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Phase equilibria of the Na2O-TiO2-SiO2 system between 900 and 1600°C in air

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Abstract

The Na2O-SiO2-TiO2 system is important for the glass, ceramic, and metallurgical industries. Its features provide information on the composition and melting temperature to be utilized during the production of glass and ceramic and during the processing of TiO2-bearing material in the metallurgical industry. The liquidus temperatures between 900 and 1600°C in the ternary system at saturation of solid SiO2, TiO2, Na2Ti6O13, Na2SiTiO5, and Na2Ti3O7 were measured using the equilibration-quenching energy-dispersive X-ray spectroscopy/Electron Probe Microanalyzer technique. A wide range of liquidus compositions were obtained with Na2O between 0 and 41.7 mol% in the SiO2- and TiO2-rich regions. The present study provides liquidus data at 1500 and 1600°C for the first time. Liquidus temperatures at various double saturations were also obtained in the present investigation to determine univariant lines in the phase diagram. The present experimental data were compared with previous investigations and computed phase diagrams. The data obtained in the present investigation can be employed to optimize the thermodynamic properties and phase diagrams of the Na2O-SiO2-TiO2 system.

Original languageEnglish
Pages (from-to)6307-6322
JournalJournal of the American Ceramic Society
Volume107
Issue number9
Early online date6 May 2024
DOIs
Publication statusPublished - Sept 2024
MoE publication typeA1 Journal article-refereed

Funding

The authors acknowledge the funding from \u201CRiset Peningkatan Kapasitas Dosen Muda\u201D, Institut Teknologi Bandung (ITB). The authors also acknowledge the supplementary funding at Aalto University from Business Finland and the Academy of Finland (project PhosPath #341404). We are highly indebted to Hampton Thermodynamics Ltd (UK) and the members of its industrial support group (project #HTL 001) for access to the recent version of the HTOX oxide database (version 9.1). The Academy of Finland's RawMatTERS Finland Infrastructure (RAMI) based at Aalto University, VTT Technical Research Centre, and the Geological Survey of Finland, was utilized in this research. Preliminary experiments conducted by Mr. Lanjar Grahita at ITB Pyrometallurgy Laboratory are also gratefully acknowledged as well as the assistance of the Geological Survey of Finland and Radoslaw Michallik, PhD, for the EPMA verification measurements.

Keywords

  • ceramics
  • phase diagram
  • slag
  • titania glass

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