Please wait a minute...
Acta Metall Sin  2013, Vol. 29 Issue (4): 483-488    DOI: 10.3724/SP.J.1037.2012.00620
Current Issue | Archive | Adv Search |
EFFECT OF δ PHASE ON THE TENSILE DEFORMATION BEHAVIOR OF GH4169 ALLOY AT HIGH TEMPERATURE
ZHANG Haiyan1),ZHANG Shihong2), CHENG Ming2)
1)School of Mechanical Engineering, Ningbo University of Technology, Ningbo 315016
2)Institute of Metal Research, Chinese Academy of Sciences, Shenyang 110016
Cite this article: 

ZHANG Haiyan,ZHANG Shihong, CHENG Ming. EFFECT OF δ PHASE ON THE TENSILE DEFORMATION BEHAVIOR OF GH4169 ALLOY AT HIGH TEMPERATURE. Acta Metall Sin, 2013, 29(4): 483-488.

Download:  PDF(2016KB) 
Export:  BibTeX | EndNote (RIS)      
Abstract  

GH4169 alloy is an important material used for aviation and aerospace engines because of its excellent mechanical properties in the temperature range from -253 ℃ to 650 ℃. In order to improve the safety and reliability of engines, it is crucial to obtain the forging with a uniform and fine microstructure. Generally, theforgings with large size and complex shape, such as turbine disks and engine shafts, are manufactured by multi-stage hot working processes. In addition, the microstructure of the alloy is sensitive to the hot deformation parameters. Therefore, the defects of coarse grain and duplex grain always appear in the forgings. As the δ phase in the alloy can control grain growth through the strong pinning effect, the Delta process (DP) has been developed, which uses an intentional δ phase precipitation cycle and subsequent thermomechanical processing to produce uniform fine grain billet and bar stock. In this work, for the DP of GH4169 alloy, the effect of δ phase on the tensile deformation behavior of GH4169 alloy at high temperature was studied by the tensile tests at 950 ℃. The result indicated that the tensile stress-strain curve of the GH4169 alloy with 8.21% pre-precipitated δ phase was the elastic-uniform plastic curve, and there were two different deformation processes during the uniform plastic deformation stage. The strain hardening exponent in the first deformation process was 0.494, which was higher than 0.101 in the second  process. The fracture mechanism for the pre-precipitated δ phase alloy was microvoid coalescence ductile fracture, and the δ phase and carbide were the nucleuses for the formation of micropores. Thus, the existence of the δ phase made the high-temperature plasticity of GH4169 alloy decrease, and the content of the pre-precipitated δ phase must be controlled in the DP of GH4169 alloy.

Key words:  GH4169 alloy      δ phase, Delta process      workhardening     
Received:  17 October 2012     

URL: 

https://www.ams.org.cn/EN/10.3724/SP.J.1037.2012.00620     OR     https://www.ams.org.cn/EN/Y2013/V29/I4/483

[1] Hiroaki Y, Takeshi H, Tomohisa H, Sachihiro I, Hideaki S. In: Cesar J M A, Santos A D eds.,Proc 9th Int Conf on Numerical Methods in Industrial Processses, Porto,Portugal, 2007: 987


[2] Ruiz C, Obabueki A, Gillespie K. In: Antolovich S D, Stusrud R W, MacKay R A, Anton D L, Khan T,Kissinger R D, Klarstrom D L eds.,  Superalloys 1992, Warrendale, PA: TMS, 1992: 33

[3] Banik T, Mancuso S O, Maurer G E. In: Loria E A ed.,  Superalloys 718, 625, 706 and Various Derivatives,Warrendale, PA: TMS, 1994: 273

[4] Dix A W, Hyzak J M, Singh R P. In: Antolovich S D, Stusrud R W, MacKay R A, Anton D L, Khan T,Kissinger R D, Klarstrom D L eds.,  Superalloys 1992, Warrendale, PA: TMS, 1992: 23

[5] Bhowal P R, Schirra J J. In: Loria E A ed.,  Superalloys 718, 625, 706 and Various Derivatives,Warrendale, PA: TMS, 2001: 193

[6] Lu H J, Yao C G, Zhang K F, Jia X C.  Mater Mech Eng, 2003; 27(1): 15

(吕宏军, 姚草根, 张凯峰, 贾新朝. 机械工程材料, 2003; 27(1): 15)

[7] Luo Z J, Tang H, Zeng F C, Guo N C.  J Mater Process Technol, 1991; 28: 383

[8] Liu D, Luo Z J.  Chin J Rare Met, 2005; 29: 152

(刘东, 罗子健. 稀有金属, 2005; 29: 152)

[9] Yuan H, Liu W C.  Mater Sci Eng, 2005; A408: 281

[10] Wang Y, Zhen L, Shao W Z, Yang L, Zhang X M.  J Alloys Compd, 2009; 44: 341

[11] Wang Y, Shao W Z, Zhen L, Zhang B Y.  Mater Sci Eng, 2011; A528: 3218

[12] Cai D Y, Zhang W H, Nie P L, Liu W C, Yao M.  Mater Charact, 2007; 58: 220

[13] Desvallees Y, Bouzidi M, Bois F, Beaude N. In: Loria E A ed.,Superalloys 718, 625, 706 and Various Derivatives, Warrendale, PA: TMS, 1994: 281

[14] Zhang Y, Huang X B, Wang Y, Yu W C, Hu Z Q. In: Loria E A ed.,  Superalloys 718, 625, 706 and Various Derivatives, Warrendale, PA: TMS, 1997: 229

[15] Zhao D, Chaudhury P K. In: Loria E A ed.,  Superalloys 718, 625, 706 and Various Derivatives,Warrendale, PA: TMS, 1994: 303

[16] Sundararaman M, Mukhopadhyay P, Banerjee S. In: Loria E A ed.,  Superalloys 718, 625, 706 and Various Derivatives, Warrendale, PA: TMS, 1994: 419

[17] Thomas A, El-Wahabi M, Cabrera J M, Prado J M.  J Mater Process Technol, 2006; 177: 469

[18] Cheng M, Zhang H Y, Zhang S H.  J Mater Sci, 2012; 47: 251

[19] Liu W C, Xiao F R, Yao M.  J Mater Lett, 1997; 16: 769

[20] Liu W C, Xiao F R, Yao M, Yuan H.  J Mater Sci Lett, 1998; 17: 245

[21] Wang Y, Shao W Z, Zhen L, Yang C, Zhang X M.  J Alloys Compd, 2009; 471: 331

[22] Liu H W.  Mechanics of Materials I. 5th Ed., Beijing: Higher Education Press, 2011: 20

(刘鸿文. 材料力学I. 第5版, 北京: 高等教育出版社, 2011: 20)

[23] Hollomon J H.  Trans AIME, 1945; 162: 268

[24] Liu J K, Jin M, Jiang Z H, Zhang L J.  Chin J Mech Eng, 1990; 26(5): 71

(刘景科, 金满, 江中浩, 张连进. 机械工程学报, 1990; 26(5): 71)

[25] Cai M H, Ding H, Zhang J S, Li L, Tang Z Y.  Chin J Mater Res, 2009; 23: 83

(蔡明晖, 丁桦, 张建苏, 李龙, 唐正友. 材料研究学报, 2009; 23: 83)

[26] Sundararaman M, Mukhopadhyay P, Banerjee S.  Metall Trans, 1988; 19A: 453

[27] Collier J P, Wong S H, Phillips J C, Tien J K.  Metall Trans, 1988; 19A: 1657

[28] Cui Z Q.  Metallography and Heat Treatment. Beijing: China Machine Press, 2001: 183

(崔忠圻. 金属学与热处理. 北京: 机械工业出版社, 2001: 183)

[29] Pan J S, Tong J M, Tian J M.  Fundamentals of Material Science.Beijing: Tsinghua University Press, 1998: 200

(潘金生, 仝健民, 田健民. 材料科学基础. 北京: 清华大学出版社, 1998: 200)

[30] Liu R T, Liu W B, Liu J Y.  Mechanical Property of Engineering Material. Harbin: Harbin Institute of Technology Press, 2001: 45

(刘瑞堂, 刘文博, 刘锦云. 工程材料力学性能. 哈尔滨: 哈尔滨工业大学出版社, 2001: 45)

[31] Chen W, Chaturvedi M C. In: Loria E A ed.,  Superalloys 718, 625, 706 and Various Derivatives,Warrendale, PA: TMS, 1994: 567

[32] Zhang H Y, Zhang S H, Cheng M.  Acta Metall Sin, 2009; 45: 1451

(张海燕, 张士宏, 程明. 金属学报, 2009; 45: 1451)
[1] DU Jinhui, BI Zhongnan, QU Jinglong. Recent Development of Triple Melt GH4169 Alloy[J]. 金属学报, 2023, 59(9): 1159-1172.
[2] ZHANG Weidong, CUI Yu, LIU Li, WANG Wenquan, LIU Rui, LI Rui, WANG Fuhui. Corrosion Behavior of GH4169 Alloy in NaCl Solution Spray Environment at 600oC[J]. 金属学报, 2023, 59(11): 1475-1486.
[3] LI Yanmo, GUO Xiaohui, CHEN Bin, LI Peiyue, GUO Qianying, DING Ran, YU Liming, SU Yu, LI Wenya. Microstructure and Mechanical Properties of Linear Friction Welding Joint of GH4169 Alloy/S31042 Steel[J]. 金属学报, 2021, 57(3): 363-374.
[4] WANG Lei, AN Jinlan, LIU Yang, SONG Xiu. Deformation Behavior and Strengthening-Toughening Mechanism of GH4169 Alloy with Multi-Field Coupling[J]. 金属学报, 2019, 55(9): 1185-1194.
[5] Mingzhe XI,Wei ZHOU,Junying SHANG,Chao LV,Zhenhao WU,Shiyou GAO. Effect of Heat Treatment on Microstructure and Mechanical Properties of Consecutive Point-Mode Forging and Laser Rapid Forming GH4169 Alloy[J]. 金属学报, 2017, 53(2): 239-247.
[6] Jianguo WANG,Dong LIU,Yanhui YANG. MECHANISMS OF NON-UNIFORM MICROSTRUC-TURE EVOLUTION IN GH4169 ALLOYDURING HEATING PROCESS[J]. 金属学报, 2016, 52(6): 707-716.
[7] Lei WANG,Jinlan AN,Yang LIU,Xiu SONG,Guohua XU,Guangpu ZHAO. INFLUENCE OF ELECTRIC FIELD TREATMENT ON PRECIPITATION BEHAVIOR OF d PHASE IN GH4169 SUPERALLOY[J]. 金属学报, 2015, 51(10): 1235-1241.
[8] ZHANG Maicang, CAO Guoxin, DONG Jianxin, ZHENG Lei, YAO Zhihao. INVESTIGATIONS ON DISSOLUTION MECHANISM OF LAVES PHASE IN GH4169 ALLOY INGOT BASED ON CLASSICAL DYNAMICAL MODEL[J]. 金属学报, 2013, 49(3): 372-378.
[9] LIU Yang WANG Lei HE Sisi FENG Fei LV Xudong ZHANG Beijiang. EFFECT OF LONG-TERM AGING ON DYNAMIC TENSILE DEFORMATION BEHAVIOR OF GH4169 ALLOY[J]. 金属学报, 2012, 48(1): 49-55.
No Suggested Reading articles found!