TY - JOUR
T1 - The thermal shock behavior of Zr3[Al(Si)]4C 6 and in situ (ZrB2 + ZrC)/Zr3[Al(Si)] 4C6 composite
AU - Yu, Lei
AU - Yang, Jian
AU - Qiu, Tai
AU - Pan, Limei
PY - 2014/11/15
Y1 - 2014/11/15
N2 - A water-quenching technique was adopted to evaluate the thermal shock behavior of monolithic Zr3[Al(Si)]4C6 ceramic and in situ 30 vol.% (ZrB2 + ZrC)/Zr3[Al(Si)] 4C6 composite in air. The strength retention of specimens was measured after varying temperature difference up to 800 °C. The critical thermal shock temperature difference (ΔTc) increases from 225°C for Zr3[Al(Si)]4C6 to 330°C for the composite. The calculation results also indicate a much higher thermal stress fracture resistance parameter (R), thermal stress damage resistance parameter (RIV), and thermal stress crack stability parameter (R st) for the composite. Compared with Zr3[Al(Si)] 4C6, the significantly improved thermal shock resistance of the composite should be attributed to the increase in thermal conductivity and the significant strengthening and toughening effect such as particulate reinforcement, grain's pull-out, crack bridging, deflection and branching, and microcracks derived by the in situ incorporation of ZrB2 and ZrC.
AB - A water-quenching technique was adopted to evaluate the thermal shock behavior of monolithic Zr3[Al(Si)]4C6 ceramic and in situ 30 vol.% (ZrB2 + ZrC)/Zr3[Al(Si)] 4C6 composite in air. The strength retention of specimens was measured after varying temperature difference up to 800 °C. The critical thermal shock temperature difference (ΔTc) increases from 225°C for Zr3[Al(Si)]4C6 to 330°C for the composite. The calculation results also indicate a much higher thermal stress fracture resistance parameter (R), thermal stress damage resistance parameter (RIV), and thermal stress crack stability parameter (R st) for the composite. Compared with Zr3[Al(Si)] 4C6, the significantly improved thermal shock resistance of the composite should be attributed to the increase in thermal conductivity and the significant strengthening and toughening effect such as particulate reinforcement, grain's pull-out, crack bridging, deflection and branching, and microcracks derived by the in situ incorporation of ZrB2 and ZrC.
KW - Mechanical properties
KW - Thermal conductivity
KW - Thermal shock resistance
KW - Ultra high-temperature ceramics
UR - http://www.scopus.com/inward/record.url?scp=84903640433&partnerID=8YFLogxK
U2 - 10.1016/j.jallcom.2014.06.001
DO - 10.1016/j.jallcom.2014.06.001
M3 - 快报
AN - SCOPUS:84903640433
SN - 0925-8388
VL - 613
SP - 249
EP - 252
JO - Journal of Alloys and Compounds
JF - Journal of Alloys and Compounds
ER -