A Lamination Model for Pressure-Assisted Sintering of Multilayered Porous Structures

This work describes a lamination model for pressure-assisted sintering of thin, multilayered, and porous structures based on the linear viscous constitutive theory of sintering and the classical laminated plate theory of continuum mechanics. A constant out-of-plane normal stress is assumed in the co...

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Main Authors: Zhi-He Jin, Corson L. Cramer
Format: Article
Language:English
Published: MDPI AG 2021-02-01
Series:Journal of Composites Science
Subjects:
Online Access:https://www.mdpi.com/2504-477X/5/2/53
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spelling doaj-9245002108f34477ae06ac1119f8f9602021-02-10T00:05:22ZengMDPI AGJournal of Composites Science2504-477X2021-02-015535310.3390/jcs5020053A Lamination Model for Pressure-Assisted Sintering of Multilayered Porous StructuresZhi-He Jin0Corson L. Cramer1Department of Mechanical Engineering, University of Maine, Orono, ME 04469, USAManufacturing Science Division, Oak Ridge National Laboratory, Oak Ridge, TN 37830, USAThis work describes a lamination model for pressure-assisted sintering of thin, multilayered, and porous structures based on the linear viscous constitutive theory of sintering and the classical laminated plate theory of continuum mechanics. A constant out-of-plane normal stress is assumed in the constitutive relation. The lamination relations between the force/moment resultants and the strain/curvature rates are presented. Numerical simulations were performed for a symmetric tri-layer laminate consisting of a 10% gadolinia doped ceria (Ce<sub>0.9</sub>Gd<sub>0.1</sub>O<sub>1.95-δ</sub>) composite structure, where porous layers were adhered to the top and bottom of a denser layer under uniaxially-applied pressures and the sinter forging conditions. The numerical results show that, compared with free sintering, the applied pressure can significantly reduce the sintering time required to achieve given layer thicknesses and porosities. Unlike free sintering, which results in a monotonic decrease of the laminate in-plane dimension, pressure-assisted sintering may produce an in-plane dimension increase or decrease, depending on the applied pressure and sintering time. Finally, the individual layers in the laminate exhibit different stress characteristics under pressure-assisted sintering.https://www.mdpi.com/2504-477X/5/2/53pressure-assisted sinteringsinter forgingmultilayered structureslamination theory
collection DOAJ
language English
format Article
sources DOAJ
author Zhi-He Jin
Corson L. Cramer
spellingShingle Zhi-He Jin
Corson L. Cramer
A Lamination Model for Pressure-Assisted Sintering of Multilayered Porous Structures
Journal of Composites Science
pressure-assisted sintering
sinter forging
multilayered structures
lamination theory
author_facet Zhi-He Jin
Corson L. Cramer
author_sort Zhi-He Jin
title A Lamination Model for Pressure-Assisted Sintering of Multilayered Porous Structures
title_short A Lamination Model for Pressure-Assisted Sintering of Multilayered Porous Structures
title_full A Lamination Model for Pressure-Assisted Sintering of Multilayered Porous Structures
title_fullStr A Lamination Model for Pressure-Assisted Sintering of Multilayered Porous Structures
title_full_unstemmed A Lamination Model for Pressure-Assisted Sintering of Multilayered Porous Structures
title_sort lamination model for pressure-assisted sintering of multilayered porous structures
publisher MDPI AG
series Journal of Composites Science
issn 2504-477X
publishDate 2021-02-01
description This work describes a lamination model for pressure-assisted sintering of thin, multilayered, and porous structures based on the linear viscous constitutive theory of sintering and the classical laminated plate theory of continuum mechanics. A constant out-of-plane normal stress is assumed in the constitutive relation. The lamination relations between the force/moment resultants and the strain/curvature rates are presented. Numerical simulations were performed for a symmetric tri-layer laminate consisting of a 10% gadolinia doped ceria (Ce<sub>0.9</sub>Gd<sub>0.1</sub>O<sub>1.95-δ</sub>) composite structure, where porous layers were adhered to the top and bottom of a denser layer under uniaxially-applied pressures and the sinter forging conditions. The numerical results show that, compared with free sintering, the applied pressure can significantly reduce the sintering time required to achieve given layer thicknesses and porosities. Unlike free sintering, which results in a monotonic decrease of the laminate in-plane dimension, pressure-assisted sintering may produce an in-plane dimension increase or decrease, depending on the applied pressure and sintering time. Finally, the individual layers in the laminate exhibit different stress characteristics under pressure-assisted sintering.
topic pressure-assisted sintering
sinter forging
multilayered structures
lamination theory
url https://www.mdpi.com/2504-477X/5/2/53
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AT corsonlcramer alaminationmodelforpressureassistedsinteringofmultilayeredporousstructures
AT zhihejin laminationmodelforpressureassistedsinteringofmultilayeredporousstructures
AT corsonlcramer laminationmodelforpressureassistedsinteringofmultilayeredporousstructures
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