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  4. Finite element simulation for Si3N4 heating and sintering
 
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2024
Journal Article
Title

Finite element simulation for Si3N4 heating and sintering

Abstract
The fabrication of large silicon nitride ceramic components is intricate and demands expertise in gas pressure liquid phase sintering (GPS-LPS). The forefront technology of finite element (FEM) thermo-mechanical modeling plays a key role in sizing aerospace components that necessitate high precision and mechanical strength. A comprehensive sintering simulation should encompass not only densification and grain growth models but also consider the heating environment, accounting for gas convection, conduction, and surface-to-surface radiation. Moreover, silicon nitride sintering simulation addresses the intricate behavior, including the swelling phenomenon during the transitions from intermediate to final stage sintering. The challenge of significant slumping in hollow parts, resulting in costly rejection, is a primary concern for industrial companies when dealing with low-viscosity liquid phase sintering. Validation of the model is achieved through the computation of simple cylindrical cases, while a meticulous comparison between simulations and sintering experiments on complex hollow bodies and deflection bars facilitates precise adjustment of the shear viscosity theoretical parameter derived from the Skorohod-Olevsky continuum theory of sintering. The findings from these simple cases guide the simulation of a complex geometry representative of typical aerospace components, determining the ideal sintering configuration to mitigate slumping issues.
Author(s)
Grippi, Thomas
Thales Alenia Space
Béhar-Lafenêtre, Stéphanie
Thales Alenia Space
Friedrich, Holger  
Fraunhofer-Institut für Silicatforschung ISC  
Haas, Daniel
QSIL Ingenieurkeramic Rauenstein
Schenderlein, Uwe
QSIL Ingenieurkeramic Rauenstein
Marinel, Sylvain
CRISMAT - Laboratoire de Crystallographie et Sciences des Matériaux
Manière, Charles
CRISMAT - Laboratoire de Crystallographie et Sciences des Matériaux
Journal
Journal of the European Ceramic Society  
Open Access
DOI
10.1016/j.jeurceramsoc.2024.116703
Additional link
Full text
Language
English
Fraunhofer-Institut für Silicatforschung ISC  
Keyword(s)
  • Densification

  • Finite Element Method

  • Gas pressure sintering

  • Si3N4

  • Silicon nitride

  • Sintering modeling

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