High performance Ultra-High-Temperature Composites, based on zirconium and hafnium borides, are characterized by relevant and unique thermo-physical and thermo-mechanical properties, suitable for applications in aerospace hot structures and in many industrial sectors where extreme conditions are present. In spite of the difficult sinterability of Zr- and Hf-diborides, recent results highlight that these ceramics can be produced with full density, fine microstructure and controlled mechanical and thermal properties, through different procedures: pressureless sintering and hot pressing with proper sintering aids, reactive synthesis/sintering procedures starting from precursors, field assisted technologies like spark plasma sintering (SPS). A proper selection of reinforcing phase (SiC, BC, TaSi, MoSi, etc) leads to improvements in mechanical properties and oxidation resistance of ZrB and HfB ceramic composites. Strength as high as ~800 MPa at room temperature and at 1,500°C in air can be obtained for HfB-based composites, after an accurate tailoring of compositions and processing parameters. SPS proved to be a very rapid fabrication process leading to refined microstructure and improved properties of ultra-refractory diborides-based composites. © 2010 Springer Science+Business Media B.V.

Processing and properties of ultra-refractory composites based on Zr- and Hf-borides: State of the art and perspectives

Bellosi A;Medri V;Monteverde F;Sciti D;Silvestroni L
2011

Abstract

High performance Ultra-High-Temperature Composites, based on zirconium and hafnium borides, are characterized by relevant and unique thermo-physical and thermo-mechanical properties, suitable for applications in aerospace hot structures and in many industrial sectors where extreme conditions are present. In spite of the difficult sinterability of Zr- and Hf-diborides, recent results highlight that these ceramics can be produced with full density, fine microstructure and controlled mechanical and thermal properties, through different procedures: pressureless sintering and hot pressing with proper sintering aids, reactive synthesis/sintering procedures starting from precursors, field assisted technologies like spark plasma sintering (SPS). A proper selection of reinforcing phase (SiC, BC, TaSi, MoSi, etc) leads to improvements in mechanical properties and oxidation resistance of ZrB and HfB ceramic composites. Strength as high as ~800 MPa at room temperature and at 1,500°C in air can be obtained for HfB-based composites, after an accurate tailoring of compositions and processing parameters. SPS proved to be a very rapid fabrication process leading to refined microstructure and improved properties of ultra-refractory diborides-based composites. © 2010 Springer Science+Business Media B.V.
2011
Istituto di Scienza, Tecnologia e Sostenibilità per lo Sviluppo dei Materiali Ceramici - ISSMC (ex ISTEC)
Inglese
Sensors, Ultra High Temperature Ceramics, Thermoelectrics, Armor
147
160
9789048198177
http://www.scopus.com/record/display.url?eid=2-s2.0-77958027226&origin=inward
Sì, ma tipo non specificato
9/2010
Orlando (FL)
composites
hafnium diboride
mechanical properties
microstructure
sintering
zirconium diboride
6
none
Bellosi, A.; Guicciardi, S.; Medri, V.; Monteverde, F.; Sciti, D.; Silvestroni, L.;
273
info:eu-repo/semantics/conferenceObject
04 Contributo in convegno::04.01 Contributo in Atti di convegno
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/396432
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