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Study on Microstructure and Properties of High-Martensite Dual-Phase Steel

Lin Li

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Abstract

The microstructure,tensile properties as well as fracture mechanism of high-martensite content dual-phase steel were studied by OM,SEM and tension test.Results show that with the increase of intercritical quenching temperature in(α+γ) range,the volume fraction of martensite continuously rises,enhanceing the strength of the steel.In addition,the volume fraction of martensite exhibits a certain influence on transformsation from ductile to brittle fracture.Finally,microscopic holes are formed near the fracture surface,the morphology of which is changed with the increase of volume fraction of martensite.

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What this paper is about

The microstructure,tensile properties as well as fracture mechanism of high-martensite content dual-phase steel were studied by OM,SEM and tension test.Results show that with the increase of intercritical quenching temperature in(α+γ) range,the volume fraction of martensite continuously rises,enhanceing the strength of the steel.In addition,the volume fraction of martensite exhibits a certain influence on transformsation from ductile to brittle fracture.Finally,microscopic holes are formed near the fracture surface,the morphology of which is changed with the increase of volume fraction of martensite.

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Available abstract

The microstructure,tensile properties as well as fracture mechanism of high-martensite content dual-phase steel were studied by OM,SEM and tension test.Results show that with the increase of intercritical quenching temperature in(α+γ) range,the volume fraction of martensite continuously rises,enhanceing the strength of the steel.In addition,the volume fraction of martensite exhibits a certain influence on transformsation from ductile to brittle fracture.Finally,microscopic holes are formed near the fracture surface,the morphology of which is changed with the increase of volume fraction of martensite.

Key concepts: Martensite, Materials science, Volume fraction, Microstructure, Dual-phase steel, Quenching (fluorescence), Ultimate tensile strength, Metallurgy

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