Method for simultaneously improving low-carbon low-alloy steel strength and plasticity
A low-alloy steel, strength technology, applied in the field of metal materials, can solve the problems of steel strength reduction, plasticity reduction, inability to achieve strong plastic matching and other problems
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Embodiment 1
[0040] A method for simultaneously improving the strength and plasticity of low-carbon low-alloy steel, the steps of the method are as follows:
[0041] (1) The low-carbon low-alloy steel piece corresponding to No. 1 in Table 1 is soaked at 820°C for 0.5h for complete austenitization treatment, and then quenched in water to room temperature to obtain the quenched low-carbon low-alloy steel ;
[0042] (2) Tempering the quenched low-carbon low-alloy steel at 550° C. for 0.5 h, and cooling to room temperature in air after the tempering treatment is completed, to obtain the tempered low-carbon low-alloy steel;
[0043](3) Take a cylindrical sample with a size of φ12×18mm on the tempered low-carbon low-alloy steel, and use a separate Hopkinson pressure bar to perform dynamic large deformation treatment on the sample, with a strain of 0.4 , with a strain rate of 10 3 the s -1 , to obtain low-carbon low-alloy steel after dynamic large deformation;
[0044] (4) The low-carbon low-...
Embodiment 2
[0048] A method for simultaneously improving the strength and plasticity of low-carbon low-alloy steel, the steps of the method are as follows:
[0049] (1) The low-carbon low-alloy steel piece corresponding to No. 2 in Table 1 was subjected to a complete austenitization treatment at 880° C. for soaking and heat preservation for 1 hour, and then quenched in water to room temperature to obtain a quenched low-carbon low-alloy steel;
[0050] (2) Tempering the quenched low-carbon low-alloy steel at 450° C. for 5 hours, and cooling to room temperature in air after the tempering treatment is completed, to obtain the tempered low-carbon low-alloy steel;
[0051] (3) Take a cylindrical sample with a size of φ12×18mm on the tempered low-carbon low-alloy steel, and use the Hopkinson compression bar to carry out dynamic large deformation treatment on the sample. The strain is 0.8, and the strain Rate 10 3 the s -1 , to obtain low-carbon low-alloy steel after dynamic large deformation;...
Embodiment 3
[0056] A method for simultaneously improving the strength and plasticity of low-carbon low-alloy steel, the steps of the method are as follows:
[0057] (1) The low-carbon low-alloy steel piece corresponding to No. 3 in Table 1 was subjected to a complete austenitization treatment at 920° C. for soaking and heat preservation for 2 hours, and then quenched in water to room temperature to obtain a quenched low-carbon low-alloy steel;
[0058] (2) Tempering the quenched low-carbon low-alloy steel at 350° C. for 3 hours, and cooling to room temperature in air after the tempering treatment is completed, to obtain the tempered low-carbon low-alloy steel;
[0059] (3) Take a cylindrical sample with a size of φ12×18mm on the tempered low-carbon low-alloy steel, and use the Hopkinson compression bar to carry out dynamic large deformation treatment on the sample. The strain is 1.2, and the strain Rate 10 3 the s -1 , to obtain low-carbon low-alloy steel after dynamic large deformation...
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