TY - JOUR
T1 - Microstructures and mechanical properties of Al2O3-basic eutectic in situ composites directionally solidified by laser floating zone remelting
AU - Jia, Xiaojiao
AU - Zhang, Jun
AU - Su, Haijun
AU - Song, Kan
AU - Liu, Lin
AU - Fu, Hengzhi
PY - 2012/12
Y1 - 2012/12
N2 - Directionally solidified oxide eutectic in situ composites have been attracting increasing interest in recent years for use as the next generation of ultra-high-temperature structural materials because of their excellent high-temperature strength, oxidation and creep resistance, as well as outstanding microstructural stability. Al2O3/YAG/ZrO2 ternary eutectic in situ composites with high density are prepared by laser floating zone remelting technique. The microstructure evolution of Al2O3/YAG/ZrO2 ternary eutectic under high temperature gradient and different growth rates is investigated. The relationship between solidification rate and eutectic spacing for the ternary oxide eutectic is quantificationally characterized. On this basis, the mechanical properties and relationship between microstructure and fracture toughness are analysed. The results show that the directionally solidified Al2O3/YAG/ZrO2 ternary eutectic in situ composite belongs to typical irregular lamellar eutectic structure. The microstructure is rapidly refined with the increase of the solidification rate V. The minimal eutectic spacing observed is as fine as 0.46 μm when the solidification rate is 200 μm/s. The relationship between the average eutectic spacing (λav) and V is determined to be λavV0.5=12.4 μm1.5·s-0.5. Moreover, the ternary eutectic lamellar spacing is much smaller than the binary one at the same solidification condition. The average hardness and room-temperature fracture toughness of the ternary eutectic are (19.0±1.0) GPa and (3.31±0.2) MPa·m1/2, respectively. As compared with the binary eutectic, the crack arrest, deflection and mismatch of thermal expansion coefficient of eutectic phases are the predominant toughening mechanisms of ternary eutectic composite.
AB - Directionally solidified oxide eutectic in situ composites have been attracting increasing interest in recent years for use as the next generation of ultra-high-temperature structural materials because of their excellent high-temperature strength, oxidation and creep resistance, as well as outstanding microstructural stability. Al2O3/YAG/ZrO2 ternary eutectic in situ composites with high density are prepared by laser floating zone remelting technique. The microstructure evolution of Al2O3/YAG/ZrO2 ternary eutectic under high temperature gradient and different growth rates is investigated. The relationship between solidification rate and eutectic spacing for the ternary oxide eutectic is quantificationally characterized. On this basis, the mechanical properties and relationship between microstructure and fracture toughness are analysed. The results show that the directionally solidified Al2O3/YAG/ZrO2 ternary eutectic in situ composite belongs to typical irregular lamellar eutectic structure. The microstructure is rapidly refined with the increase of the solidification rate V. The minimal eutectic spacing observed is as fine as 0.46 μm when the solidification rate is 200 μm/s. The relationship between the average eutectic spacing (λav) and V is determined to be λavV0.5=12.4 μm1.5·s-0.5. Moreover, the ternary eutectic lamellar spacing is much smaller than the binary one at the same solidification condition. The average hardness and room-temperature fracture toughness of the ternary eutectic are (19.0±1.0) GPa and (3.31±0.2) MPa·m1/2, respectively. As compared with the binary eutectic, the crack arrest, deflection and mismatch of thermal expansion coefficient of eutectic phases are the predominant toughening mechanisms of ternary eutectic composite.
KW - Directional solidification
KW - Fracture toughness
KW - In situ composite
KW - Laser floating zone remelting
KW - Solidification microstructure
KW - Ternary eutectic
UR - http://www.scopus.com/inward/record.url?scp=84872470223&partnerID=8YFLogxK
U2 - 10.3724/SP.J.1037.2012.00419
DO - 10.3724/SP.J.1037.2012.00419
M3 - 文章
AN - SCOPUS:84872470223
SN - 0412-1961
VL - 48
SP - 1479
EP - 1486
JO - Jinshu Xuebao/Acta Metallurgica Sinica
JF - Jinshu Xuebao/Acta Metallurgica Sinica
IS - 12
ER -