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金属学报  2009 

MICROSTRUCTURE REFINEMENT OF EUTECTOID STEEL BASED ON DIVORCED EUTECTOID TRANSFORMATION
基于离异共析转变的共析钢组织细化

Keywords: eutectoid steel,divorced eutectoid transformation,microstructure refinement,austenite,strain
共析钢
,离异共析转变,组织细化,奥氏体,应变量

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Abstract:

For high carbon steels, the (α+θ) microduplex structure consisting of ultrafine ferrite matrix and dispersed cementite particles demonstrates a good balance between strength and ductility as compared with a normal microstructure, i.e., lamellar pearlite in eutectoid steel or lamellar pearlite plus pro--eutectoid cementite in hypereutectoid steel. The divorced eutectoid transformation (DET) has been confirmed to be very effective in ultrahigh carbon steels for the production of the (α+θ) microduplex structure. In ultrahigh carbon steels, DET takes place during slow cooling of a mixing microstructure of austenite plus dispersed undissolved cementite particles formed by the intercritical annealing within the (γ+θ) two phase range. Due to the absence of the (γ+θ) two phase range, DET is difficult to take place in eutectoid steel. In the present work, DET was realized in eutectoid steel by a special thermal--mechanical treatment, which involved two--stage hot deformation in the temperature ranges of A1 to Ar1 and A1 to Ac1 and subsequent slow cooling. The microstructure evolution during such treatment was studied by hot uniaxial compression tests using a Gleeble 1500 hot simulation test machine in combination with SEM and EBSD. The results indicate that during hot deformation in the temperature range of A1 to Ac1 after hot deformation of undercooled austenite in the temperature range of A1 to Ar1 , the re--austenization could be controlled by the applied strain, leading to the formation of the mixing microstructure of austenite plus undissolved cementite particles at certain conditions. During subsequent slow cooling, DET took place, resulting in the formation of an ultrafine (α+θ) microduplex structure with α--Fe grains less than 3 μm and θ--Fe3C particles less than 0.5 μm.

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