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Ultrasound enhanced geopolymerisation

机译:超声增强地聚

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摘要

The feasibility of using ultrasound to enhance the geopolymerisation of metakaolinite/sand and fly ash/metakaolinite mixtures was investigated. The introduction of ultrasonication into the geopolymerisation systems increased the compressive strength of the formed geopolymers and the strength increased with increased ultrasonication up to a certain time. The dissolution of metakaolinite and fly ash in alkaline solutions was enhanced by ultrasonication, hence releasing more Al and Si into the gel phase for polycondensation. SEM analysis demonstrated that ultrasonication improved the distribution of the gel phase in the geopolymeric matrices and strengthened the binding between the particle surfaces and the gel phases. XRD patterns showed that ultrasonication enhanced the formation of semi-crystalline to crystalline phases in the formed geopolymers. The 27Al MAS-NMR spectra showed 27Al chemical shifts at around 55 ppm for the geopolymers synthesised with and without ultrasonication, indicating that Al was tetrahedrally coordinated in the form of Al(4Si). 29Si MAS-NMR studies showed that ultrasonication largely improved the interlinkage between Si and Al species, increased the concentrations of polysialate species and enhanced the ordering of the Si and Al tetrahedra in the gel phase in geopolymerisation. Both 27Al and 29Si MAS-NMR spectra indicated an increased extent of polymerisation between Al and Si species in the presence of ultrasonication. The thermal analysis indicated that ultrasonication improved the thermal stability of the formed geopolymers. The improved performance of the ultrasonically formed geopolymers in terms of compressive strength and thermal stability could be attributed to the accelerated dissolution of the Al—Si source materials, the strengthened bonds at the solid particle/gel phase interfaces, the enhanced polycondensation process and the increased semi-crystalline and crystalline phases.
机译:研究了使用超声增强偏高岭土/砂和粉煤灰/偏高岭土混合物的地聚的可行性。将超声处理引入地质聚合体系可增加所形成的地质聚合物的抗压强度,并且强度会随着超声处理的增加而增加到一定的时间。超声处理可提高偏高岭石和粉煤灰在碱性溶液中的溶解度,从而将更多的Al和Si释放到凝胶相中进行缩聚。 SEM分析表明,超声处理改善了地聚合物基质中凝胶相的分布,并增强了颗粒表面与凝胶相之间的结合。 XRD图谱表明超声处理增强了所形成的地质聚合物中半结晶至结晶相的形成。 27的Al MAS-NMR光谱显示,在有和没有超声处理的情况下合成的地质聚合物中,有27的Al化学位移在55 ppm左右,表明Al以Al(4Si)的形式呈四面体配位。 29 Si MAS-NMR研究表明,超声处理极大地改善了Si和Al物种之间的相互联系,增加了多唾液酸根物种的浓度,并增强了地质聚合中凝胶相中Si和Al四面体的有序性。 27 Al和29 Si MAS-NMR光谱均表明在超声作用下Al和Si物种之间的聚合程度增加。热分析表明,超声处理改善了所形成的地质聚合物的热稳定性。超声成型的地质聚合物在抗压强度和热稳定性方面的性能提高,可归因于Al-Si原料的加速溶解,固体颗粒/凝胶相界面处的键增强,增强的缩聚过程以及增加的半结晶相和结晶相。

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  • 来源
    《Journal of Materials Science》 |2004年第2期|571-580|共10页
  • 作者单位

    Department of Chemical and Biomolecular Engineering The University of Melbourne;

    Department of Chemical and Biomolecular Engineering The University of Melbourne;

    Department of Chemical and Biomolecular Engineering The University of Melbourne;

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