The stress–strain behavior of WC-Co hardmetals

The calculating algorithm for construction of the stress–strain curves of WC-Co hardmetals in simple tension and compression has been described. The algorithm is based on the mathematical means of mechanics of composite materials and in situ deformation properties of constituents. The mean field app...

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Published inComputational materials science Vol. 49; no. 3; pp. 593 - 597
Main Authors Golovchan, V.T., Litoshenko, N.V.
Format Journal Article
LanguageEnglish
Published Amsterdam Elsevier B.V 01.09.2010
Elsevier
Subjects
Online AccessGet full text
ISSN0927-0256
1879-0801
DOI10.1016/j.commatsci.2010.05.055

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Abstract The calculating algorithm for construction of the stress–strain curves of WC-Co hardmetals in simple tension and compression has been described. The algorithm is based on the mathematical means of mechanics of composite materials and in situ deformation properties of constituents. The mean field approach has been applied. The stress–strain behavior depends on such microstructural parameters as cobalt volume fraction, mean carbide grain size, and contiguity of carbide phase. The technological thermal residual microstresses have been taken into account. The wide comparison of theoretical and available experimental results has been done. It has been shown, that the given calculating algorithm has the good predictive capability. The analytical expressions of tensile and compressive strength of WC-Co hardmetals have been given.
AbstractList The calculating algorithm for construction of the stress–strain curves of WC-Co hardmetals in simple tension and compression has been described. The algorithm is based on the mathematical means of mechanics of composite materials and in situ deformation properties of constituents. The mean field approach has been applied. The stress–strain behavior depends on such microstructural parameters as cobalt volume fraction, mean carbide grain size, and contiguity of carbide phase. The technological thermal residual microstresses have been taken into account. The wide comparison of theoretical and available experimental results has been done. It has been shown, that the given calculating algorithm has the good predictive capability. The analytical expressions of tensile and compressive strength of WC-Co hardmetals have been given.
Author Litoshenko, N.V.
Golovchan, V.T.
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  email: tverdosplav@ism.kiev.ua
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Cites_doi 10.1007/BF02900264
10.1016/0261-3069(92)90234-9
10.1007/BF02510897
10.1111/j.1151-2916.1989.tb06169.x
10.1016/j.ijrmhm.2006.08.002
10.1016/0927-0256(93)90013-D
10.1016/S0263-4368(03)00047-7
10.1179/pom.1977.20.2.63
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10.1023/A:1024605520187
10.1016/S0263-4368(01)00041-5
10.1179/095066079790136363
10.1007/BF02511509
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Issue 3
Keywords WC-Co hardmetals
Calculating algorithm
In situ deformation properties of constituents
Compressive strength
Tensile strength
Stress–strain curves
Grain size
Tungsten carbide
Mean field approximation
Stress-strain curves
Stress strain relation
Cobalt
Compression test
Tension test
Composite material
Hard material
Analytical method
Computing method
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Snippet The calculating algorithm for construction of the stress–strain curves of WC-Co hardmetals in simple tension and compression has been described. The algorithm...
The calculating algorithm for construction of the stress-strain curves of WC-Co hardmetals in simple tension and compression has been described. The algorithm...
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StartPage 593
SubjectTerms Algorithms
Applied sciences
Calculating algorithm
Carbides
Cemented carbides
Cobalt
Compressive strength
Elasticity. Plasticity
Exact sciences and technology
In situ deformation properties of constituents
Mathematical analysis
Mathematical models
Mechanical properties and methods of testing. Rheology. Fracture mechanics. Tribology
Metals. Metallurgy
Stress strain curves
Stress-strain relationships
Tensile strength
Tungsten carbide
WC-Co hardmetals
Title The stress–strain behavior of WC-Co hardmetals
URI https://dx.doi.org/10.1016/j.commatsci.2010.05.055
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