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左鹏鹏等:基于应变控制的4C5 MoSiV1热作模具钢热机械疲劳行为 83· [9]Fang J R,Jiang QC.Guan Q F,et al.The characteristics of fa- 合材料的热机械疲劳性能L.应力应变行为.金属学报, tigue under isothermal and thermo-mechanical load in Cr-Ni-Mo 2001,37(11):1198) cast hot work die steel.Fatigue Fract Eng Mater Struct,2002,25 [14]Huang Z W,Wang Z G,Zhu S J,et al.Thermomechanical fa- (5):481 tigue behavior and life prediction of a cast nickel-based superal- [10]Oudin A,Lamesle P,Penazzi L,et al.Thermomechanical fa- loy.Mater Sci Eng A,2006,432(1-2)308 tigue behaviour and life assessment of hot work tool steels.Eur [15]Fang D N.Berkovits A.Mean stress models for low-cycle fatigue Struct Integr Soc,2002,29:195 of a nickel-base superalloy.Int J Fatigue,1994,16(6):429 [11]Sjostrom J,Bergstrom J.Thermal fatigue testing of chromium [16]Yang F M,Sun X F,Guan H R,et al.On the low cycle fatigue martensitic hot-work tool steel after different austenitizing treat- deformation of K40S cobalt-base superalloy at elevated tempera- ments.J Mater Process Technol,2004,153-154:1089 ture.Mater Lett,2003,57(19):2823 [12]Xu L P.Wu X C.Shao G J.et al.Effect of the tempering tem- [17]Rao K B S,Schiffers H,Schuster H,et al.Influence of time and perature on thermal fatigue behavior of 4Cr5MoSiVl and 8407 temperature dependent processes on strain controlled low cycle fa- steels.J Mater Eng,2001(2):3 tigue behavior of alloy 617.Metall Trans A,1988,19(2):359 (许珞萍,吴晓春,邵光杰,等.4C5MSiV1.8407钢的热疲 [18]Mishnev R,Dudova N,Kaibyshev R.Low eycle fatigue behavior 劳性能.材料工程,2001(2):3) of a 10%Cr martensitic steel at 600 C./S//Int,2015,55 [13]Qian L H,Wang Z G,Toda H,et al.Thermo-mechanical fatigue (11):2469 of SiC whisker reinforced 6061Al composites I.Stress and strain [19]Mishnev R,Dudova N,Kaibyshev R.Low cycle fatigue behavior during cycling.Acta Metall Sin,2001,37(11):1198 of a 10Cr-2W-Mo-3Co-NbV steel.Int J Fatigue,2016,83: (钱立和,王中光,户田裕之,等.SiC品须增强6061A1基复 344左鹏鹏等: 基于应变控制的 4Cr5MoSiV1 热作模具钢热机械疲劳行为 [9] Fang J R, Jiang Q C, Guan Q F, et al. The characteristics of fa鄄 tigue under isothermal and thermo鄄mechanical load in Cr鄄鄄 Ni鄄鄄 Mo cast hot work die steel. Fatigue Fract Eng Mater Struct, 2002, 25 (5): 481 [10] Oudin A, Lamesle P, Penazzi L, et al. Thermomechanical fa鄄 tigue behaviour and life assessment of hot work tool steels. Eur Struct Integr Soc, 2002, 29: 195 [11] Sj觟str觟m J, Bergstr觟m J. Thermal fatigue testing of chromium martensitic hot鄄work tool steel after different austenitizing treat鄄 ments. J Mater Process Technol, 2004, 153鄄154: 1089 [12] Xu L P, Wu X C, Shao G J, et al. Effect of the tempering tem鄄 perature on thermal fatigue behavior of 4Cr5MoSiV1 and 8407 steels. J Mater Eng, 2001(2): 3 (许珞萍, 吴晓春, 邵光杰, 等. 4Cr5MoSiV1, 8407 钢的热疲 劳性能. 材料工程, 2001(2): 3) [13] Qian L H, Wang Z G, Toda H, et al. Thermo鄄mechanical fatigue of SiC whisker reinforced 6061Al composites I. Stress and strain during cycling. Acta Metall Sin, 2001, 37(11): 1198 (钱立和, 王中光, 户田裕之, 等. SiC 晶须增强 6061Al 基复 合材料的热机械疲劳性能 I. 应力应变行为. 金属学报, 2001, 37(11): 1198) [14] Huang Z W, Wang Z G, Zhu S J, et al. Thermomechanical fa鄄 tigue behavior and life prediction of a cast nickel鄄based superal鄄 loy. Mater Sci Eng A, 2006, 432(1鄄2): 308 [15] Fang D N, Berkovits A. Mean stress models for low鄄cycle fatigue of a nickel鄄base superalloy. Int J Fatigue, 1994, 16(6): 429 [16] Yang F M, Sun X F, Guan H R, et al. On the low cycle fatigue deformation of K40S cobalt鄄base superalloy at elevated tempera鄄 ture. Mater Lett, 2003, 57(19): 2823 [17] Rao K B S, Schiffers H, Schuster H, et al. Influence of time and temperature dependent processes on strain controlled low cycle fa鄄 tigue behavior of alloy 617. Metall Trans A, 1988, 19(2): 359 [18] Mishnev R, Dudova N, Kaibyshev R. Low cycle fatigue behavior of a 10% Cr martensitic steel at 600 益 . ISIJ Int, 2015, 55 (11): 2469 [19] Mishnev R, Dudova N, Kaibyshev R. Low cycle fatigue behavior of a 10Cr鄄鄄2W鄄鄄Mo鄄鄄3Co鄄鄄 NbV steel. Int J Fatigue, 2016, 83: 344 ·83·
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