This paper discusses the technology that allows to obtain high-strength products made of structural carbon and alloy steels with hardening processing named the technology of programmed thermo-mechanical processing (PTMP). Targeted material structure research of hot deformation processing makes possible creation of new important technologies of thermo-mechanical processing (TMP). The programmed thermo-mechanical processing objective is to intense growing process of imperfections during thermal processing and plastic deformation of crystalline lattice, which improves structural conditions and mechanical properties of the product. The desired results achieved only by full realignment of the crystal lattice and micro-grain structures, caused by combined mechanical and thermal processing. Therefore, the objective of the programmed thermo-mechanical processing is to combine two technologies: thermal- and mechanical- processing, into a single production process that allows obtaining of rational micro-grain structural conditions of alloy and the appropriate density of crystalline lattice imperfections that increase forges mechanical properties. To achieve fine alloy structure on various levels (sub-, macro- and micro-grain) PTMP technology must provide regulation of deformation intensity and thermal impact to forged material with programmed manufacturing working algorithm. Designed technology aimed to form a crystalline lattice with desired properties, and fixed chemical composition. The combined mechanical and thermal effect, not only leading to a high density of crystalline structure imperfections but also the most importantly provides homogenous recrystallization process throughout the volume of a workpiece, which provides significantly increased mechanical properties of forgings processed by PTMP.
Published in | American Journal of Mechanical and Materials Engineering (Volume 5, Issue 2) |
DOI | 10.11648/j.ajmme.20210502.13 |
Page(s) | 35-38 |
Creative Commons |
This is an Open Access article, distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution and reproduction in any medium or format, provided the original work is properly cited. |
Copyright |
Copyright © The Author(s), 2021. Published by Science Publishing Group |
Thermo, Mechanical, Hardening, Softening, Material, Properties, Quenching, Tempering, Micro-grain, Structure, Crystalline, Lattice, Alloy.
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APA Style
Radkevich Mikhail Mikhailovich. (2021). The Technology of Programmed Thermo-mechanical Processing for Structural Steel. American Journal of Mechanical and Materials Engineering, 5(2), 35-38. https://doi.org/10.11648/j.ajmme.20210502.13
ACS Style
Radkevich Mikhail Mikhailovich. The Technology of Programmed Thermo-mechanical Processing for Structural Steel. Am. J. Mech. Mater. Eng. 2021, 5(2), 35-38. doi: 10.11648/j.ajmme.20210502.13
AMA Style
Radkevich Mikhail Mikhailovich. The Technology of Programmed Thermo-mechanical Processing for Structural Steel. Am J Mech Mater Eng. 2021;5(2):35-38. doi: 10.11648/j.ajmme.20210502.13
@article{10.11648/j.ajmme.20210502.13, author = {Radkevich Mikhail Mikhailovich}, title = {The Technology of Programmed Thermo-mechanical Processing for Structural Steel}, journal = {American Journal of Mechanical and Materials Engineering}, volume = {5}, number = {2}, pages = {35-38}, doi = {10.11648/j.ajmme.20210502.13}, url = {https://doi.org/10.11648/j.ajmme.20210502.13}, eprint = {https://article.sciencepublishinggroup.com/pdf/10.11648.j.ajmme.20210502.13}, abstract = {This paper discusses the technology that allows to obtain high-strength products made of structural carbon and alloy steels with hardening processing named the technology of programmed thermo-mechanical processing (PTMP). Targeted material structure research of hot deformation processing makes possible creation of new important technologies of thermo-mechanical processing (TMP). The programmed thermo-mechanical processing objective is to intense growing process of imperfections during thermal processing and plastic deformation of crystalline lattice, which improves structural conditions and mechanical properties of the product. The desired results achieved only by full realignment of the crystal lattice and micro-grain structures, caused by combined mechanical and thermal processing. Therefore, the objective of the programmed thermo-mechanical processing is to combine two technologies: thermal- and mechanical- processing, into a single production process that allows obtaining of rational micro-grain structural conditions of alloy and the appropriate density of crystalline lattice imperfections that increase forges mechanical properties. To achieve fine alloy structure on various levels (sub-, macro- and micro-grain) PTMP technology must provide regulation of deformation intensity and thermal impact to forged material with programmed manufacturing working algorithm. Designed technology aimed to form a crystalline lattice with desired properties, and fixed chemical composition. The combined mechanical and thermal effect, not only leading to a high density of crystalline structure imperfections but also the most importantly provides homogenous recrystallization process throughout the volume of a workpiece, which provides significantly increased mechanical properties of forgings processed by PTMP.}, year = {2021} }
TY - JOUR T1 - The Technology of Programmed Thermo-mechanical Processing for Structural Steel AU - Radkevich Mikhail Mikhailovich Y1 - 2021/06/28 PY - 2021 N1 - https://doi.org/10.11648/j.ajmme.20210502.13 DO - 10.11648/j.ajmme.20210502.13 T2 - American Journal of Mechanical and Materials Engineering JF - American Journal of Mechanical and Materials Engineering JO - American Journal of Mechanical and Materials Engineering SP - 35 EP - 38 PB - Science Publishing Group SN - 2639-9652 UR - https://doi.org/10.11648/j.ajmme.20210502.13 AB - This paper discusses the technology that allows to obtain high-strength products made of structural carbon and alloy steels with hardening processing named the technology of programmed thermo-mechanical processing (PTMP). Targeted material structure research of hot deformation processing makes possible creation of new important technologies of thermo-mechanical processing (TMP). The programmed thermo-mechanical processing objective is to intense growing process of imperfections during thermal processing and plastic deformation of crystalline lattice, which improves structural conditions and mechanical properties of the product. The desired results achieved only by full realignment of the crystal lattice and micro-grain structures, caused by combined mechanical and thermal processing. Therefore, the objective of the programmed thermo-mechanical processing is to combine two technologies: thermal- and mechanical- processing, into a single production process that allows obtaining of rational micro-grain structural conditions of alloy and the appropriate density of crystalline lattice imperfections that increase forges mechanical properties. To achieve fine alloy structure on various levels (sub-, macro- and micro-grain) PTMP technology must provide regulation of deformation intensity and thermal impact to forged material with programmed manufacturing working algorithm. Designed technology aimed to form a crystalline lattice with desired properties, and fixed chemical composition. The combined mechanical and thermal effect, not only leading to a high density of crystalline structure imperfections but also the most importantly provides homogenous recrystallization process throughout the volume of a workpiece, which provides significantly increased mechanical properties of forgings processed by PTMP. VL - 5 IS - 2 ER -