Modeling elastic and thermal properties of 2.5D carbon fiber and carbon/SiC hybrid matrix composites by homogenization method

Advanced carbon fiber hybrid carbon-ceramic matrix composites are realizing their potential in many thermostructural components for aerospace vehicles. This work presents ab-initio predictions of elastic constants and thermal properties for 2.5D carbon fiber reinforced carbon-silicon carbide hybrid...

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Main Authors: Luiz Claudio Pardini, Maria Luisa Gregori
Format: Article
Language:English
Published: Departamento de Ciência e Tecnologia Aeroespacial 2010-08-01
Series:Journal of Aerospace Technology and Management
Subjects:
Online Access:http://www.jatm.com.br/papers/vol2_n2/JATMv2n2_p183-194_Modeling_elastic_and_thermal_properties_of_2-5D_carbon_fiber_and_carbon_SiC_hybrid_matrix_composites_by_homogenization_method.pdf
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spelling doaj-e8052033861b470ea640291129da4d5a2020-11-24T23:56:27ZengDepartamento de Ciência e Tecnologia AeroespacialJournal of Aerospace Technology and Management1984-96482175-91462010-08-0122183194Modeling elastic and thermal properties of 2.5D carbon fiber and carbon/SiC hybrid matrix composites by homogenization methodLuiz Claudio PardiniMaria Luisa GregoriAdvanced carbon fiber hybrid carbon-ceramic matrix composites are realizing their potential in many thermostructural components for aerospace vehicles. This work presents ab-initio predictions of elastic constants and thermal properties for 2.5D carbon fiber reinforced carbon-silicon carbide hybrid matrix composites, by using the homogenization technique. The homogenization technique takes properties of individual components of the composites (fiber and matrix) and characteristics of the geometrical architecture of the preform to perform calculations. Ab-initio modeling of mechanical and thermal properties is very attractive, especially during the material development stage, when larger samples may be prohibitively expensive or impossible to fabricate. Modeling is also useful when bigger samples would be prohibitively expensive or impractical. Thermostructural composites made of 2.5D preforms are easy to manufacture in relation to 3D preforms. Besides, 2.5D preforms are also resistant to thermo cycling and have high resistance to crack propagation in relation to ply stacked composites such as unidirectional (1D) and bidirectional (2D) structures. The calculations were performed by setting an overall carbon fiber volume fraction at 40, 45 and 50 for a 2D stacked composite, and volume fraction in Z-direction of 2, 4 and 6.http://www.jatm.com.br/papers/vol2_n2/JATMv2n2_p183-194_Modeling_elastic_and_thermal_properties_of_2-5D_carbon_fiber_and_carbon_SiC_hybrid_matrix_composites_by_homogenization_method.pdfMechanical propertiesCarbon-SiC compositesElastic propertiesThermal properties.
collection DOAJ
language English
format Article
sources DOAJ
author Luiz Claudio Pardini
Maria Luisa Gregori
spellingShingle Luiz Claudio Pardini
Maria Luisa Gregori
Modeling elastic and thermal properties of 2.5D carbon fiber and carbon/SiC hybrid matrix composites by homogenization method
Journal of Aerospace Technology and Management
Mechanical properties
Carbon-SiC composites
Elastic properties
Thermal properties.
author_facet Luiz Claudio Pardini
Maria Luisa Gregori
author_sort Luiz Claudio Pardini
title Modeling elastic and thermal properties of 2.5D carbon fiber and carbon/SiC hybrid matrix composites by homogenization method
title_short Modeling elastic and thermal properties of 2.5D carbon fiber and carbon/SiC hybrid matrix composites by homogenization method
title_full Modeling elastic and thermal properties of 2.5D carbon fiber and carbon/SiC hybrid matrix composites by homogenization method
title_fullStr Modeling elastic and thermal properties of 2.5D carbon fiber and carbon/SiC hybrid matrix composites by homogenization method
title_full_unstemmed Modeling elastic and thermal properties of 2.5D carbon fiber and carbon/SiC hybrid matrix composites by homogenization method
title_sort modeling elastic and thermal properties of 2.5d carbon fiber and carbon/sic hybrid matrix composites by homogenization method
publisher Departamento de Ciência e Tecnologia Aeroespacial
series Journal of Aerospace Technology and Management
issn 1984-9648
2175-9146
publishDate 2010-08-01
description Advanced carbon fiber hybrid carbon-ceramic matrix composites are realizing their potential in many thermostructural components for aerospace vehicles. This work presents ab-initio predictions of elastic constants and thermal properties for 2.5D carbon fiber reinforced carbon-silicon carbide hybrid matrix composites, by using the homogenization technique. The homogenization technique takes properties of individual components of the composites (fiber and matrix) and characteristics of the geometrical architecture of the preform to perform calculations. Ab-initio modeling of mechanical and thermal properties is very attractive, especially during the material development stage, when larger samples may be prohibitively expensive or impossible to fabricate. Modeling is also useful when bigger samples would be prohibitively expensive or impractical. Thermostructural composites made of 2.5D preforms are easy to manufacture in relation to 3D preforms. Besides, 2.5D preforms are also resistant to thermo cycling and have high resistance to crack propagation in relation to ply stacked composites such as unidirectional (1D) and bidirectional (2D) structures. The calculations were performed by setting an overall carbon fiber volume fraction at 40, 45 and 50 for a 2D stacked composite, and volume fraction in Z-direction of 2, 4 and 6.
topic Mechanical properties
Carbon-SiC composites
Elastic properties
Thermal properties.
url http://www.jatm.com.br/papers/vol2_n2/JATMv2n2_p183-194_Modeling_elastic_and_thermal_properties_of_2-5D_carbon_fiber_and_carbon_SiC_hybrid_matrix_composites_by_homogenization_method.pdf
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AT marialuisagregori modelingelasticandthermalpropertiesof25dcarbonfiberandcarbonsichybridmatrixcompositesbyhomogenizationmethod
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