Microstructure Evolution and Mechanical Properties of X6CrNiMoVNb11-2 Stainless Steel after Heat Treatment

X6CrNiMoVNb11-2 supermartensitic stainless steel, a special type of stainless steel, is commonly used in the production of gas turbine discs in liquid rocket engines and compressor disks in aero engines. By optimizing the parameters of the heat-treatment process, its mechanical properties are specia...

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Main Authors: Jia Fu, Chaoqi Xia
Format: Article
Language:English
Published: MDPI AG 2021-09-01
Series:Materials
Subjects:
Online Access:https://www.mdpi.com/1996-1944/14/18/5243
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spelling doaj-261913494a674a63b1ad4fcb633310452021-09-26T00:36:27ZengMDPI AGMaterials1996-19442021-09-01145243524310.3390/ma14185243Microstructure Evolution and Mechanical Properties of X6CrNiMoVNb11-2 Stainless Steel after Heat TreatmentJia Fu0Chaoqi Xia1School of Material of Science and Engineering, Xian Shiyou University, Xi’an 710065, ChinaSchool of Material of Science and Engineering, Xian Shiyou University, Xi’an 710065, ChinaX6CrNiMoVNb11-2 supermartensitic stainless steel, a special type of stainless steel, is commonly used in the production of gas turbine discs in liquid rocket engines and compressor disks in aero engines. By optimizing the parameters of the heat-treatment process, its mechanical properties are specially adjusted to meet the performance requirement in that particular practical application during the advanced composite casting-rolling forming process. The relationship between the microstructure and mechanical properties after quenching from 1040 °C and tempering at 300–670 °C was studied, where the yield strength, tensile strength, elongation and impact toughness under different cooling conditions are obtained by means of mechanical property tests. A certain amount of high-density nanophase precipitation is found in the martensite phase transformation through the heat treatment involved in the quenching and tempering processes, where M<sub>23</sub>C<sub>6</sub> carbides are dispersed in lamellar martensite, with the close-packed Ni<sub>3</sub>Mo and Ni<sub>3</sub>Nb phases of high-density co-lattice nanocrystalline precipitation created during the tempering process. The ideal process parameters are to quench at 1040 °C in an oil-cooling medium and to temper at 650 °C by air-cooling; final hardness is averaged about 313 HV, with an elongation of 17.9%, the cross-area reduction ratio is 52%, and the impact toughness is about 65 J, respectively. Moreover, the tempered hardness equation, considering various tempering temperatures, is precisely fitted. This investigation helps us to better understand the strengthening mechanism and performance controlling scheme of martensite stainless steel during the cast-rolling forming process in future applications.https://www.mdpi.com/1996-1944/14/18/5243X6CrNiMoVNb11-2 steelquenching and tempering processmicrostructurechromium carbide precipitationtempered hardness equationmechanical properties
collection DOAJ
language English
format Article
sources DOAJ
author Jia Fu
Chaoqi Xia
spellingShingle Jia Fu
Chaoqi Xia
Microstructure Evolution and Mechanical Properties of X6CrNiMoVNb11-2 Stainless Steel after Heat Treatment
Materials
X6CrNiMoVNb11-2 steel
quenching and tempering process
microstructure
chromium carbide precipitation
tempered hardness equation
mechanical properties
author_facet Jia Fu
Chaoqi Xia
author_sort Jia Fu
title Microstructure Evolution and Mechanical Properties of X6CrNiMoVNb11-2 Stainless Steel after Heat Treatment
title_short Microstructure Evolution and Mechanical Properties of X6CrNiMoVNb11-2 Stainless Steel after Heat Treatment
title_full Microstructure Evolution and Mechanical Properties of X6CrNiMoVNb11-2 Stainless Steel after Heat Treatment
title_fullStr Microstructure Evolution and Mechanical Properties of X6CrNiMoVNb11-2 Stainless Steel after Heat Treatment
title_full_unstemmed Microstructure Evolution and Mechanical Properties of X6CrNiMoVNb11-2 Stainless Steel after Heat Treatment
title_sort microstructure evolution and mechanical properties of x6crnimovnb11-2 stainless steel after heat treatment
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2021-09-01
description X6CrNiMoVNb11-2 supermartensitic stainless steel, a special type of stainless steel, is commonly used in the production of gas turbine discs in liquid rocket engines and compressor disks in aero engines. By optimizing the parameters of the heat-treatment process, its mechanical properties are specially adjusted to meet the performance requirement in that particular practical application during the advanced composite casting-rolling forming process. The relationship between the microstructure and mechanical properties after quenching from 1040 °C and tempering at 300–670 °C was studied, where the yield strength, tensile strength, elongation and impact toughness under different cooling conditions are obtained by means of mechanical property tests. A certain amount of high-density nanophase precipitation is found in the martensite phase transformation through the heat treatment involved in the quenching and tempering processes, where M<sub>23</sub>C<sub>6</sub> carbides are dispersed in lamellar martensite, with the close-packed Ni<sub>3</sub>Mo and Ni<sub>3</sub>Nb phases of high-density co-lattice nanocrystalline precipitation created during the tempering process. The ideal process parameters are to quench at 1040 °C in an oil-cooling medium and to temper at 650 °C by air-cooling; final hardness is averaged about 313 HV, with an elongation of 17.9%, the cross-area reduction ratio is 52%, and the impact toughness is about 65 J, respectively. Moreover, the tempered hardness equation, considering various tempering temperatures, is precisely fitted. This investigation helps us to better understand the strengthening mechanism and performance controlling scheme of martensite stainless steel during the cast-rolling forming process in future applications.
topic X6CrNiMoVNb11-2 steel
quenching and tempering process
microstructure
chromium carbide precipitation
tempered hardness equation
mechanical properties
url https://www.mdpi.com/1996-1944/14/18/5243
work_keys_str_mv AT jiafu microstructureevolutionandmechanicalpropertiesofx6crnimovnb112stainlesssteelafterheattreatment
AT chaoqixia microstructureevolutionandmechanicalpropertiesofx6crnimovnb112stainlesssteelafterheattreatment
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