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Influence of typical elements and heat treatment parameters on hardenability in steel:a review
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作者 Bin-bin Wang De-xin Zhu +7 位作者 Chao-lei Zhang Xiao-ye Zhou Hong-hui wu Shui-ze Wang gui-lin wu Jun-heng Gao Hai-tao Zhao Xin-ping Mao 《Journal of Iron and Steel Research International》 2025年第6期1455-1467,共13页
The hardenability of steel is crucial for its durability and performance in engineering applications,significantly influencing mechanical properties such as hardness,strength,and wear resistance.As the engineering fie... The hardenability of steel is crucial for its durability and performance in engineering applications,significantly influencing mechanical properties such as hardness,strength,and wear resistance.As the engineering field continuously demands higher-performance steel materials,a deep understanding of the key influencing factors on hardenability is crucial for developing quality steel that meets stringent application requirements.The effects of some specific elements,including carbon(C),vanadium(V),molybdenum(Mo),and boron(B),as well as heat treatment process parameters such as austenitizing temperature,austenitizing holding time,and cooling rate,were examined.It aims to elucidate the interactions among these factors and their influence on steel hardenability.For each influencing factor,the heat treatment procedure,characteristic microstructure resulting from it,and corresponding Jominy end quench curves were discussed.Furthermore,based on the continuous development of big data technology in the field of materials,the use of machine learning to predict the hardenability of steel and guide the design of steel material was also introduced. 展开更多
关键词 HARDENABILITY Jominy end quench test Heat treatment Steel hardness AUSTENITE MARTENSITE
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Effect of initial microstructure on microstructure evolution and mechanical properties of 0.12C martensitic steels during quenching and tempering
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作者 Ya-ru Wang Zi-yong Hou +6 位作者 He Yang Jun Zhao Zhi-yuan Chang Fan-mao Meng Ling Zhang gui-lin wu Xiao-xu Huang 《Journal of Iron and Steel Research International》 2025年第1期260-269,共10页
The microstructure evolution and mechanical properties of a Fe-0.12C-0.2Si-1.6Mn-0.3Cr-0.0025B(wt.%)steel with different initial microstructures,i.e.,hot rolled(HR)and cold rolled-annealed(CRA),were studied through op... The microstructure evolution and mechanical properties of a Fe-0.12C-0.2Si-1.6Mn-0.3Cr-0.0025B(wt.%)steel with different initial microstructures,i.e.,hot rolled(HR)and cold rolled-annealed(CRA),were studied through optical microscopy,scanning electron microscopy,electron channeling contrast imaging,microhardness and room temperature uniaxial tensile tests.After water quenching from 930℃ to room temperature,a fully martensitic microstructure was obtained in both as-quenched HR and CRA specimens,which shows a microhardness of 480±5 HV,and no significant difference in microstructure and microhardness was observed.Tensile test results show that the product of tensile strength and total elongation(UTS×TE)of the as-quenched HR specimen,i.e.,24.1 GPa%,is higher than that of the as-quenched CRA specimen,i.e.,18.9 GPa%.While,after being tempered at 300℃,the martensitic microstructures and mechanical properties of the two as-quenched specimens change significantly due to the synergy role of the matrix phase softening and the precipitation strengthening.Concerning the maximum UTS×TE,it is 18.9 GPa%obtained in the as-quenched CRA one,while that is 24.4 GPa%obtained in the HR specimen after tempered at 300℃ for 5 min. 展开更多
关键词 Initial microstructure Lath martensite QUENCHING TEMPERING Mechanical property
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Local chemical ordering coordinated thermal stability of nanograined high-entropy alloys 被引量:9
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作者 Hong-Hui wu Lin-Shuo Dong +5 位作者 Shui-Ze Wang gui-lin wu Jun-Heng Gao Xu-Sheng Yang Xiao-Ye Zhou Xin-Ping Mao 《Rare Metals》 SCIE EI CAS CSCD 2023年第5期1645-1655,共11页
Nanograined(NG)materials often suffer from low thermal stability owing to the high volume fraction of grain boundaries(GBs).Herein,we investigate the possibility of utilizing local chemical ordering(LCO)for improving ... Nanograined(NG)materials often suffer from low thermal stability owing to the high volume fraction of grain boundaries(GBs).Herein,we investigate the possibility of utilizing local chemical ordering(LCO)for improving the thermal stability of NG FeCoNiCrMn highentropy alloys(HE As).NG HE As with two different grain sizes were considered.Tensile tests and creep test simulations were then performed to reveal the influence of LCO on the mechanical properties and thermal stability of NG HE As.After performing hybrid molecular dynamics and Monte Carlo simulations,Cr atoms were found to accumulate at GBs.By analyzing the atomic structure evolution during the deformation process,we found that the formation of LCO effectively stabilized the GBs and inhibited GB movement.In addition,dislocation nucleation from GBs and dislocation movement was also hindered.The inhibiting effect of LCO on GB movement and dislocation activity is more prominent than in the NG model with smaller grain sizes.The current simulation results suggest a possible strategy for enhancing the thermal stability of NG HEAs for service in a high-temperature environment. 展开更多
关键词 High-entropy alloys(HEAs) Local chemical ordering(LCO) Molecular dynamics(MD)simulation Monte Carlo(MC)approach
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Microstructure, hardness and contact fatigue properties of X30N high nitrogen stainless bearing steel 被引量:4
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作者 Hai-feng Xu gui-lin wu +2 位作者 Chang Wang Jian Li Wen-quan Cao 《Journal of Iron and Steel Research International》 SCIE EI CAS CSCD 2018年第9期954-967,共14页
Microstructure, hardness and fatigue properties of X30N high nitrogen stainless bearing steel were investigated. It was found that nitrogen addition could effectively reduce the amount and size of coarse carbides. The... Microstructure, hardness and fatigue properties of X30N high nitrogen stainless bearing steel were investigated. It was found that nitrogen addition could effectively reduce the amount and size of coarse carbides. The original austenite grain size was obviously refined. Additionally, more retained austenite was found in X30N steel after quenching at 1050 ℃, which could be reduced from about 30% to about 6% by cold treatment at - 73 ℃ and subsequent tempering, and thus, the ultimate hardness was increased up to about 61 HRC with reduction of austenite and precipitation of carbonitrides. Furthermore, the rolling contact fatigue lives of X30N steel ate superior to those of 440C steel, which was attributed to the enhanced hardness and a certain retained austenite in the high nitrogen steel. 展开更多
关键词 Nitrogen addition Grain refining High hardness Ultrafine precipitate Contact fatigue life High nitrogen stainless bearing steel
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Application of phase-field modeling in solid-state phase transformation of steels 被引量:2
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作者 Shao-jie Lv Shui-ze Wang +4 位作者 gui-lin wu Jun-heng Gao Xu-sheng Yang Hong-hui wu Xin-ping Mao 《Journal of Iron and Steel Research International》 SCIE EI CSCD 2022年第6期867-880,共14页
Solid-state phase transformation is usually associated with excellent mechanical properties in steel materials.A deep understanding of the formation and evolution of phase structure is essential to tailor their servic... Solid-state phase transformation is usually associated with excellent mechanical properties in steel materials.A deep understanding of the formation and evolution of phase structure is essential to tailor their service performance.As a powerful tool for capturing the evolution of complex microstructures,phase-field simulation quantitatively calculates the phase structures evolution without explicit assumptions about transient microstructures.With the development of advanced numerical technology and computing ability,phase-field methods have been successfully applied to solid-state phase transformation in steels and greatly support the research and development of advanced steel materials.The phase-field simulations of solid-phase transformation in steels were summarized,and the future development was proposed. 展开更多
关键词 PHASE-FIELD model SOLID-STATE phase TRANSFORMATION Microstructure evolution Advanced steel MATERIAL PHASE-FIELD simulation
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