Constitutive Model and Microstructure Evolution Finite Element Simulation of Multidirectional Forging for GH4169 Superalloy

被引:11
作者
Jin, Yongbo [1 ]
Xi, Chenyang [1 ]
Xue, Peng [2 ]
Zhang, Chunxiang [3 ]
Wang, Sirui [1 ]
Luo, Junting [1 ,3 ]
机构
[1] Yanshan Univ, Key Lab Adv Forging & Stamping Technol & Sci, Educ Minist, Qinhuangdao 066004, Hebei, Peoples R China
[2] FSM QHD Co Ltd, Qinhuangdao 066004, Hebei, Peoples R China
[3] Yanshan Univ, State Key Lab Metastable Mat Sci & Technol, Qinhuangdao 066004, Hebei, Peoples R China
关键词
GH4169; superalloy; multidirectional forging; dynamic recrystallization; tissue evolution; finite element simulation; TEMPERATURE; ALLOY; MANUFACTURE; BEHAVIOR; DISCS;
D O I
10.3390/met10121695
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
This study investigates three processes of multidirectional forging (MDF), namely, closed MDF (CMDF), single-open MDF, and double-open MDF, by using a constitutive equation and a dynamic recrystallization model of hot deformation of the GH4169 superalloy. The microstructure evolution of the three processes is simulated and compared. Among the three processes, the double-open MDF obtains the highest recrystallization degree, followed by the CMDF and the single-open MDF under the same reduction. The recrystallization degree of CMDF reaches 99.5% at 1000 degrees C and 9 passes, and the average recrystallized grain size is small, which is approximately 8.1 mu m. The double-open MDF can obtain a fine grain size of forgings at 9 passes and 1000 degrees C, and it is easy to obtain forgings with the single-open MDF with uniform performance. The temperature is 850 degrees C-1000 degrees C, the compression rate is 0.15-0.2, and the pass is 5-9, which are the suitable parameter selection ranges for the CMDF. The temperature is 950 degrees C-1000 degrees C, the compression rate is 0.1-0.2, and the pass is 7-9, which are the suitable parameter selection ranges for single-open MDF. The temperature is 850 degrees C-1000 degrees C, the compression rate is 0.1-0.2, and the pass is 6-9, which are the suitable parameter selection ranges for the double-open MDF.
引用
收藏
页码:1 / 11
页数:11
相关论文
共 23 条
  • [1] Microstructure evolution and mechanical behaviour of severely deformed pure titanium through multi directional forging
    Ansarian, I
    Shaeri, M. H.
    Ebrahimi, M.
    Minarik, P.
    Bartha, K.
    [J]. JOURNAL OF ALLOYS AND COMPOUNDS, 2019, 776 : 83 - 95
  • [2] Investigation on strain dependence of metadynamic recrystallization behaviors of GH4169 superalloy
    Chen, Xiao-Min
    Lin, Y. C.
    Li, Xin-He
    Chen, Ming-Song
    Yuan, Wu-Quan
    [J]. VACUUM, 2018, 149 : 1 - 11
  • [3] Microstructural evolution of Inconel* 718 during ingot breakdown: process modelling and validation
    Dandre, CA
    Roberts, SM
    Evans, RW
    Reed, RC
    [J]. MATERIALS SCIENCE AND TECHNOLOGY, 2000, 16 (01) : 14 - 25
  • [4] Effect of Heat Treatment on Microstructure and Mechanical Properties of GH4169 Superalloy
    Du Jinhui
    Lu Xudong
    Deng Qun
    [J]. RARE METAL MATERIALS AND ENGINEERING, 2014, 43 (08) : 1830 - 1834
  • [5] Grain refinement in as-cast AZ80 Mg alloy under large strain deformation
    Guo, Q.
    Yan, H. G.
    Chen, Z. H.
    Zhang, H.
    [J]. MATERIALS CHARACTERIZATION, 2007, 58 (02) : 162 - 167
  • [6] Hu JP, 2001, SUPERALLOYS 718, 625, 706 AND VARIOUS DERIVATIVES, P229
  • [7] Constitutive Equation of GH4169 Superalloy and Microstructure Evolution Simulation of Double-Open Multidirectional Forging
    Jin, Yongbo
    Xue, Hao
    Yang, Zheyi
    Zhang, Lili
    Zhang, Chunxiang
    Wang, Sirui
    Luo, Junting
    [J]. METALS, 2019, 9 (11)
  • [8] Integrated modeling for the manufacture of aerospace discs: Grain structure evolution
    Kermanpur, A
    Tin, S
    Lee, PD
    McLean, M
    [J]. JOM, 2004, 56 (03) : 72 - 78
  • [9] Effect of Multidirectional Forging on the Grain Structure and Mechanical Properties of the Al-Mg-Mn Alloy
    Kishchik, Mikhail S.
    Mikhaylovskaya, Anastasia V.
    Kotov, Anton D.
    Mosleh, Ahmed O.
    AbuShanab, Waheed S.
    Portnoy, Vladimir K.
    [J]. MATERIALS, 2018, 11 (11):
  • [10] Mathematical Modeling of the Concentrated Energy Flow Effect on Metallic Materials
    Konovalov, Sergey
    Chen, Xizhang
    Sarychev, Vladimir
    Nevskii, Sergey
    Gromov, Victor
    Trtica, Milan
    [J]. METALS, 2017, 7 (01)