Please wait a minute...
Chin J Mater Res  2011, Vol. 25 Issue (4): 355-361    DOI:
论文 Current Issue | Archive | Adv Search |
Compression Deformation of a Nickel-Base Single Crystal Superalloy of Different Orientations
MENG Jie1,  JIN Tao1,2, SUN Xiaofeng1, HU Zhuangqi1
1.Institute of Metal Research, Chinese Academy of Sciences, Shenyang 110016
2.University of Science and Technology, Beijing 100083
Cite this article: 

MENG Jie JIN SUN Xiaofeng HU Zhuangqi. Compression Deformation of a Nickel-Base Single Crystal Superalloy of Different Orientations. Chin J Mater Res, 2011, 25(4): 355-361.

Download:  PDF(1085KB) 
Export:  BibTeX | EndNote (RIS)      
Abstract  A nickel base single crystal superalloy was compressed at room temperature along the <001>,  <110>  and <111>  orientations, respectively. The evolution of the slip traces and the microstructure in the deformation was investigated by metallographic microscope and transmission electron microscope. It was found that compress deformation depends on the crystal orientation and the precedence of the compress yield stress is:  <111>, <110>, <001>. For the <001>  or <110> oriented specimen compressed 4.5% the slip traces match the octahedral slip, and the slip traces in the <111> oriented alloy prove to slip along the {001} planes. It is noted that deformation of the <110> oriented alloy takes place by activation of two slip systems. The anisotropy of the matrix channel, dendritic segregation and eutectic leads to the change of deformation behavior for various orientations. For the <110> oriented alloy γ’ particles cut by stacking fault. The high dense dislocation of the <111> oriented alloy contributes to its high yield strength.
Key words:  metallic materials      nickel-base single crystal superalloy      compress      slip trace      anisotropy     
Received:  13 August 2010     
ZTFLH: 

TG146

 
Fund: 

Supported by the National Basic Research Program (973 Program) of China No.2010CB631206, the National Natural Science Foundation of China No.50931004 and State Key Lab of Advanced Metals and Materials No.2008ZD–07.

URL: 

https://www.cjmr.org/EN/     OR     https://www.cjmr.org/EN/Y2011/V25/I4/355

1 D.M.Shah, D.N.Duhl, in Superalloys 1984, The Effect of Orientation, Temperature, and Gamma Prime Size on the Yield Strength of a Single Crystal Nickel Base Superalloy, edit by M. Gell, C.S. Kortovich, R.H. Bricknell, W.B.Kent, J.F.Radavich (Warrendale, PA, TMS, 1984) p.105–114

2 K.Kakehi, Influence of precipitate size and crystallographic orientation on strength of a single crystal Ni–base superalloy, Materials Transaction, 40(2), 159(1999)

3 SHA Yuhui, ZHANG Jinghua, JIN Tao, XU Yongbo, HU Zhuangqi, Dependence of compression yield behavior on temperature, orientation and strain rate in a Ni–base superalloy single crystal, Acta Metallurgica Sinica, 35(5), 495(1999)

(沙玉辉, 张静华, 金  涛, 徐永波, 胡壮麒, 镍基高温合金单晶压屈服行为的温度、取向及应变速率依赖性, 金属学报,  35(5), 495(1999))

4 R.V.Miner, R.C.Voigt, J.Gayda, T.P.Gabb. Orientation and temperature dependence of some mechanical properties of the single-crystal Ni-base superalloy Rene N4: part w tensile behavior, Metallurgical and Materials Transactions A, 17(3), 491(1986)

5 R.V.Miner, R.C.Voigt, J.Gayda, T.P.Gabb, Orientation and temperature dependence of some mechanical properties of the single-crystal Ni–base superalloy Rene N4: part x Tension-compression anisotropy, Metallurgical and Materials Transactions A, 17(3), 507(1986)

6 LI Ying, SU Bin, Abnormal yield behavior and deformation mechanism of nickel base single crystal superalloy, material engineering, (3), 45(2004)

(李  影, 苏  彬, 镍基单晶高温合金的反常屈服行为与变形机制, 材料工程, (3), 45(2004))

7 A.Nits, U.Lagerpusch, E.Nembach, CRSS anisotropy and tension/compression asymmetry of a commercial superalloy, Acta Materialia, 46(13), 4769(1998)

8 LIN Yijian, Robert W.Cahn, One-way value effect of coherent γ/γ' interface on dislocation movement, Journal of Iron and Steel Research, 6(3), 47(1994)

(林一坚, R.W.Cahn, 共格γ/γ'界面对位错运动的单向阀门作用, 钢铁研究学报,  {\bf 6}(3), 47(1994))

9 D.M.Knowles, Q.Z.Chen, Superlattice stacking fault formation and twinning during creep in γ/γ single crystal superalloy CMSX–4, Materials Science and Engineering A, 340(1–2), 88(2003)

10 W.W.Milligan, S.D.Antolovich, Yielding and deformation behavior of the single crystal superalloy PWA 1480, Metallurgical Transactions A, 18(1), 85(1987)

11 E.F.Westbrooke, L.E.Forero, F.Ebrahimi, Slip analysis in a Ni–base superalloy, Acta Materialia, 53(7), 2137(2005)

12 YANG Deqing, Dislocation and metallic strengthening mechanisms, (Harbin, The Press of Harbin Institute of Technology, 1991) p.185

(杨德庆, 位错与金属强化机制, 第一版 (哈尔滨, 哈尔滨工业大学出版社, 1991) p.185)
[1] MAO Jianjun, FU Tong, PAN Hucheng, TENG Changqing, ZHANG Wei, XIE Dongsheng, WU Lu. Kr Ions Irradiation Damage Behavior of AlNbMoZrB Refractory High-entropy Alloy[J]. 材料研究学报, 2023, 37(9): 641-648.
[2] SONG Lifang, YAN Jiahao, ZHANG Diankang, XUE Cheng, XIA Huiyun, NIU Yanhui. Carbon Dioxide Adsorption Capacity of Alkali-metal Cation Dopped MIL125[J]. 材料研究学报, 2023, 37(9): 649-654.
[3] ZHAO Zhengxiang, LIAO Luhai, XU Fanghong, ZHANG Wei, LI Jingyuan. Hot Deformation Behavior and Microstructue Evolution of Super Austenitic Stainless Steel 24Cr-22Ni-7Mo-0.4N[J]. 材料研究学报, 2023, 37(9): 655-667.
[4] SHAO Hongmei, CUI Yong, XU Wendi, ZHANG Wei, SHEN Xiaoyi, ZHAI Yuchun. Template-free Hydrothermal Preparation and Adsorption Capacity of Hollow Spherical AlOOH[J]. 材料研究学报, 2023, 37(9): 675-684.
[5] XING Dingqin, TU Jian, LUO Sen, ZHOU Zhiming. Effect of Different C Contents on Microstructure and Properties of VCoNi Medium-entropy Alloys[J]. 材料研究学报, 2023, 37(9): 685-696.
[6] OUYANG Kangxin, ZHOU Da, YANG Yufan, ZHANG Lei. Microstructure and Tensile Properties of Mg-Y-Er-Ni Alloy with Long Period Stacking Ordered Phases[J]. 材料研究学报, 2023, 37(9): 697-705.
[7] XU Lijun, ZHENG Ce, FENG Xiaohui, HUANG Qiuyan, LI Yingju, YANG Yuansheng. Effects of Directional Recrystallization on Microstructure and Superelastic Property of Hot-rolled Cu71Al18Mn11 Alloy[J]. 材料研究学报, 2023, 37(8): 571-580.
[8] XIONG Shiqi, LIU Enze, TAN Zheng, NING Likui, TONG Jian, ZHENG Zhi, LI Haiying. Effect of Solution Heat Treatment on Microstructure of DZ125L Superalloy with Low Segregation[J]. 材料研究学报, 2023, 37(8): 603-613.
[9] LIU Jihao, CHI Hongxiao, WU Huibin, MA Dangshen, ZHOU Jian, XU Huixia. Heat Treatment Related Microstructure Evolution and Low Hardness Issue of Spray Forming M3 High Speed Steel[J]. 材料研究学报, 2023, 37(8): 625-632.
[10] YOU Baodong, ZHU Mingwei, YANG Pengju, HE Jie. Research Progress in Preparation of Porous Metal Materials by Alloy Phase Separation[J]. 材料研究学报, 2023, 37(8): 561-570.
[11] REN Fuyan, OUYANG Erming. Photocatalytic Degradation of Tetracycline Hydrochloride by g-C3N4 Modified Bi2O3[J]. 材料研究学报, 2023, 37(8): 633-640.
[12] WANG Hao, CUI Junjun, ZHAO Mingjiu. Recrystallization and Grain Growth Behavior for Strip and Foil of Ni-based Superalloy GH3536[J]. 材料研究学报, 2023, 37(7): 535-542.
[13] LIU Mingzhu, FAN Rao, ZHANG Xiaoyu, MA Zeyuan, LIANG Chengyang, CAO Ying, GENG Shitong, LI Ling. Effect of Photoanode Film Thickness of SnO2 as Scattering Layer on the Photovoltaic Performance of Quantum Dot Dye-sensitized Solar Cells[J]. 材料研究学报, 2023, 37(7): 554-560.
[14] QIN Heyong, LI Zhentuan, ZHAO Guangpu, ZHANG Wenyun, ZHANG Xiaomin. Effect of Solution Temperature on Mechanical Properties and γ' Phase of GH4742 Superalloy[J]. 材料研究学报, 2023, 37(7): 502-510.
[15] GUO Fei, ZHENG Chengwu, WANG Pei, LI Dianzhong. Effect of Rare Earth Elements on Austenite-Ferrite Phase Transformation Kinetics of Low Carbon Steels[J]. 材料研究学报, 2023, 37(7): 495-501.
No Suggested Reading articles found!