METHOD OF STEEL PROCESSING COMBINING THERMAL AND MECHANICAL SURFACE TREATMENT TO CONTROL METALLURGICAL PHASE AND MECHANICAL RESPONSE
20190300977 ยท 2019-10-03
Inventors
Cpc classification
C21D1/18
CHEMISTRY; METALLURGY
International classification
Abstract
A method of steel processing combining thermal and mechanical processing of steels in controlled sequences. The method of the present invention combines thermal and mechanical processing in controlled sequences to achieve material property results that are superior to existing methods. The method allows for manipulation of steel processing variables, which promotes further elimination of retained austenite, additional residual compression, reduced surface tension, increased material strength, increased compressive stresses at the surface, and significantly improved bending fatigue and wear resistance. By varying the sequence of mechanical processing of the steel, desired residual compressive stress responses and hardness levels may be achieved. In addition, this processing can reduce embrittlement caused by late stage phase transformation.
Claims
1. A method of treating steel, comprising: heating the steel; applying a quench hardening to the steel; applying a mechanical treatment to the steel after the quench hardening; and applying one or more cycles of a deep freeze and a tempering sequence to the steel.
2. The method of claim 1, wherein the mechanical treatments are selected from the group consisting of shot peening, laser peening, low plasticity burnishing, cavitation peening, and vibratory processing.
3. The method of claim 1, wherein the steel comprises: a non-carburized steel.
4. The method of claim 1, wherein the steel comprises: carburized, a nitrocarburized, a carbonitrided, a nitrided, a precipitation hardened, an induction hardened, and a flame hardened.
5. The method of claim 1, wherein the mechanical treatment is applied immediately following the quench hardening step.
6. A method of treating steel, comprising: heating the steel; applying a quench hardening to the steel to thermally destabilize retained austenite in the steel; applying a first cycle of a deep freeze and a tempering sequence to the steel; applying a mechanical treatment to the steel; and applying one or more cycles of a subsequent deep freeze and a subsequent tempering sequence to the steel.
7. The method of claim 6, wherein the mechanical treatment is selected from the group consisting of shot peening, laser peening, low plasticity burnishing, cavitation peening, and vibratory processing.
8. The method of claim 6, wherein the steel comprises: a non-carburized steel.
9. The method of claim 6, wherein the steel is selected from the group consisting of a carburized, a nitrocarburized, a carbonitrided, a nitrided, a precipitation hardened, an induction hardened, or a flame hardened steel.
10. The method of claim 6, wherein the mechanical treatment is applied immediately following immediately after the first cycle.
11. A method of treating steel, comprising: heating the steel; applying a quench hardening to the steel; applying a first cycle of a deep freeze and a tempering sequence to the steel; applying an intermediate mechanical treatment to the steel after the first cycle; applying a subsequent cycle of the deep freeze and the tempering sequence to the steel, after the intermediate mechanical treatment; and applying a second mechanical treatment sequence to the steel.
12. The method of claim 11, wherein the mechanical surface treatment is selected from the group consisting of shot peening, laser peening, low plasticity burnishing, cavitation peening, and vibratory processing.
13. The method of claim 11, wherein the steel comprises: a non-carburized steel.
14. The method of claim 11, wherein the steel is selected from the group consisting of a carburized, a nitrocarburized, a carbonitrided, a nitrided, a precipitation hardened, an induction hardened, or a flame hardened steel.
15. The method of claim 11, wherein the mechanical surface treatment is applied immediately following each subsequent cycle of the deep freeze and the tempering sequence.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
[0020] The following detailed description is of the best currently contemplated modes of carrying out exemplary embodiments of the invention. The description is not to be taken in a limiting sense, but is made merely for the purpose of illustrating the general principles of the invention.
[0021] Broadly, embodiments of the present invention provide for improved processing techniques for steel, including carburized, a nitrocarburized, a carbonitrided, a nitrided, a precipitation hardened, an induction hardened, or a flame hardened, among other steels. The present invention provides a means for application of combined thermal and mechanical processing of heat treated steel in specific sequences, so as to affect one or more of the following beneficial responses to the alloy steel (including but not limited to): 1) Controlled residual compressive stress depth; 2) Reduction or elimination of retained austenite in the heat treated structure; 3) Precipitation and ordering of alloy carbides prior to and during tempering and the mechanical processing; 4) Enhancement of residual compressive stresses in the softened condition so as to reduce cracking potential during part service loading; 5) Ability to thermally refine (temper) the hardened microstructure obtained by the mechanical treatment; and 6) Maintain a beneficial residual compressive stress state through the part cross section.
[0022] The method of the present invention combines thermal and mechanical processing in controlled sequences to achieve material property results that are superior to existing methods. The method allows for manipulation of steel processing variables, which promote further elimination of retained austenite, additional residual compression, reduced surface tension, increased material strength, increased compressive stresses at the surface, and improved bending fatigue and wear resistance.
[0023] The drawings of
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[0025] The best currently contemplated modes of the exemplary embodiments of the invention include but are not limited to three possible variations in thermal / mechanical sequencing.
[0026] In a first process of the invention, shown in
[0027] The second embodiment of the invention is the processing sequence referenced in
[0028] The initial deep freeze 24 and temper 25 cycle thermally destabilizes the retained austenite, which is then more readily transformed to the highly twinned, acicular plate martensite. This martensite is then tempered out during the remaining thermal sequencing 24, 25. Subsequent deep freezing provides additional destabilizing potential to the remaining retained austenite. The subsequent deep freeze 24/tempering 25 steps maintain residual compression, but enhance hardness.
[0029] In a third embodiment of the invention, shown in
[0030] As shown, each of the elements of the steel processing method can be arranged in specific sequences to have specific functional results in the final steel product. The sequencing is key to achieving metallurgical response not currently achievable by conventional means.
[0031] In Sequence A (
[0032] In Sequence B (
[0033] In Sequence C (
[0034] It should be understood, of course, that the foregoing relates to exemplary embodiments of the invention and that modifications may be made without departing from the spirit and scope of the invention as set forth in the following claims.