Method for preparing superfine multiple-phase structure high-carbon steel
A high-carbon steel, ultra-fine technology, used in manufacturing tools, heat treatment equipment, heat treatment process control, etc., can solve the problems of large cumulative strain, complex process, large energy consumption, etc., to simplify the deformation process and achieve good thermal stability. , the effect of reducing the amount of strain
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Embodiment 1
[0025] As shown in Fig. 2, the carbon content of the superfine multi-phase structure high-carbon steel prepared according to the hot deformation process of the present invention is 0.97%, and the content of other alloy elements is within the usual range of ordinary carbon steel. Its A was measured by thermal dilatation method cm 816°C, A 1 is 730°C, when the cooling rate C1 is 30°C / s, Ar cm is 600°C. Heat the high-carbon steel to 1050°C for 10 minutes and then cool it to 650°C at a cooling rate of 30°C / s. -1 When the strain rate is deformed to a strain of 1.6, it is water-cooled, and the cooling rate is 200°C / s to room temperature, and the ultra-fine multi-phase structure shown in Figure 2 is obtained, in which the average grain size of ferrite is about 0.60 microns, and the carburization The average size of the bulk particles is about 0.35 microns. There is obvious network cementite in the equilibrium state (slow cooling after full austenitization) structure of this high ...
Embodiment 2
[0027] As shown in Fig. 4, the carbon content of the ultra-fine multi-phase structure high-carbon steel prepared according to the hot deformation process of the present invention is 0.80%, and the content of other alloy elements is within the usual range of ordinary carbon steel. Measured by thermal expansion method, A 1 is 727°C, when the cooling rate C1 is 20°C / s, Ar 1 It is 598°C. Heat the high-carbon steel to 1000°C for 10 minutes and then cool it to 600°C at a cooling rate of 20°C / s. -1 When the strain rate is deformed to a strain of 1.6, it is water-cooled, and the cooling rate is 200°C / s to room temperature, and the ultra-fine multi-phase structure shown in Figure 4 is obtained, in which the average ferrite grain size is about 0.72 microns, and the carburization The average size of the bulk particles is about 0.10 microns. The equilibrium state (slow cooling after full austenitization) structure of this high carbon steel is lamellar pearlite, but when deformed accord...
Embodiment 3
[0030] The strain rate in embodiment 2 is brought up to 1s -1 , when the strain reaches 1.6, only the pearlite can be partially spheroidized, and the water-cooled structure is shown in Figure 7. Subsequent isothermal treatment was performed on the deformed structure, that is, after 30 minutes of heat preservation at 650° C., an ultra-fine multi-phase structure could be obtained, as shown in FIG. 8 . Among them, the average grain size of ferrite is about 0.65 microns, and the average size of cementite particles is about 0.16 microns.
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