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  4. Mechanisms of toughening in silicon nitrides : the roles of crack bridging and microstructure
 
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Mechanisms of toughening in silicon nitrides : the roles of crack bridging and microstructure

Publikationstyp
Journal Article
Date Issued
2011-06-01
Sprache
English
Author(s)
Fünfschilling, Stefan
Fett, Theo  
Hoffmann, Michael J.  
Oberacker, Rainer  
Schwind, Thomas
Wippler, Johannes
Böhlke, Thomas  
Özcoban, Hüseyin  
Keramische Hochleistungswerkstoffe M-9  
Schneider, Gerold A.  
Keramische Hochleistungswerkstoffe M-9  
Becher, Paul F.
Kruzic, Jamie J.  
TORE-URI
https://hdl.handle.net/11420/45946
Journal
Acta materialia  
Volume
59
Issue
10
Start Page
3978
End Page
3989
Citation
Acta Materialia 59 (10): 3978-3989 (2011)
Publisher DOI
10.1016/j.actamat.2011.03.023
Scopus ID
2-s2.0-79955560944
Publisher
Elsevier
Crack-bridging mechanisms can provide substantial increases in toughness coupled with strength in ceramics. Herein, we describe the various bridging mechanisms, their toughening contributions and how they are affected by microstructure in silicon nitride ceramics, which are a classic example where both high strength and toughness are achieved. Crack growth resistance curves (R-curves) for seven different silicon nitrides doped with various metal oxides and with different microstructures were measured, and bridging stress distributions were calculated for each. Based on an analysis of those results combined with results of the relative interfacial toughness of two of the ceramics, a new mechanistic theory for the evolution of the R-curve is proposed. The initial steep rise in toughness is attributed to the formation of elastic bridges that experience no debonding. This mechanism has not previously been recognized in the literature and the high strength of these materials (up to 1 GPa) is here attributed primarily to that mechanism. As those bridges begin to fracture and the mechanism becomes saturated, a change in the R-curve slope is observed and the more traditional mechanisms of partially debonded elastic and fully debonded frictional bridges dominate the continuing rise in toughness. Furthermore, the saturation of each mechanism is associated with a change in slope of the R-curve. The results of this study provide a fundamental insight into how to optimize silicon nitride microstructures for high strength and toughness.
Subjects
Fracture
Grain boundaries
Microstructure
R-curve
Toughness
DDC Class
540: Chemistry
530: Physics
620: Engineering
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