4.7 Article

Preparation and Characterization of High-Strength Geopolymer Based on BH-1 Lunar Soil Simulant with Low Alkali Content

期刊

ENGINEERING
卷 7, 期 11, 页码 1631-1645

出版社

ELSEVIER
DOI: 10.1016/j.eng.2020.10.016

关键词

Space exploration; Lunar base; Geopolymer; Lunar soil simulant; Rheology

资金

  1. National Key Research and Development (R&D) Program of China [2018YFB1600100]
  2. National Natural Science Foundation of China [51978029, 51622805]
  3. Shanghai Pujiang Program

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A new type of lunar soil simulant named BH-1 was developed in this study, which closely resembles real lunar soil and was used to synthesize a geopolymer under simulated lunar atmospheric conditions. Supplementing aluminum sources in the geopolymer based on BH-1 significantly improved its strength, showing promising results for potential lunar base construction.
The construction of a lunar base and habitation on the Moon has always been on researchers' minds. Building materials used in in situ lunar resources are of great significance for saving expensive space freight. In this study, a new type of lunar soil simulant named Beihang (BH)-1 was developed. The chemical mineral composition and microstructure of BH-1 closely resemble those of real lunar soil, as verified by X-ray fluorescence spectroscopy (XRF), X-ray diffraction (XRD), scanning electron microscopy (SEM), and reflectance spectra. This research also synthesized a geopolymer based on BH-1 cured at simulated lunar atmospheric conditions. We also investigated the effect of supplementing aluminum (Al) sources on the enhancement of geopolymer strength based on BH-1. The rheological behavior of alkali-activated BH-1 pastes was determined for workability. XRF, XRD, Fourier transform infrared spectroscopy, SEM coupled with energy dispersive spectroscopy, and Al-27 magic angle spinning-nuclear magnetic resonance were used to characterize resulting geopolymers. Rheological test findings showed that the rheology of BH-1 pastes fits the Herschel-Bulkley model, and they behaved like a shear-thinning fluid. The results showed that the 28-day compressive strength of the BH-1 geopolymer was improved by up to 100.8%. Meanwhile, the weight of additives required to produce per unit strength decreased, significantly reducing the mass of materials transported from the Earth for the construction of lunar infrastructure and saving space transportation costs. Microscopic analyses showed that the mechanism to improve the mechanical properties of the BH-1 geopolymer by adding an additional Al source enhances the replacement of silicon atoms by Al atoms in the silicon-oxygen group and generates a more complete and dense amorphous gel structure. (C) 2020 THE AUTHORS. Published by Elsevier LTD on behalf of Chinese Academy of Engineering and Higher Education Press Limited Company.

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