KAN Li-ye, YE Qi-bin, WANG Yi-min, WANG Zhao-dong. Effect of Aging Temperatures on Microstructure and Mechanical Properties of 890MPa Grade Copper-Bearing Steel[J]. Journal of Northeastern University Natural Science, 2020, 41(4): 499-504.
[1]Peng Y, Peng X N,Zhang X M,et al.Microstructure and mechanical properties of GMAW weld metal of 890 MPa class steel[J].Journal of Iron and Steel Research,International,2014,21(5):539-544. [2]Jain D,Isheim D,Hunter A H,et al.Multicomponent high-strength low-alloy steel precipitation-strengthened by sub-nanometric Cu precipitates and M2C carbides[J].Metallurgical and Materials Transactions A,2016,47(8):3860-3872. [3]Wilson A D.High strength,weldable precipitation aged steels[J].JOM,1987,39(3):36-38. [4]Wilson A D,Hamburg E G,Colvin D J,et al.Properties and microstructures of copper precipitation aged plate steels[C]//ASM International.Geauga Lake,1988:259-275. [5]Czyryca E J,Link R E,Wong R J,et al.Development and certification of HSLA-100 steel for naval ship construction[J].Naval Engineers Journal,1990,102(3):63-82. [6]Thompson S W,Krauss G.Copper precipitation during continuous cooling and isothermal aging of A710-type steels[J].Metallurgical and Materials Transactions A,1996,27(6):1573-1588. [7]Northeastern University.Standard specification for precipitation-strengthened low-carbon nickel-copper chromium-molybdenum-columbium alloy structural steel plates:A710/A710M-02(2013)[S].West Conshohocken:ASTM International,2013. [8]Naval Sea Systems Command.Base materials for critical application:requirements for low alloy steel plate,forgings,castings,shapes,bars,and heads of HY 80/100/130 and HSLA 80/100:T9074-BD-GIB-010/0300[S].Los Angeles:NAVSEA Technical Publication,2012. [9]Jiao Z B,Luan J H,Zhang Z W,et al.Synergistic effects of Cu and Ni on nanoscale precipitation and mechanical properties of high-strength steels[J].Acta Materialia,2013,61(16):5996-6005. [10]Dhua S K,Ray A,Sarma D S,et al.Effect of tempering temperatures on the mechanical properties and microstructures of HSLA-100 type copper-bearing steels[J].Materials Science & Engineering:A,2001,318(1/2):197-210. [11]Fine M E,Isheim D.Origin of copper precipitation strengthening in steel revisited[J].Scripta Materialia,2005,53(1):115-118. [12]Fine M E,Liu J Z,Asta M D,et al.An unsolved mystery:the composition of bcc Cu alloy precipitates in bcc Fe and steels[J].Materials Science & Engineering:A,2007,463(1/2):271-274. [13]Takahashi J,Kawakami K,Kobayashi Y,et al.Consideration of particle-strengthening mechanism of copper-precipitation-strengthened steels by atom probe tomography analysis[J].Materials Science & Engineering:A,2012,535:144-152. [14]Russell K C,Brown M.A dispersion strengthening model based on differing elastic moduli applied to the iron-copper system[J].Acta Metallurgica,1972,20(7):969-974. [15]Deschamps A,Militzer M,Poole W J,et al.Precipitation kinetics and strengthening of a Fe-0.8wt%Cu alloy[J].ISIJ International,2001,41(2):196-205.