Precursor selection and its role in the mechanical properties of porous SiC derived from wood

The compressive strength, elastic modulus, and fracture toughness of porous SiC derived from wood precursors were measured. These mechanical properties and the amount of unreacted carbon were found to be a function of porosity and pore size distribution, which are dependent on the precursor wood. Th...

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Published inMaterials science & engineering. A, Structural materials : properties, microstructure and processing Vol. 428; no. 1; pp. 225 - 232
Main Authors Kaul, V.S., Faber, K.T., Sepúlveda, R., de Arellano López, A.R., Martínez-Fernández, J.
Format Journal Article
LanguageEnglish
Published Amsterdam Elsevier B.V 25.07.2006
Elsevier
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Abstract The compressive strength, elastic modulus, and fracture toughness of porous SiC derived from wood precursors were measured. These mechanical properties and the amount of unreacted carbon were found to be a function of porosity and pore size distribution, which are dependent on the precursor wood. The presence of residual carbon was found to have a deleterious effect on compressive strength and elastic modulus. The amount of residual carbon was quantified and found to be higher in materials derived from precursors where the pores are non-uniformly distributed and areas with a higher concentration of small pores. The pore anisotropy and density gradients in wood led to a preferred crack path along growth rings in directions parallel to the wood growth direction. These findings can be used to select the proper precursor wood to obtain the desired properties in the final porous SiC.
AbstractList The compressive strength, elastic modulus, and fracture toughness of porous SiC derived from wood precursors were measured. These mechanical properties and the amount of unreacted carbon were found to be a function of porosity and pore size distribution, which are dependent on the precursor wood. The presence of residual carbon was found to have a deleterious effect on compressive strength and elastic modulus. The amount of residual carbon was quantified and found to be higher in materials derived from precursors where the pores are non-uniformly distributed and areas with a higher concentration of small pores. The pore anisotropy and density gradients in wood led to a preferred crack path along growth rings in directions parallel to the wood growth direction. These findings can be used to select the proper precursor wood to obtain the desired properties in the final porous SiC.
Author Kaul, V.S.
Faber, K.T.
Sepúlveda, R.
Martínez-Fernández, J.
de Arellano López, A.R.
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  organization: Departamento de Física de la Materia Condensada, Universidad de Sevilla, CP 41012, Seville, Spain
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Issue 1
Keywords Compression
Silicon carbide
Elastic properties
Porous materials
Fracture toughness
Elastic modulus
Elasticity
Mechanical properties
Silicon carbides
Fabrication property relation
Density
Compression strength
Crack propagation
Pore size
Porosity
Bulk modulus
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Snippet The compressive strength, elastic modulus, and fracture toughness of porous SiC derived from wood precursors were measured. These mechanical properties and the...
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SubjectTerms Compression
Condensed matter: structure, mechanical and thermal properties
Elastic properties
Elasticity, elastic constants
Exact sciences and technology
Fracture toughness
Mechanical and acoustical properties of condensed matter
Mechanical properties of solids
Physics
Porous materials
Silicon carbide
Title Precursor selection and its role in the mechanical properties of porous SiC derived from wood
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