Research on UHTCs has generally involved two major fields: the improvement of mechanical properties and the oxidation resistance. High performances are achieved upon careful tailoring of the microstructure, obtained through an aware control of the sintering additives, secondary phases and densification process. Recent advancements in high temperature strength have been achieved through addition of W-based compounds, thanks to the formation of highly refractory secondary phases. Another vivid issue related to UHTCs concerns strategies to improve their low fracture toughness. In order to increase their intrinsic brittleness, long and short fibers are added to ZrB2. However, cautious choice of the sintering parameters must be paid, owing to the tendency of the fibers to react with the matrix at increasing temperatures, change their characteristic structure and thus lose their properties. The addition of fibers or sintering additive notably alters the oxidation behavior of monolithic ZrB2, through the formation of new crystalline phases and change of the viscosity of the outermost silico-boride glass. In this work, a series of UHTCs possessing outstanding high temperature mechanical strength, or improved fracture toughness, or exceptional oxidation resistance will be reviewed. In particular, the microstructure evolution upon sintering or oxidation will be studied by SEM and TEM and correlated to the specific thermo-mechanical performances.

TEM study on UHTCs and composites

Laura Silvestroni;Diletta Sciti;
2016

Abstract

Research on UHTCs has generally involved two major fields: the improvement of mechanical properties and the oxidation resistance. High performances are achieved upon careful tailoring of the microstructure, obtained through an aware control of the sintering additives, secondary phases and densification process. Recent advancements in high temperature strength have been achieved through addition of W-based compounds, thanks to the formation of highly refractory secondary phases. Another vivid issue related to UHTCs concerns strategies to improve their low fracture toughness. In order to increase their intrinsic brittleness, long and short fibers are added to ZrB2. However, cautious choice of the sintering parameters must be paid, owing to the tendency of the fibers to react with the matrix at increasing temperatures, change their characteristic structure and thus lose their properties. The addition of fibers or sintering additive notably alters the oxidation behavior of monolithic ZrB2, through the formation of new crystalline phases and change of the viscosity of the outermost silico-boride glass. In this work, a series of UHTCs possessing outstanding high temperature mechanical strength, or improved fracture toughness, or exceptional oxidation resistance will be reviewed. In particular, the microstructure evolution upon sintering or oxidation will be studied by SEM and TEM and correlated to the specific thermo-mechanical performances.
2016
Istituto di Scienza, Tecnologia e Sostenibilità per lo Sviluppo dei Materiali Ceramici - ISSMC (ex ISTEC)
Inglese
40th ICACC-2106 S12: Materials for Extreme Environments: Ultra-high Temperature Ceramics (UHTCs) and Nano-laminated Ternary Carbides and Nitrides (MAX Phases)
January 24- 29, 2016
Daytona Beach, Florida, USA
ZrB2
W-compound
TEM
oxidation
HT strength
4
info:eu-repo/semantics/conferenceObject
none
274
04 Contributo in convegno::04.02 Abstract in Atti di convegno
Silvestroni, Laura; Sciti, Diletta; Lauterbach, Stefan; Kleebe, Hansjoachim
   SUPER LIGHT-WEIGHT THERMAL PROTECTION SYSTEM FOR SPACE APPLICATION
   LIGHT-TPS
   FP7
   607182
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/344942
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