopolymer composite materials; Molecular dynamics; Steel slag aggregate; Interfacial characteristics; Mechanical behavior

资金

  1. National Natural Science Foundation of China [51008031]
  2. Science and Technology Project of Transportation Department of Hebei Province [2018-04]
  3. Fundamental Research Funds for the Central Universities, CHD [300203211211]

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This study used molecular dynamics simulation to investigate the interfacial characteristics and mechanical behaviors of geopolymers with steel slag aggregates. The results showed that the steel slag mineral surfaces exhibited strong hydrophilicity and promoted the diffusion of ions at the interface. The interaction at the interface was mainly due to electrostatic interactions and hydrogen bonding. The formation of composite ionic clusters stabilized the interfacial interaction. The C-A-S-H geopolymer binder demonstrated stronger interfacial tensile strength and shear strength. The composition of steel slag aggregates affected the interfacial bonding and occurrence of damage.
As a promising sustainable building material, geopolymer/steel-slag composite materials have been poorly known in the field of the interfacial characteristics of geopolymer/steel-slag interface, especially at the molecular level. Herein, in this work, molecular dynamics simulation was employed to reveal the interfacial characteristics and mechanical behaviors of geopolymer binder with steel slag aggregate. The molecular models of two geopolymer binders (C-A-S-H and N-A-S-H) and three main minerals of steel slag aggregate (Ca2SiO4, Ca2Fe2O5 and CaCO3) were constructed and carried out. Then the wetting characteristics of different mineral surfaces, interfacial characteristics, interaction mechanisms and mechanical behaviors of various geopolymer/steel-slag interfacial systems were elucidated and compared. It is found that the Ca2SiO4, Ca2Fe2O5 and CaCO3 of steel slag aggregate show strong hydrophilicity, attracting water molecules to accumulated on its mineral surface and promoting the diffusion of Ca2+ and Na + at the interface. The interaction energy of geopolymer/steel-slag systems is mainly composed of electrostatic interaction energy. Thanks to the accumulation of water molecules on the mineral surface, the stronger hydrogen bond interaction occurs at the interface of the geopolymer/steel-slag system. The free metal cations from mineral surfaces and geopolymer binder respectively are coordinated with the accumulated water molecules to emerge hydrated ions, forming composite ionic clusters to stabilize the interfacial interaction. Mechanically, the interaction systems with C-A-S-H binder possess stronger interfacial tensile strength and shear strength. Steel slag with higher Ca2SiO4 content can effectively form strong interfacial bonding, lowering the risk of interfacial tensile failure, whereas steel slag containing more Ca2Fe2O5 can reduce occurrence possibility of shearing damage. CaCO3 formed by carbonization of steel slag, is conductive to strengthening the interfacial interaction with geopolymer binder.

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