<p>In this work, the influence of three MAX phases (Ti<sub>3</sub>SiC<sub>2,</sub> Ti<sub>2</sub>AlC, and Cr<sub>2</sub>AlC) on the densification and final properties of dense composites from Ultra-High Temperature Ceramics (UHTC) family was studied. Addition of the MAX phases resulted in the formation of secondary boride phases due to chemical reactions between boron carbide and MAX phase. Mentioned phases were utilized for reduction of sintering temperature of the final composite material. It decreased the sintering temperature up to 800&#xa0;°C when compared to pure B<sub>4</sub>C. Additionally, the phase composition and derivative mechanical properties were investigated to evaluate differences between final composite materials. All obtained materials remarkably increased their fracture resistance (K<sub>IC</sub>) from 33 to 100%. The mechanical properties of B<sub>4</sub>C were either retained (Ti<sub>3</sub>SiC<sub>2</sub>) or decreased in terms of Vickers hardness and Young’s Modulus (Ti<sub>2</sub>AlC and Cr<sub>2</sub>AlC). Systems with Ti<sub>3</sub>SiC<sub>2</sub> appeared to possess significant potential for application, also when compared to UHTC systems of similar purpose.</p>

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UHTC ceramics derived from B4C and MAX phases by reactive sintering

  • Dawid Kozień,
  • Adrian Graboś,
  • Katarzyna Pasiut,
  • Magdalena Ziąbka,
  • Leszek Chlubny,
  • Marcin Wójtowicz,
  • Wojciech Banaś,
  • Marek Grabowy,
  • Zbigniew Pędzich

摘要

In this work, the influence of three MAX phases (Ti3SiC2, Ti2AlC, and Cr2AlC) on the densification and final properties of dense composites from Ultra-High Temperature Ceramics (UHTC) family was studied. Addition of the MAX phases resulted in the formation of secondary boride phases due to chemical reactions between boron carbide and MAX phase. Mentioned phases were utilized for reduction of sintering temperature of the final composite material. It decreased the sintering temperature up to 800 °C when compared to pure B4C. Additionally, the phase composition and derivative mechanical properties were investigated to evaluate differences between final composite materials. All obtained materials remarkably increased their fracture resistance (KIC) from 33 to 100%. The mechanical properties of B4C were either retained (Ti3SiC2) or decreased in terms of Vickers hardness and Young’s Modulus (Ti2AlC and Cr2AlC). Systems with Ti3SiC2 appeared to possess significant potential for application, also when compared to UHTC systems of similar purpose.