Abstract

Oxide ceramic matrix composites are currently being developed for aerospace applications such as the exhaust, where the parts are subject to moderately high temperatures (≈ 700 C) and oxidation. These composite materials are normally formed by, among other steps, impregnating a ceramic fabric with a slurry of ceramic particles. This impregnation process can be complex, with voids possibly forming in the fabric depending on the process parameters and material properties. Unwanted voids or macroporosity within the fabric can decrease the mechanical properties of the parts. In order to design an efficient manufacturing process able to impregnate the fabric well, numerical simulations may be used to design the process as well as the slurry. In this context, a tool is created for modeling different processes. Thétis, which solves the Navier-Stokes-Darcy-Brinkman equation using finite volumes, is expanded to take into account capillary pressures on the mesoscale. This formulation allows for more representativity than for Darcy’s law (homogeneous preform) simulations while avoiding the prohibitive simulation times of a full discretization for the composing fibers at the representative elementary volume scale. The resulting tool is first used to investigate the effect of varying the slurry parameters on impregnation evolution. Two different processes, open bath impregnation and wet lay-up, are then studied with emphasis on varying their input parameters (e.g. inlet velocity).

Details

Title
Impregnation of Composite Materials: a Numerical Study
Author
Elliott Baché 1   VIAFID ORCID Logo  ; Dupleix-Couderc, Chloé 2 ; Arquis, Eric 3 ; Berdoyes, Isabelle 2 

 Institute of Technology Antoine de Saint Exupéry, Talence Cedex, France; I2M – CNRS, Bordeaux INP, Université de Bordeaux, Arts et Métiers ParisTech, Pessac Cedex, France 
 Institute of Technology Antoine de Saint Exupéry, Talence Cedex, France 
 I2M – CNRS, Bordeaux INP, Université de Bordeaux, Arts et Métiers ParisTech, Pessac Cedex, France 
Pages
1287-1305
Publication year
2018
Publication date
Dec 2018
Publisher
Springer Nature B.V.
ISSN
0929189X
e-ISSN
1573-4897
Source type
Scholarly Journal
Language of publication
English
ProQuest document ID
1978527529
Copyright
Applied Composite Materials is a copyright of Springer, (2017). All Rights Reserved., © 2017. This work is published under http://creativecommons.org/licenses/by/4.0/ (the “License”). Notwithstanding the ProQuest Terms and Conditions, you may use this content in accordance with the terms of the License.